The present application is a national phase entry under 35 USC § 371 of International Application PCT/CN2016/108103, filed Nov. 30, 2016.
The present disclosure relates to a field of cleaning machine, and more particularly to a dust cup assembly and a handheld cleaner having the same.
As to a handheld cleaner in the related art, a negative pressure device is generally provided inside a handle, such that the handle has a large volume and weight, which is not only inconvenient but also laborious for handholding with little comfort. In addition, as to some other handheld cleaners in the related art, although the negative pressure device is provided in a cup casing, it is encircled or surrounded by a dust collecting chamber in an entire circumference thereof, such that the negative pressure device is difficult to disassemble and maintain.
The present disclosure aims to solve at least one of the problems existing in the related art. To this end, the present disclosure provides a dust cup assembly, which has a compact overall structure and facilitates disassembly of a negative pressure device.
The present disclosure further provides a handheld cleaner having the above-described dust cup assembly.
The dust cup assembly according to a first aspect of the present disclosure, includes a casing having a central chamber, a dedusting chamber and a dust collecting chamber, in which the central chamber is configured to have an upright columnar shape and includes an air exhaust chamber and a mounting chamber in communication with each other in an up-and-down direction, the dedusting chamber is configured to have a closed annular cross section and surrounds the air exhaust chamber by one circle, the dust collecting chamber is located below the dedusting chamber, has a non-closed annular cross section and surrounds the mounting chamber by less than a circle; a negative pressure device, in which at least a majority of the negative pressure device is provided in the mounting chamber and used to suck airflow from the environment into the casing; and a dedusting device provided in the dedusting chamber to remove dust from the sucked airflow.
The dust cup assembly according to the present disclosure, has a compact overall structure and facilitates disassembly of the negative pressure device.
According to some embodiments of the present disclosure, a lower portion of the air exhaust chamber is configured as an expansion pipe segment, and an upper end of the negative pressure device extends into the expansion pipe segment.
According to some embodiments of the present disclosure, the dedusting device includes a plurality of cyclones provided around the air exhaust chamber and located directly above the dust collecting chamber, in which, each cyclone is configured as a conical tube having a tangential inlet in a side wall and a tapered bottom.
According to some embodiments of the present disclosure, the dedusting device further includes a filtration tube fitted over the plurality of cyclones, the filtration tube has a filtration hole and divides the dedusting chamber into a second cyclone chamber and a first cyclone chamber located at an inner side and an outer side of the filtration tube respectively, and the plurality of cyclones are located in the second cyclone chamber.
According to some embodiments of the present disclosure, the dust collecting chamber includes a first dust collecting chamber located directly below the first cyclone chamber and in communication with the first cyclone chamber, and a second dust collecting chamber located directly below the second cyclone chamber and in communication with the plurality of cyclones, and the first dust collecting chamber and the second dust collecting chamber are not in communication with each other.
According to some embodiments of the present disclosure, top ends of the first dust collecting chamber and the second dust collecting chamber are both opened to serve as inlets, and bottom ends of the first dust collecting chamber and the second dust collecting chamber are both opened to serve as outlets.
According to some embodiments of the present disclosure, a bottom wall of the second dust collecting chamber is configured as an inclined wall with a high center and two low ends, and the two ends of the inclined wall are opened to serve as outlets of the second dust collecting chamber.
According to some embodiments of the present disclosure, the casing includes a dust cup including a base and a cup casing, in which, the cup casing is configured to have a non-closed annular across section with an opening so as to define the dust collecting chamber having the non-closed annular cross section in the cup casing, the cup casing is disposed at a top of the base and a mounting space located outside the dust collecting chamber is defined between an inner-ring wall face of the cup casing and a top wall of the base, a top of the mounting space is directly opened, and a side of the mounting space is opened by the opening; and a cabinet, in which, the central chamber and the dedusting chamber are both formed in the cabinet and a portion of the cabinet for containing the negative pressure device is mounted at the mounting space via an opened portion of the mounting space.
According to some embodiments of the present disclosure, the dust cup further includes the cup cover, the cup cover is disposed at a top of the cup casing and covers on the dust collecting chamber, the cup cover has a dust inlet in communication with the dust collecting chamber, the dust inlet includes a first dust inlet communicating the first dust collecting chamber with the first cyclone chamber, and a second dust inlet communicating the second dust collecting chamber with the plurality of cyclones, and a lower end of each cyclone penetrates through a bottom wall of the tube casing and is inserted in the corresponding second dust inlet while being fitted therewith.
According to some embodiments of the present disclosure, the base includes a base body and a base bottom cover, the base bottom cover is connected to a bottom of the base body and capable of being opened and closed to define a buffering chamber between the base bottom cover and the base body, a top wall of the base body has the communication hole, a bottom end edge of an outer-ring wall face is connected to an edge of the communication hole in a butt joint to communicate the first dust collecting chamber with the buffering chamber, bottom end edges of the inner-ring wall face and a chamber-partition wall are inserted in the communication hole while being fitted therewith and abut against the base bottom cover to isolate the second dust collecting chamber from the first dust collecting chamber and the buffering chamber.
According to some embodiments of the present disclosure, the cabinet includes an upper body and a lower body disposed at a bottom of the upper body, in which, the dedusting chamber and the air exhaust chamber are both formed in the upper body, the mounting chamber is formed in the lower body, the lower body is mounted at the mounting space via the opening of the mounting space, and the upper body is supported on the top of the cup casing.
According to some embodiments of the present disclosure, the lower body includes a protection casing plate and an appearance casing plate, the protection casing plate is disposed adjacent to the inner-ring wall face and matched with a shape of the inner-ring wall face, the appearance casing plate is located at a side of the protection casing plate away from the inner-ring wall face, and the mounting chamber is defined between the appearance casing plate and the protection casing plate.
According to some embodiments of the present disclosure, two side edges of the protection casing plate extend to be connected to two side edges of the cup casing in a ring length direction thereof respectively and correspondingly.
According to some embodiments of the present disclosure, the mounting chamber is further provided with an air-exhaust filtration device, the air-exhaust filtration device is located between the negative pressure device and the appearance casing plate and an air exhaust space is defined between the air-exhaust filtration device and the appearance casing plate, in which, the base is supported at a bottom of the lower body and avoids a bottom of the air exhaust space.
According to some embodiments of the present disclosure, at least one of the protection casing plate and the appearance casing plate has a sliding groove extending in an up-and-down direction, the air-exhaust filtration device has an elastic sliding sheet, and the elastic sliding sheet is slidably fitted in the sliding groove and the elastic sliding sheet and has an interference fit with the sliding groove.
According to some embodiments of the present disclosure, an isolating screen is provided in the cabinet, and the isolating screen is interposed between the negative pressure device and the air-exhaust filtration device.
According to some embodiments of the present disclosure, the cabinet is detachably connected to the dust cup via a quick release assembly.
According to some embodiments of the present disclosure, the cup casing is disposed in front of a top of the base, and the quick release assembly includes a first assembly disposed at a front top of the dust cup and a second assembly disposed at a rear bottom of the dust cup.
According to some embodiments of the present disclosure, the first assembly includes a snap plate disposed at a front bottom of the cabinet, extending downwards and having a snap hole; and a snap piece disposed at the front top of the dust cup and extending forward into the snap hole to limit a detachment of the dust cup and the cabinet in a direction other than a front-and-rear direction.
According to some embodiments of the present disclosure, the second assembly includes a first snap hook disposed at a rear bottom of the cabinet and having a front end bent downward to define a hooking groove; a second snap hook disposed at the rear bottom of the dust cup and having a rear end bent upward to extends into the hooking groove so as to limit a detachment of the dust cup and the cabinet in a front-rear direction; a movable latch disposed at the rear bottom of the cabinet, movable in a front-rear direction, and having a front end abutting against a bottom of the second snap hook to prevent the second snap hook from moving downward out of the hooking groove; and an unlocking button capable of being pressed and disposed to the cabinet and fitted with the movable latch, and the movable latch moves backward to release the position limit for the second snap hook when the unlocking button is pressed.
According to some embodiments of the present disclosure, the upper body includes a tube casing and an air exhaust pipe, in which, the air exhaust pipe is provided in the tube casing and the dedusting chamber is defined between the air exhaust pipe and the tube casing, a bottom of the air exhaust pipe penetrates through a bottom wall of the tube casing and the air exhaust chamber in communication with the mounting chamber is defined in the air exhaust pipe.
A handheld cleaner according to a second aspect of the present disclosure, includes an above-described dust cup assembly, and a handle assembly disposed on the dust cup assembly and used for handholding.
According to some embodiments of the present disclosure, the handheld cleaner further includes an extension pipe including a pipe body member, in which, the pipe body member is configured as a hollow pipe with two open ends and has one end connected to the dust suction inlet of the casing; and a rotating member, in which, the rotating member is disposed at the other end of the pipe body member and integrally formed with the pipe body member, the rotating member is provided with an inlet hole in communication with an interior of the pipe body member to make the dust enter the pipe body member via the inlet hole, and then enter the dust suction inlet along the pipe body member; the rotating member is rotatable with respect to the pipe body member and changes an orientation of the inlet hole with respect to the pipe body member during rotating.
According to some embodiments of the present disclosure, the rotating member is connected to the pipe body member via a pivoting shaft, or the pipe body member is connected to the rotating member through a spherical fit.
According to some embodiments of the present disclosure, the handheld cleaner further includes an extension pipe, the extension pipe is configured as a hollow pipe with two open ends, one end of the extension pipe is detachably communicated with the dust suction inlet of the casing and the other end thereof has a cleaning member integrally formed with the extension pipe.
According to some embodiments of the present disclosure, the handheld cleaner further includes a telescopic hose having a first end extending into and fixed in the extension pipe and a second end detachably connected to the dust suction inlet, the first end of the extension pipe is detachably connected to the casing and the telescopic hose is accommodated in an interior of the extension pipe when the extension pipe is connected to the casing.
According to some embodiments of the present disclosure, the handheld cleaner further includes a first detection device, in which, the first detection device is disposed to the casing and used to detect a motion state of the casing; a control device, in which, the control device is connected to the first detection device and the negative pressure device and configured to control a working state of the handheld cleaner according to information detected by the detection device.
According to some embodiments of the present disclosure, the control device is configured to control the negative pressure device to increase a suction strength if the first detection device detects that a motion speed of the casing rises, and control the negative pressure device to decrease the suction strength if the first detection device detects that the motion speed of the casing drops.
According to some embodiments of the present disclosure, the control device is configured to control the negative pressure device to shut down if the first detection device detects that the casing has never moved in a first predetermined duration, the control device is configured to control the negative pressure device to turn on if the first detection device detects displacement of the casing in a second predetermined duration after a shutdown of the negative pressure device, and the control device is configured to control the handheld cleaner to turn off if the first detection device detects no displacement of the casing in the second predetermined duration after the shutdown of the negative pressure device.
According to some embodiments of the present disclosure, the casing has an air intake passage in communication with the dedusting chamber, the handheld cleaner further includes a second detection device used to detect a dust concentration in the air intake passage; and a control device connected to the second detection device and the negative pressure device and configured to control the working state of the handheld cleaner according to the information detected by the second detection device.
According to some embodiments of the present disclosure, the control device is configured to control the negative pressure device to increase the suction strength thereof if the second detection device detects that the dust concentration rises, and control the negative pressure device to decrease the suction strength thereof if the second detection device detects that the dust concentration drops.
These and other aspects and advantages of embodiments of the present disclosure will become apparent and more readily appreciated from the following descriptions made with reference to the drawings, in which:
Embodiments of the present disclosure will be described in detail and examples of the embodiments will be illustrated in the drawings, where same or similar reference numerals are used to indicate same or similar members or members with same or similar functions. The embodiments described herein with reference to drawings are illustrative, which are used to illustrate the present disclosure, but shall not be construed to limit the present disclosure.
The following disclosure provides many different embodiments or examples to realize different structures of the present disclosure. To simplify the disclosure of the present disclosure, components and configurations in particular examples are elaborated. Of course, they are illustrative, and are not intended to limit the present disclosure. Moreover, reference numbers and/or letters may be repeated in different examples of the present disclosure for the purpose of simplicity and clarity, which shall not be constructed to indicate the relationships among various embodiments and/or configurations. In addition, the present disclosure provides examples of various specific processes and materials, but applicability of other processes and/or utilization of other materials are conceivable for those skilled in the art.
A handheld cleaner according to some specific embodiments of the present disclosure will be described below.
In some embodiments of the present disclosure, the handheld cleaner includes a dust cup assembly, including: a casing, a negative pressure device disposed in the casing and configured to suck an airflow from an environment into the casing, and a dedusting device disposed in the casing and configured to remove dust from the sucked airflow; and a handle assembly, including: a handle casing disposed to the casing and having a holding portion for user handholding, and a power supply device disposed at a top of the holding portion, and/or in the holding portion, and/or at a position in the handle casing opposite to the holding portion and electrically connected to the negative pressure device.
In some embodiments of the present disclosure, the handle casing has a finger gripping portion and a mounting portion configured to be connected to the dust cup assembly, the holding portion and the mounting portion are located at two sides of the finger gripping portion, and the power supply device is disposed in the mounting portion and/or in the holding portion.
In some embodiments of the present disclosure, a length direction of the power supply device disposed in the holding portion is identical to a length direction of the holding portion.
In some embodiments of the present disclosure, a length direction of the power supply device disposed in the mounting portion is identical to a length direction of the mounting portion.
In some embodiments of the present disclosure, the casing has an upright tube shape, a length direction of the mounting portion is identical to an axial direction of the casing, and the mounting portion is connected to a radial side of the casing.
In some embodiments of the present disclosure, the mounting portion is detachably connected to the dust cup assembly.
In some embodiments of the present disclosure, the finger gripping portion is configured as a gripping hole, the handle casing is configured as an annular casing, and the gripping hole is defined by an inner ring of the handle casing.
In some embodiments of the present disclosure, the handle casing further includes a handle top and a handle bottom connected between the mounting portion and the holding portion and disposed opposite to each other, and an electric control board connected to the power supply device is disposed in the handle top and/or the handle bottom.
In some embodiments of the present disclosure, the handle casing includes: the holding portion spaced apart from the casing; an upper arm portion between an upper end of the holding portion and the casing; and a lower arm portion connected between a lower end of the holding portion and the casing, in which the power supply device is disposed to an inner top of the upper arm portion or an outer top of the upper arm portion.
In some embodiments of the present disclosure, the upper end of the holding portion is connected to a center of a bottom of the upper arm portion, and the lower end of the holding portion extends in a direction running away from the casing.
In some embodiments of the present disclosure, the upper arm portion is a rectangle shell disposed horizontally, and the power supply device is disposed in the upper arm portion.
In some embodiments of the present disclosure, the casing has an electrical connection port, and the power supply device is disposed to the outer top of the upper arm portion and electrically plugged in the electrical connection port.
In some embodiments of the present disclosure, the lower arm portion obliquely extends upwards in a direction from the casing to the holding portion.
In some embodiments of the present disclosure, at least part of the upper arm portion, at least part of the lower arm portion and at least part of the casing are integrally molded.
In some embodiments of the present disclosure, at least part of the holding portion, at least part of the upper arm portion and at least part of the lower arm portion are integrally molded.
In some embodiments of the present disclosure, an outer surface of the casing has an upright tube shape, the upper arm portion is connected to a top end of a circumferential surface of the casing, and the lower arm portion is connected to a bottom end of the circumferential surface of the casing.
In some embodiments of the present disclosure, an outer surface of the casing has the upright tube shape, a center line of the holding portion, a center line of the upper arm portion, a center line of the lower arm portion and an axis of the casing are located in a same plane.
In some embodiments of the present disclosure, a central chamber, a dedusting chamber and a dust collecting chamber are provided in the casing; the central chamber has an upright columnar shape and includes an air exhaust chamber and a mounting chamber in communication with each other in an up-and-down direction; the dedusting chamber has a closed annular cross section and surrounds the air exhaust chamber by one circle; the dust collecting chamber is located below the dedusting chamber, and the dust collecting chamber has a non-closed annular cross section and surrounds the mounting chamber by less than one circle, in which the dedusting device is disposed in the dedusting chamber, and the negative pressure device is disposed in the mounting chamber and is in communication with the air exhaust chamber.
In some embodiments of the present disclosure, the casing includes: a dust cup defining the dust collecting chamber, and a cabinet mounted on the dust cup and defining the central chamber and the dedusting chamber; the dust cup includes a base and a cup casing, and the cup casing has a non-closed annular cross section with an opening so as to define the dust collecting chamber whose cross section has the non-closed annular shape in the cup casing; the cup casing is disposed on a top of the base, and a mounting space located outside the dust collecting chamber is defined between an inner-ring wall face of the cup casing and a top wall of the base, in which a top portion of the mounting space is directly opened, and a side portion of the mounting portion is opened by the opening.
In some embodiments of the present disclosure, the central chamber, the dedusting chamber and the dust collecting chamber are provided in the casing; the central chamber has an upright columnar shape and includes an air exhaust chamber and a mounting chamber in communication with each other in an up-and-down direction; the dedusting chamber has a closed annular cross section and surrounds the air exhaust chamber by one circle; the dust collecting chamber is located below the dedusting chamber, and the dust collecting chamber has a closed annular cross section and surrounds the mounting chamber by one circle, in which the dedusting device is disposed in the dedusting chamber, and the negative pressure device is disposed in the mounting chamber and is in communication with the air exhaust chamber.
In some embodiments of the present disclosure, a device housing having a tube shape is provided in the casing, an outer end surface of the device housing at an axial side thereof abuts against or extends beyond a part of an inner surface of the casing, the dedusting chamber is defined between the inner surface of the casing and an outer circumferential surface of the device housing and surrounds the device housing in a circumferential direction of the device housing, and the central chamber is defined in the device housing.
In some embodiments of the present disclosure, the casing includes: a mounting frame, in which the dedusting device is supported on a top of the mounting frame, and the negative pressure device is mounted to a bottom of the mounting frame; and a dust collecting cup covered outside the negative pressure device and detachably connected to the mounting frame.
The handheld cleaner according to some specific embodiments of the present disclosure will be described below.
In some embodiments of the present disclosure, the dust cup assembly includes a casing including a cup body with an open top, and a cleaner cover disposed at a top of the cup body and capable of being opened and closed; a negative pressure device provided in the cup body and used to suck airflow from the environment into the casing; and a dedusting device provided in the cup body, located above the negative pressure device and withdrawable from the top of the cup body when the cleaner cover is opened.
In some embodiments of the present disclosure, the cleaner cover is a circular cleaner cover and has a first end and a second end located at two ends thereof in a diameter direction, in which, the first end is articulated with an upper end edge of the cup body, and the second end is connected to the upper end edge of the cup body by a snap connection.
In some embodiments of the present disclosure, the cleaner cover is detachably mounted on the cup body by a snap connection or a threaded connection.
In some embodiments of the present disclosure, a central chamber and a dedusting chamber surrounding the central chamber are provided in the cup body, the negative pressure device is provided in the central chamber, the dedusting device is provided in the dedusting chamber, a communicating chamber is provided in the cleaner cover, an end surface at a side of the cleaner cover facing towards the cup body has an air inlet communicating the communicating chamber with the dedusting chamber and an air outlet communicating the communicating chamber with the central chamber.
In some embodiments of the present disclosure, the cleaner cover includes an inner cover disposed at the top of the cup body, an outer cover disposed at the top of the cup body and covering over the inner cover, and an in-cover air passage member detachably provided between the inner cover and the outer cover or integrally formed in an inner surface of the outer cover, and the communicating chamber is defined between the inner cover and the in-cover air passage member.
In some embodiments of the present disclosure, the cleaner cover further includes an in-cover filter detachably provided in the communicating chamber to filter the airflow flowing into the communicating chamber.
In some embodiments of the present disclosure, the end face at the side of the cleaner cover is provided with a detachable filter covering on the air inlet.
In some embodiments of the present disclosure, a central chamber, a dedusting chamber and a dust collecting chamber are provided in the cup body, the central chamber is configured to have an upright columnar shape and includes an air exhaust chamber and a mounting chamber in communication with each other in an up-and-down direction, the dedusting chamber has a closed annular cross section and surrounds the air exhaust chamber by one circle, the dust collecting chamber is located below the dedusting chamber, has a non-closed annular cross section, and surrounds the mounting chamber by less than one circle, in which, the dedusting device is provided in the dedusting chamber, and the negative pressure device is provided in the mounting chamber and is in communication with the air exhaust chamber.
In some embodiments of the present disclosure, the cup body includes a dust cup defining the dust collecting chamber and a cabinet disposed on the dust cup and defining the central chamber and the dedusting chamber, in which, the dust cup includes a base and a cup casing, the cup casing is configured to have the non-closed annular cross section with an opening so as to define the dust collecting chamber having the non-closed annular cross section in the cup casing, the cup casing is disposed at a top of the base, a mounting space located outside the dust collecting chamber is defined between an inner-ring wall face of the cup casing and a top wall of the base, a top of the mounting space is directly opened, and a side of the mounting space is opened by the opening.
In some embodiments of the present disclosure, the cabinet includes an upper body and a lower body disposed at a bottom of the upper body, in which, the dedusting chamber and the air exhaust chamber are both formed in the upper body, the mounting chamber is formed in the lower body, the lower body is mounted at the mounting space via an opened portion of the mounting space, and the upper body is supported on the top of the cup casing.
In some embodiments of the present disclosure, the upper body includes a tube casing and an air exhaust pipe, in which, the air exhaust pipe is provided in the tube casing and the dedusting chamber is defined between the air exhaust pipe and the tube casing, a bottom of the air exhaust pipe penetrates through a bottom wall of the tube casing and the air exhaust chamber in communication with the mounting chamber is defined in the air exhaust pipe.
In some embodiments of the present disclosure, a lower portion of the air exhaust pipe is configured as an expansion pipe segment, and an upper end of the negative pressure device extends into the expansion pipe segment.
In some embodiments of the present disclosure, a central chamber, a dedusting chamber and a dust collecting chamber are provided in the cup body, the central chamber is configured to have an upright columnar shape and includes an air exhaust chamber and a mounting chamber in communication with each other in an up-and-down direction, the dedusting chamber has a closed annular cross section and surrounds the air exhaust chamber by one circle, the dust collecting chamber is located below the dedusting chamber, has a closed annular cross section and surrounds the mounting chamber by one circle, in which, the dedusting device is provided in the dedusting chamber, and the negative pressure device is provided in the mounting chamber and is in communication with the air exhaust chamber.
In some embodiments of the present disclosure, a tube-shaped device housing is provided in the cup body, an axial outer end face of the device housing abuts against or penetrates through a partial inner surface of the cup body, the dedusting chamber is defined between the inner surface of the cup body and an outer circumferential surface of the device housing and surrounds the device housing in a circumferential direction of the device housing, and the central chamber is defined in the device housing.
In some embodiments of the present disclosure, the cup body includes a mounting frame, in which, the dedusting device is supported at a top of the mounting frame, and the negative pressure device is mounted to a bottom of the mounting frame; and a dust collecting cup covering over the negative pressure device and detachably connected to the mounting frame.
In some embodiments of the present disclosure, the mounting frame includes a ring, a top end cup ring of the dust collecting cup is connected to the ring in a butt connection; a limiting and supporting portion provided in the ring and fitted with the dedusting device to limit a displacement of the dedusting device in directions other than an upward direction; and a fixed mounting portion provided in the ring and used to fixedly mount the negative pressure device.
In some embodiments of the present disclosure, the dedusting device has a limiting hole penetrating therethrough in an up-and-down direction and a support groove with an open bottom, the support groove includes two support sub-grooves disposed at two radial sides of the limiting hole, the limiting and supporting portion includes a limiting post and a support beam, in which, the limiting post is provided in the ring and fitted in the limiting hole in an insertion manner, the support beam includes two support sub-beams disposed at two radial sides of the limiting post respectively, and the two support sub-beams are correspondingly provided in the two support sub-grooves respectively and support top walls of the corresponding support sub-grooves.
In some embodiments of the present disclosure, the handheld cleaner includes a above-described dust cup assembly, and a handle assembly disposed on the dust cup assembly and used for handholding.
The handheld cleaner according to some specific embodiments of the present disclosure will be described below.
In some embodiments of the present invention, the dust cup is used for the cleaner having the negative pressure device, the dust cup includes a base and a cup casing, in which the cup casing has a non-closed annular cross section with an opening so as to define a dust collecting chamber having a non-closed annular cross section in the cup casing, the cup casing is disposed at a top of the base, a mounting space located outside the dust collecting chamber is defined between an inner-ring wall face of the cup casing and a top wall of the base, a top of the mounting space is directly opened, and a side of the mounting space is opened by an opening, and the negative pressure device is mounted to the mounting space via an opened portion of the mounting space.
In some embodiments of the present invention, the inner-ring wall face of the cup casing is configured as an arc-shaped plate formed by vertically stretching an arc-shaped curve.
In some embodiments of the present invention, the base is configured to have a flat cylindrical shape, and an outer-ring wall face of the cup casing is configured as an arc-shaped plate formed by vertically stretching an arc of a base edge.
In some embodiments of the present invention, a central angle of the above-described arc is 180°˜200°.
In some embodiments of the present invention, the cup casing is provided with a chamber-partition wall, the chamber-partition wall is disposed between the inner-ring wall face and an outer-ring wall face and divides the dust collecting chamber into a first dust collecting chamber and a second dust collecting chamber located at two sides of the chamber-partition wall and isolated mutually, top ends of the first dust collecting chamber and the second dust collecting chamber are both opened as inlets, and bottom ends of the first dust collecting chamber and the second dust collecting chamber are both opened as outlets.
In some embodiments of the present invention, a bottom wall of the second dust collecting chamber is configured as an inclined wall with a high center and two low ends, and the two ends of the inclined wall are opened as outlets of the second dust collecting chamber.
In some embodiments of the present invention, the chamber-partition wall includes a vertical wall, in which, the vertical wall is vertically disposed between the inner-ring wall face and the outer-ring wall face, and a top end of the vertical wall is flush with a top end of the dust collecting chamber; and a horizontal wall connected between a bottom end of the vertical wall and the inner-ring wall face to define the second dust collecting chamber among the horizontal wall, the vertical wall and the inner-ring wall face.
In some embodiments of the present invention, a buffering chamber in communication with the dust collecting chamber is provided in the base.
In some embodiments of the present invention, the base includes a base body and a base bottom cover, the base bottom cover is connected to a bottom of the base body and capable of being opened and closed to define the buffering chamber between the base bottom cover and the base body, a top wall of the base body has a communication hole, a bottom end edge of the outer-ring wall face is connected to an edge of the communication hole in a butt joint, so as to communicate the first dust collecting chamber with the buffering chamber, bottom end edges of the inner-ring wall face and the chamber-partition wall are inserted in the communication hole while being fitted therewith and abut against the base bottom cover, so as to isolate the second dust collecting chamber from the first dust collecting chamber and the buffering chamber.
In some embodiments of the present invention, the dust cup further includes a cup cover, the cup cover is disposed at the top of cup casing, covered on the dust collecting chamber, and provided with a dust inlet in communication with the dust collecting chamber.
In some embodiments of the present invention, a dust cup assembly includes an above-described dust cup; a cabinet detachably mounted to the dust cup; a dedusting device provided in the cabinet and used to remove dust from the airflow sucked into the cabinet; a negative pressure device provided in the cabinet and used to suck airflow from the environment into the cabinet.
In some embodiments of the present invention, a handheld cleaner includes an above-described dust cup assembly; and a handle assembly disposed on the dust cup assembly and used for handholding.
The handheld cleaner according to some specific embodiments of the present disclosure will be described below.
In some embodiments of the present disclosure, the dust cup assembly includes a casing having a central chamber, a dedusting chamber and a dust collecting chamber, wherein the central chamber is configured to have an upright columnar shape and comprises an air exhaust chamber and a mounting chamber in communication with each other in an up-and-down direction, the dedusting chamber has a closed annular cross section and surrounds the air exhaust chamber by one circle, the dust collecting chamber is located below the dedusting chamber, has a non-closed annular cross section, and surrounds the mounting chamber by less than a circle; a negative pressure device, in which at least a majority of the negative pressure device is provided in the mounting chamber and used to suck airflow from the environment into the casing; and a dedusting device provided in the dedusting chamber to remove dust from the sucked airflow.
In some embodiments of the present disclosure, a lower portion of the air exhaust chamber is configured as an expansion pipe segment, and an upper end of the negative pressure device extends into the expansion pipe segment.
In some embodiments of the present disclosure, the dedusting device includes a plurality of cyclones provided around the air exhaust chamber and located directly above the dust collecting chamber, in which, each cyclone is configured as a conical tube having a tangential inlet in a side wall thereof and a tapered bottom.
In some embodiments of the present disclosure, the dedusting device further includes a filtration tube fitted over the plurality of cyclones, the filtration tube has a filtration hole and divides the dedusting chamber into a second cyclone chamber and a first cyclone chamber located at an inner side and an outer side of the filtration tube respectively, and the plurality of cyclones are located in the second cyclone chamber.
In some embodiments of the present disclosure, the dust collecting chamber includes a first dust collecting chamber located directly below the first cyclone chamber and in communication with the first cyclone chamber, and a second dust collecting chamber located directly below the second cyclone chamber and in communication with the plurality of cyclones, and the first dust collecting chamber and the second dust collecting chamber are not in communication with each other.
In some embodiments of the present disclosure, top ends of the first dust collecting chamber and the second dust collecting chamber are both opened to serve as inlets, and bottom ends of the first dust collecting chamber and the second dust collecting chamber are both opened to serve as outlets.
In some embodiments of the present disclosure, a bottom wall of the second dust collecting chamber is configured as an inclined wall with a high center and two low ends, and the two ends of the inclined wall are opened to serve as outlets of the second dust collecting chamber.
In some embodiments of the present disclosure, the casing includes a dust cup including a base and a cup casing, in which, the cup casing is configured to have a non-closed annular across section with an opening so as to define the dust collecting chamber having the non-closed annular cross section in the cup casing, the cup casing is disposed at a top of the base and a mounting space located outside the dust collecting chamber is defined between an inner-ring wall face of the cup casing and a top wall of the base, a top of the mounting space is directly opened, and a side of the mounting space is opened by the opening; and a cabinet, in which, the central chamber and the dedusting chamber are both formed in the cabinet and a portion of the cabinet for containing the negative pressure device is mounted at the mounting space via an opened portion of the mounting space.
In some embodiments of the present disclosure, the dust cup further includes the cup cover, the cup cover is disposed at a top of the cup casing and covers on the dust collecting chamber, the cup cover has a dust inlet in communication with the dust collecting chamber, the dust inlet includes a first dust inlet communicating the first dust collecting chamber with the first cyclone chamber, and a second dust inlet communicating the second dust collecting chamber with the plurality of cyclones, and a lower end of each cyclone penetrates through a bottom wall of the tube casing and is inserted in the corresponding second dust inlet while being fitted therewith.
In some embodiments of the present disclosure, the base includes a base body and a base bottom cover, the base bottom cover is connected to a bottom of the base body and capable of being opened and closed to define a buffering chamber between the base bottom cover and the base body, a top wall of the base body has the communication hole, a bottom end edge of an outer-ring wall face is connected to an edge of the communication hole in a butt joint to communicate the first dust collecting chamber with the buffering chamber, the inner-ring wall face and a bottom end edge of a chamber-partition wall are inserted in the communication hole while being fitted therewith and abut against the base bottom cover to isolate the second dust collecting chamber from the first dust collecting chamber and the buffering chamber.
In some embodiments of the present disclosure, the cabinet includes an upper body and a lower body disposed at a bottom of the upper body, in which, the dedusting chamber and the air exhaust chamber are both formed in the upper body, the mounting chamber is formed in the lower body, the lower body is mounted at the mounting space via the opened portion of the mounting space, and the upper body is supported on the top of the cup casing.
In some embodiments of the present disclosure, the lower body includes a protection casing plate and an appearance casing plate, the protection casing plate is disposed adjacent to the inner-ring wall face and matched with a shape of the inner-ring wall face, the appearance casing plate is located at a side of the protection casing plate far away from the inner-ring wall face, and the mounting space is defined between the appearance casing plate and the protection casing plate.
In some embodiments of the present disclosure, two side edges of the protection casing plate extend to be connected to two side edges of the cup casing in a ring length direction thereof respectively and correspondingly.
In some embodiments of the present disclosure, the mounting space is further provided with an air-exhaust filtration device, the air-exhaust filtration device is located between the negative pressure device and the appearance casing plate and an air exhaust space is defined between the air-exhaust filtration device and the appearance casing plate, in which, and the base is supported at a bottom of the lower body and avoids a bottom of the air exhaust space.
In some embodiments of the present disclosure, at least one of the protection casing plate and the appearance casing plate has a sliding groove extending in an up-and-down direction, the air-exhaust filtration device has an elastic sliding sheet, and the elastic sliding sheet is slidably fitted in the sliding groove and the elastic sliding sheet and has an interference fit with the sliding groove.
In some embodiments of the present disclosure, an isolating screen is provided in the cabinet and interposed between the negative pressure device and the air-exhaust filtration device.
In some embodiments of the present disclosure, the cabinet is detachably connected to the dust cup via a quick release assembly.
In some embodiments of the present disclosure, the cup casing is disposed in front of a top of the base, and the quick release assembly includes a first assembly disposed at a front top of the dust cup and a second assembly disposed at a rear bottom of the dust cup.
In some embodiments of the present disclosure, the first assembly includes a snap plate disposed at a front bottom of the cabinet, extending downwards and having a snap hole; and a snap piece disposed at the front top of the dust cup and extending forward into the snap hole to limit a detachment of the dust cup and the cabinet in a direction other than a front-and-rear direction.
In some embodiments of the present disclosure, the second assembly includes a first snap hook disposed at a rear bottom of the cabinet and having a front end bent downward to define a hooking groove; a second snap hook disposed at the rear bottom of the dust cup and having a rear end bent upward to extend into the hooking groove so as to limit a detachment of the dust cup and the cabinet in a front-rear direction; a movable latch disposed at the rear bottom of the cabinet, movable in a front-rear direction and having a front end abutting against a bottom of the second snap hook to prevent the second snap hook from moving downward out of the hooking groove; and an unlocking button capable of being pressed and disposed to the cabinet and fitted with the movable latch, and the movable latch moves backward to release the position limit for the second snap hook when the unlocking button is pressed.
In some embodiments of the present disclosure, the upper body includes a tube casing and an air exhaust pipe, in which, the air exhaust pipe is provided in the tube casing and the dedusting chamber is defined between the air exhaust pipe and the tube casing, a bottom of the air exhaust pipe penetrates through a bottom wall of the tube casing and the air exhaust chamber in communication with the mounting chamber is defined in the air exhaust pipe.
In some embodiments of the present disclosure, a handheld cleaner includes an above-described dust cup assembly, and a handle assembly disposed on the dust cup assembly and used for handholding.
In some embodiments of the present disclosure, the handheld cleaner further includes an extension pipe including a pipe body member, in which, the pipe body member is configured as a hollow pipe with two open ends and has one end connected to the dust suction inlet of the casing; and a rotating member, in which, the rotating member is disposed at the other end of the pipe body member and integrally formed with the pipe body member, the rotating member is provided with an inlet hole in communication with an interior of the pipe body member to make the dust enter the pipe body member via the inlet hole, and then enter the dust suction inlet along the pipe body member; the rotating member is rotatable with respect to the pipe body member and changes an orientation of the inlet hole with respect to the pipe body member during rotating.
In some embodiments of the present disclosure, the rotating member is connected to the pipe body member via a pivoting shaft, or the pipe body member is connected to the rotating member through a spherical fit.
In some embodiments of the present disclosure, the handheld cleaner further includes an extension pipe, the extension pipe is configured as a hollow pipe with two open ends, one end of the extension pipe is detachably communicated with the dust suction inlet of the casing and the other end thereof has a cleaning member integrally formed with the extension pipe.
In some embodiments of the present disclosure, the handheld cleaner further includes a telescopic hose having a first end extending into and fixed in the extension pipe and a second end detachably connected to the dust suction inlet, the first end of the extension pipe is detachably connected to the casing and the telescopic hose is accommodated in an interior of the extension pipe when the extension pipe is connected to the casing.
In some embodiments of the present disclosure, the handheld cleaner further includes a first detection device, in which, the first detection device is disposed to the casing and used to detect a motion state of the casing; a control device, in which, the control device is connected to the first detection device and the negative pressure device and configured to control a working state of the handheld cleaner according to information detected by the detection device.
In some embodiments of the present disclosure, the control device is configured to control the negative pressure device to increase a suction strength if the first detection device detects that a motion speed of the casing rises, and control the negative pressure device to decrease the suction strength if the first detection device detects that the motion speed of the casing drops.
In some embodiments of the present disclosure, the control device is configured to control the negative pressure device to shut down if the first detection device detects that the casing has never moved in a first predetermined duration, the control device is configured to control the negative pressure device to turn on if the first detection device detects displacement of the casing in a second predetermined duration after a shutdown of the negative pressure device, and the control device is configured to control the handheld cleaner to turn off if the first detection device detects no displacement of the casing in the second predetermined duration after the shutdown of the negative pressure device.
In some embodiments of the present disclosure, the casing has an air intake passage in communication with the dedusting chamber, the handheld cleaner further includes a second detection device used to detect a dust concentration in the air intake passage; and the control device connected to the second detection device and the negative pressure device and configured to control the working state of the handheld cleaner according to the information detected by the second detection device.
In some embodiments of the present disclosure, the control device is configured to control the negative pressure device to increase the suction strength thereof if the second detection device detects that the dust concentration rises, and control the negative pressure device to decrease the suction strength thereof if the second detection device detects that the dust concentration drops.
The handheld cleaner according to some specific embodiments of the present disclosure will be described below.
In some embodiments of the present disclosure, the dust cup assembly includes: a negative pressure device configured to suck and blow an airflow; a dedusting device configured to remove dust from the airflow; and a casing including a cup body with an open top and a cleaner cover disposed at the top of the cup body, in which the cup body includes a mounting frame and a dust collecting cup, the dedusting device is supported on a top of the mounting frame, the negative pressure device is mounted to a bottom of the mounting frame, and the dust collecting cup is covered outside the negative pressure device and connected to the mounting frame.
In some embodiments of the present disclosure, the dust collecting cup is detachably connected to the mounting frame via a button-hook or an internal-external-thread structure.
In some embodiments of the present disclosure, the mounting frame includes: a ring connected to a top cup ring of the dust collecting cup in a butt connection; a limiting and supporting portion provided in the ring and fitted with the dedusting device to limit a displacement of the dedusting device in directions other than an upward direction; and a fixed mounting portion provided in the ring and configured to fix and mount the negative pressure device.
In some embodiments of the present disclosure, the dedusting device includes a limiting hole penetrating therethrough in an up-and-down direction, and a support groove having an open bottom; the support groove includes two support sub-grooves disposed at two radial sides of the limiting hole; the limiting and supporting portion includes a limiting post and a support beam, in which the limiting post is disposed in the ring and inserted in the limiting hole while being fitted therewith, the support beam includes two support sub-beams disposed at two radial sides of the limiting post respectively, and the two support sub-beams are correspondingly disposed in the two support sub-grooves respectively and configured to support top walls of the corresponding support sub-grooves.
In some embodiments of the present disclosure, each support sub-beam has one splicing plate extending downwards, and the dedusting device includes: a split-type filtration tube, in which the split-type filtration tube includes two arc filters respectively disposed at two sides of the support beam in a width direction thereof, and two splicing plates are connected between side edges of the two arc filters adjacent to each other so as to make up a continuous filtration tube together with the two arc filters; and a filtration tube cover plate covered on a top of the split-type filtration tube, in which the limiting hole is formed in a center of the filtration tube cover plate, and the support groove is formed in a bottom wall of the filtration tube cover plate.
In some embodiments of the present disclosure, the dedusting device further includes a cyclone assembly disposed in the split-type filtration tube, two cyclone assemblies are provided and located at two sides of the support groove in a width direction thereof, each cyclone assembly is connected to the corresponding arc filter and includes a plurality of cyclones arranged in a circumferential direction of the split-type filtration tube, and the filtration tube cover plate has an air outlet pipe correspondingly extending into each cyclone.
In some embodiments of the present disclosure, the mounting frame is integrally molded.
In some embodiments of the present disclosure, the cup body further includes a suction nozzle fixed to the mounting frame or integrally molded with the mounting frame.
In some embodiments of the present disclosure, the handheld cleaner includes the dust cup assembly according to embodiments of the first aspect of the present disclosure, and a handle assembly disposed to the dust cup assembly and configured for handholding.
In some embodiments of the present disclosure, the handheld cleaner further includes an extension pipe, and the extension pipe includes: a pipe body member configured as a hollow pipe with two open ends and a first end of the pipe body member being connected with a dust suction inlet in the casing; and a rotating member disposed at a second end of the pipe body member, integrally formed with the pipe body member, and provided with an inlet hole in communication with an interior of the pipe body member, so as to allow dust to enter the pipe body member via the inlet hole and then enter the dust suction inlet along the pipe body member, in which the rotating member is rotatable with respect to the pipe body member and configured to change orientation of the inlet hole with respect to the pipe body member during rotation of the rotating member.
In some embodiments of the present disclosure, the rotating member is connected to the pipe body member via a pivoting shaft, or the pipe body member is connected to the rotating member through a spherical fit.
In some embodiments of the present disclosure, the handheld cleaner further includes an extension pipe, the extension pipe is configured as a hollow pipe having two open ends, a first end of the extension pipe is detachably communicated with a dust suction inlet in the casing and a second end thereof has a cleaning member formed in one piece with the extension pipe.
In some embodiments of the present disclosure, the handheld cleaner further includes a telescopic hose having a first end extending into and fixed in the extension pipe and a second end detachably connected to the dust suction inlet; the first end of the extension pipe is detachably connected to the casing, and the telescopic hose is accommodated within the extension pipe when the extension pipe is connected to the casing.
In some embodiments of the present disclosure, the handheld cleaner further includes: a first detection device disposed to the casing and configured to detect a motion state of the casing; and a control device connected to the first detection device and the negative pressure device, and configured to control a working state of the handheld cleaner according to information detected by the first detection device.
In some embodiments of the present disclosure, the control device is configured to control the negative pressure device to increase a suction strength thereof if the first detection device detects that a motion speed of the casing rises, and to control the negative pressure device to decrease the suction strength thereof if the first detection device detects that the motion speed of the casing drops.
In some embodiments of the present disclosure, the control device is configured to control the negative pressure device to shut down, if the first detection device detects that the casing has never moved in a first predetermined duration during operation of the negative pressure device; the control device is configured to control the negative pressure device to turn on, if the first detection device detects a displacement of the casing in a second predetermined duration after the shutdown of the negative pressure device; and the control device is configured to control the handheld cleaner to turn off, if the first detection device detects no displacement of the casing in the second predetermined duration after the shutdown of the negative pressure device.
In some embodiments of the present disclosure, the casing includes an air intake passage in communication with a dedusting chamber, and the handheld cleaner further includes: a second detection device configured to detect a dust concentration in the air intake passage; and a control device connected to the second detection device and the negative pressure device, and configured to control the working state of the negative pressure device according to information detected by the second detection device.
In some embodiments of the present disclosure, the control device is configured to control the negative pressure device to increase a suction strength thereof if the second detection device detects that the dust concentration rises, and to control the negative pressure device to decrease the suction strength thereof if the second detection device detects that the dust concentration drops.
The handheld cleaner according to some specific embodiments of the present disclosure will be described below.
A handheld cleaner 1000 according to embodiments of the present disclosure will be described with reference to the drawings.
As shown in
As shown in
It should be noted herein that the term “the device housing 2 disposed within the casing 1” should be interpreted broadly, i.e. interpreted in this way that other parts of the device housing 2 are disposed within the casing 1, except a part thereof disposed at an opening 111 and described in the following paragraph, and the part of the device housing 2 may be disposed within the casing 1 or extend out of an inner chamber of the casing 1 via the opening 111.
Referring to
The term “the part of the device housing 2 disposed at the opening 111” means that the part of the device housing 2 closely covers the opening 111 to make the opening 111 only in communication with the air exhaust port 220 of the part. The part may at least partially extend out of the inner chamber of the casing 1, as shown in
Referring to
The negative pressure device 3 is configured to supply negative pressure to the air exhaust chamber A3, such that the dusty air in the environment may be sucked into the dedusting chamber A1 through the dust suction inlet 112 for dust and air separation, and the purified airstream separated from the dedusting chamber A1 enters the device housing 2, i.e. enters the air exhaust chamber A3 to be exhausted to the outside of the casing 1 through the air exhaust port 220 and the opening 111. In short, the dusty air in the environment passes through air passages (like an air passage from the dedusting chamber A1 to the air exhaust chamber A3) in the dust cup assembly 100 and hence dust in the dusty air may be filtered out and stored in the dust cup assembly 100, while the purified airstream may flow back to the environment.
Therefore, in terms of a layout of air passages in the dust cup assembly 100, the dedusting chamber A1 surrounds the air exhaust chamber A3, so the layout is more compact, which reduces suction power loss and improves energy efficiency. Moreover, since the air exhaust port 220 is formed in the device housing 2 and may directly exhaust the airstream to the outside environment via the opening 111 in the casing 1, an air exhaust path is shortened effectively and energy consumption is further reduced to improve the energy efficiency. Additionally, the dust suction inlet 112 is formed in the casing 1 and communicates with the dedusting chamber A1 defined between the casing 1 and the device housing 2, and the air exhaust port 220 is formed in the device housing 2 and communicates with the air exhaust chamber A3 in the device housing 2, such that the air passages have a simple layout, and are convenient to process and free of a problem of airflow short circuit, thus having high reliability of dust filtration and a good dust filtration effect.
Certainly, the present disclosure is not limited thereby. In other embodiments of the present disclosure, the air exhaust port 220 may be formed in the casing 1 instead of the device housing 2, and the air exhaust chamber A3 may be in communication with the air exhaust port 220 through a connecting passage, in which case the casing 1 may not necessarily have the opening 111 and the part of the device housing 2 may not be located at the opening 110 and exposed therefrom.
In some preferable embodiments of the present disclosure, the device housing 2 has a tube shape and is disposed in the casing 1; an outer end face (e.g. a lower end face shown in
Preferably, as shown in
In conclusion, the handheld cleaner 1000 according to the embodiments of the present disclosure is small and lightweight with a compact structure and effortless for handheld use, and the handheld cleaner 1000 has compact air passages, low energy consumption and high energy efficiency.
The extension pipe 300 according to some embodiments of the present disclosure will be described with reference to
Specifically, the extension pipe 300 is configured to be connected with the dust suction inlet 112 of the dust cup assembly 100. That is, when the dust cup assembly 100 needs the extension pipe 300 to suck dust, the extension pipe 300 may be assembled to the dust suction inlet 112; when the dust cup assembly 100 does not need the extension pipe 300 but another component (such as a gap nozzle a mite-killing nozzle, etc.) for dust suction, the extension pipe 300 may be detached from the dust suction inlet 112 and the other component required actually may be assembled to the dust suction inlet 112.
In some specific examples of the present disclosure, referring to
In some other specific examples of the present disclosure, referring to
In some more specific examples of the present disclosure, referring to
Therefore, when the extension pipe 300 is used for cleaning, the second end of the telescopic hose 400 may be connected to the dust suction inlet 112 of the dust cup assembly 100, such that in the process of using the handheld cleaner 1000, the first end of the extension pipe 300 may be connected to a cup body 11, for example, through the quick release snap structure, if the extension pipe 300 does not needs to be stretched, and at this time the telescopic hose 400 may be completely accommodated in the extension pipe 300, but if the extension pipe 300 needs to be stretched to a long length, the extension pipe 300 may be separated from the cup body 11, and at this time the second end of the telescopic hose 400 may be pulled out and exposed from the extension pipe 300 to realize a lengthening effect.
In some embodiments of the present disclosure, as shown in
Therefore, when the user adopts the extension pipe 300 for cleaning different positions via dust suction, the dust cup assembly 100 no longer needs to be lifted, lowered or inclined to adjust the inclination angle of the whole extension pipe 300; instead, only the rotating member 62 needs to pivoted to adjust the orientation of the inlet hole 622 for targeted cleaning of different positions, so as to achieve a better dust suction effect, reduce labor intensity of the user and facilitate the use of the cleaner 1000.
For example, in a specific example of the present disclosure, as shown in
Specifically, the rotating member 62 and the pipe body member 61 are in one piece, that is, the rotating member 62 and the pipe body member 61 are connected together, regardless that the extension pipe 300 is in a use state or an unused state, so the user cannot take down the rotating member 62 from the pipe body member 61 or replace it with other components freely. Or, the second end of the pipe body member 61 has no structure configured to assemble other components, so the second end of the pipe body member 61 cannot be assembled with other components even if the rotating member 62 is disassembled from the second end of the pipe body member 61 forcibly. Thus, a problem that working flexibility of the rotating member 62 is reduced for forcible disassembling of the rotating member 62 may be avoided effectively. It should be noted herein that when the extension pipe 300 needs maintenance, a professional may forcibly detach the rotating member 62 from the pipe body member 61, which should be still understood as the technical solution where the rotating member 62 and the pipe body member 61 are in one piece.
It should be noted herein that some handheld cleaners in the related art have an extension pipe, to which various components may be mounted based on practical requirements, but the components can no longer be connected with the extension pipe firmly for repeated disassembling and assembling, thereby resulting in loose and insecure connection and decreasing service reliability and service life. However, in the present disclosure, the rotating member 62 and the pipe body member 61 are processed as a non-detachable one-piece structure, so as to solve the technical problem reliably and effectively.
In conclusion, as to the extension pipe 300 for the handheld cleaner 1000 according to the embodiments of the present disclosure, since the rotatable rotating member 62 is provided at the second end of the pipe body member 61 away from the dust suction inlet 112, suction orientation of the extension pipe 300 may be adjusted by pivoting the rotating member 62, so as to improve the angle range of dust suction of the extension pipe 300, and moreover, since the pipe body member 61 and the rotating member 62 cannot be detached from each other, operational reliability, flexibility and service life of the whole extension pipe 300 are enhanced effectively.
In the embodiments of the present disclosure, the rotating member 62 and the pipe body member 61 may be pivotably connected in various ways. In a first example described below, the pipe body member 61 and the rotating member 62 may be connected via a pivoting shaft 64. In a second example described below, the pipe body member 61 and the rotating member 62 are connected through spherical fit. Thus, the pivotable connection is reliable with high flexibility and is easy to realize.
Referring to
This example is not shown in the drawings. The second end of the pipe body member 61 has an outer surface formed as an outer spherical surface, and the rotating member 62 has an inner surface formed as an inner spherical surface. For example, the rotating member 62 may be formed as a spherical casing and the inlet hole 622 may penetrate through the rotating member 62 along a radial direction of the rotating member 62, such that the rotating member 62 is fitted over the second end of the pipe body member 61 to make the inner spherical surface in fitted connection with the outer spherical surface. Thus, the pipe body member 61 will not interfere with the rotation of the rotating member 62, which guarantees free and flexible pivot of the rotating member 62.
Preferably, a damping member is provided between the pipe body member 61 and the rotating member 62. For example, in the first example, the damping member is provided between the semi-annular portion 621 and the pivoting shaft 64. For example, in the second example, the damping member is provided between the inner spherical surface and the outer spherical surface. Therefore, after the user pivots the rotating member 62, the rotating member 62 may stop at an angle reliably without further automatic rotation, such that the extension pipe 300 may suck dust stably and reliably towards a direction adjusted by the user, thereby further improving the dust suction effect. It should be noted herein that the damping member is a medium for increasing friction, and a specific product thereof is well known to those skilled in the art and hence will not be elaborated.
In some embodiments of the present disclosure, the rotating member 62 may have a cleaning member 63, such as a rag, a sponge or a bristle portion described below, such that the extension pipe 300 may do cleaning by the cleaning member 63 in the process of dust suction, so as to achieve a better cleaning effect. The cleaning member 63 may be fixed to the rotating member 62, i.e. non-detachable and irreplaceable, or may be detachably fixed to the rotating member 62, i.e. replaceable and detachable. Thus, if a second end of the extension pipe 300 has the cleaning member 63, it is more convenient for the user to clean with a higher cleaning efficiency.
In a specific example of the present disclosure, the rotating member 62 has the bristle portion 631 located at an edge of the inlet hole 622. Referring to
In some extended embodiments of the present disclosure, the extension pipe 300 may be a hollow pipe with two open ends, the first end of the extension pipe 300 is detachably connected with the dust suction inlet 112, and the second end thereof has the cleaning member 63 integrally formed with the extension pipe 300, such that when the extension pipe 300 is dismounted from the dust cup assembly 100, the user may use the extension pipe 300 with the cleaning member 63 separately to do cleaning, which makes the cleaning member 63 possess an independent function from the dust cup assembly 100.
In some specific examples of the present disclosure, the extension pipe 300 includes the pipe body member 61 and the cleaning member 63, the cleaning member 63 is directly mounted to the second end of the pipe body member 61, and the cleaning member 63 and the pipe body member 61 are in one piece. That is, the cleaning member 63 and the pipe body member 61 are connected together, regardless that the extension pipe 300 is in the use state or the unused state, so the user cannot take down the cleaning member 63 from the pipe body member 61 or replace it with other components freely, thus avoiding a problem that service life of the cleaning member 63 is reduced due to frequent dismounting and replacement thereof. It should be noted herein that when the extension pipe 300 needs maintenance, the professional may forcibly detach the cleaning member 63 from the pipe body member 61, which should be still understood as the technical solution where the cleaning member 63 and the pipe body member 61 are in one piece.
In some other specific examples of the present disclosure, the extension pipe 300 includes the pipe body member 61, the rotating member 62 and the cleaning member 63, the cleaning member 63 is directly mounted to the rotating member 62 so as to be indirectly mounted to the second end of the pipe body member 61, and at this time the cleaning member 63, the rotating member 62 and the pipe body member 61 are in one piece. That is, the cleaning member 63, the rotating member 62 and the pipe body member 61 are connected together, regardless that the extension pipe 300 is in the use state or the unused state, so the user cannot take down the rotating member 62 from the pipe body member 61 or take down the cleaning member 63 from the rotating member 62, or replace them with other components freely, thus avoiding the problem that the service lives of the cleaning member 63 and the rotating member 62 are reduced due to frequent dismounting and replacement thereof. It should be noted herein that when the extension pipe 300 needs maintenance, the professional may forcibly dismount the cleaning member 63 and the rotating member 62 from the pipe body member 61, which should be still understood as the technical solution where the cleaning member 63, the rotating member 62 and the pipe body member 61 are in one piece.
In some embodiments of the present disclosure, the extension pipe 300 is a telescopic pipe. Thus, the extension pipe 300 may be stretched and shortened based on practical requirements, i.e. its length may be adjusted adaptively according to a distance from the place to be cleaned, which is user-friendly. It should be noted herein that a specific implementation of the telescopic pipe is well known to those skilled in the art, such as an umbrella handle and a clothes-hanging rod, both of which are telescopic pipes, and no more elaboration is provided herein.
In conclusion, according to the extended embodiments of the present disclosure, when the extension pipe 300 is the telescopic pipe per se, or is connected with the dust cup assembly 100 through the telescopic hose 400, the extension pipe 300 may be stretched and shortened freely and the length thereof can be adjusted, which is user-friendly; moreover, when the extension pipe 300 is connected with the dust cup assembly 100 through the telescopic hose 400, dust suction may be implemented through transition connection of the telescopic hose 400 even if the extension pipe 300 is separated from the dust cup assembly 100. Additionally, since the second end of the extension pipe 300 is provided with the cleaning member 63, the extension pipe 300 may be used separately, for example, as a broom, when it is completely dismounted from the dust cup assembly 100, thereby improving versatility of the extension pipe 300.
The dust cup assembly 100 according to some embodiments of the present disclosure will be described with reference to
As shown in
Referring to
In addition, in some embodiments of the present disclosure, the cup body 11 may further include a main body portion and a bottom cover portion, the main body portion has a tube shape with two open ends, and the bottom cover portion is connected to one open end of the main body portion in such a manner that the bottom cover portion may be opened or closed. Thus, when the bottom cover portion is opened, dust accumulating in the main body portion may be poured out, which is convenient for use.
Referring to
It should be noted herein that the term “tube shape” is interpreted broadly, that is, a cross section of the tube shape is not limited to be circular, and sizes of various cross sections thereof may be equal or not. Additionally, the term “vertically disposed” means that an axis of the tube shape extends substantially along an up-and-down direction shown in
Further, the device housing 2 is disposed in the cup body 11, the dedusting chamber A1 is defined among the cleaner cover 12, the cup body 11 and the device housing 2, and the communicating chamber A2 is defined in the cleaner cover 12. Hence, the dedusting chamber A1 may be communicated with the communicating chamber A2 naturally and easily, and positions of the dedusting chamber A1 and the communicating chamber A2 are arranged reasonably, such that the air passages in the dust cup assembly 100 have high non-obstruction, and the problem of airflow short circuit may be avoided.
As shown in
Preferably, the inner cover 121 has an extension segment 1211 extending towards an interior of the cup body 11, and the inflow communication hole 12110 is defined by the extension segment 1211. In an example shown in
Preferably, the inner cover 121 further has an air outlet ring 1212 extending towards the interior of the cup body 11, and the air outlet ring 1212 is fitted in or over an open end of the device housing 2 and defines an outflow communication hole 12120 that communicates the communicating chamber A2 with an interior of the device housing 2, i.e. communicates the communicating chamber A2 with the air exhaust chamber A3. In examples shown in
In an alternative example of the present disclosure, the inner cover 121 and the outer cover 122 are separately and detachably mounted to the cup body 11. That is, the inner cover 121 is detachably and directly connected with the cup body 11, the outer cover 122 is also detachably and directly connected with the cup body 11, and the inner cover 121 and the outer cover 122 are not directly connected with each other. Thus, the inner cover 121 and the outer cover 122 may be directly detached from the cup body 11, so as to clean the inner cover 121 and the outer cover 122 conveniently.
In the example shown in
In another alternative example of the present disclosure, which is not shown in the drawings, the inner cover 121 is detachably mounted to the outer cover 122, and one of the inner cover 121 and the outer cover 122 is detachably mounted to the cup body 11. That is, the inner cover 121 and the outer cover 122 are detachably and directly connected with each other, and one of the inner cover 121 and the outer cover 122 is detachably and directly mounted to the cup body 11. Thus, the cleaner cover 12 may be detached from the cup body 11 directly, and then the inner cover 121 and the outer cover 122 are detached from each other, so as to clean the inner cover 121 and the outer cover 122 conveniently.
Referring to
Preferably, the in-cover filter 1221 is detachably disposed in the communicating chamber A2. That is, the in-cover filter 1221 may be dismounted from the communicating chamber A2, thereby facilitating the cleaning and replacement of the in-cover filter 1221 and thus improving dust suction and filtration effects. In the example shown in
Referring to
Preferably, referring to
Preferably, as shown in
In some embodiments of the present disclosure, the negative pressure device 3 in the device housing 2 may be mounted to the device housing 2, such that it is convenient to mount the negative pressure device 3 and a simple overall structure is provided. Certainly, the present disclosure is not limited thereby, and the negative pressure device 3 may be mounted to the casing 1.
In the example shown in
Preferably, the connecting portion 262 is detachably connected with the device housing 2, so the negative pressure device 3 may be taken out from the device housing 2 by dismounting the bracket 26 from the device housing 2, so as to facilitate the maintenance and replacement of the negative pressure device 3. For example, in some preferable examples of the present disclosure, the connecting portion 262 and the device housing 2 both have a tube shape, and an outer circumferential wall of the connecting portion 262 and an inner circumferential wall of the device housing 2 are detachably connected through a snap structure or a thread structure, which is convenient to process and provides a better mounting and dismounting effect. It should be noted herein that in the description of the present disclosure, both technical solutions of the threaded connection and the snap connection are well known to those skilled in the art, which will not be elaborated.
Further, referring to
Referring to
Preferably, a part of a side surface of the vibration absorbing member 264 facing the negative pressure device 3 is spaced apart from the negative pressure device 3. In the example shown in
As shown in
Preferably, the positioning member 23 has a tube shape, and has a first axial end (e.g. an upper end shown in
Referring to
Preferably, a plurality of air exhaust ports 220 are provided and evenly disposed in the bottom wall of the device housing 2. Thus, the handheld cleaner 1000 may exhaust the purified air more efficiently, rapidly and smoothly, so as to decrease the resistance on air suction and exhaust, lower the energy consumption and raise the overall energy efficiency of the handheld cleaner 1000.
Referring to
Certainly, the present disclosure is not limited thereby. When the device housing 2 only has the tube shape but not vertically disposed, the device housing 2 may also include the housing body 21 and the housing bottom 22, but the housing body 21 only has the tube shape rather than the vertically disposed tube shape, and the housing bottom 22 is shaped as a bowl and connected to an axial end of the housing body 21. A case where the device housing 2 has the upright tube shape will be taken an example for explanation in the following, and those skilled in the art may understand a technical solution where the device housing 2 only has the tube shape but not vertically disposed, after reading the following technical solution.
Preferably, the housing body 21 is located in the casing 1 and the bottom of the housing body 21 abuts against an inner bottom wall 110 of the casing 1, in which case the dedusting chamber A1 only surrounds the housing body 21 rather than the housing bottom 22 along a circumferential direction of the housing body 21, so as to further enhance compactness of the layout of air passages in the dust cup assembly 100 to reduce the energy consumption for air suction and exhaust and improve the energy efficiency, and meanwhile guarantee the small and lightweight structure of the dust cup assembly 100. Additionally, the housing body 21 and the casing 1 are positioned in that way, thereby improving reliability of positioning the device housing 2 and the casing 1 effectively and facilitating the mounting and dismounting processes.
In a preferable example of the present disclosure, which is not shown in the drawings, the housing body 21 and the housing bottom 22 both are located in the casing 1, an outer bottom wall of the housing bottom 22 is fitted with the inner bottom wall 110 of the casing 1, and a position where the housing bottom 22 is provided with the air exhaust port 220 is opposite the opening 111, which facilitates the mounting process.
In another preferable example of the present disclosure, referring to
Further, referring to
In some embodiments of the present disclosure, referring to
Preferably, in a flow direction of the airstream, the cyclone separating chamber includes multiple stages of cyclone chambers communicated successively, so the dusty air entering the dedusting chamber A1 may go through the multiple stages of cyclone chambers successively for multi-stage dust and air separations, thereby improving the dedusting effect. A two-stage cyclone separating chamber and a three-stage cyclone separating chamber will be taken as examples for explanation in the following, and after reading the following technical solution, those skilled in the art may understand a technical solution having more stages of cyclone chambers, which is not elaborated herein.
In an example shown in
Preferably, the device housing 2 has the tube shape, each stage of cyclone chamber is configured to be a hollow annular-columnar chamber, and in the flow direction of the airstream, an upstream stage of cyclone chamber surrounds a downstream stage of cyclone chamber along the circumferential direction of the device housing 2. For example, the first-stage cyclone chamber surrounds the second-stage cyclone chamber along the circumferential direction of the device housing 2, the second-stage cyclone chamber surrounds the third-stage cyclone chamber along the circumferential direction of the device housing 2, and so on. Further preferably, the most downstream stage of cyclone chamber surrounds the device housing 2 along the circumferential direction of the device housing 2. For example, as to the two-stage cyclone separating chamber, the second-stage cyclone chamber A12 surrounds the device housing 2 along the circumferential direction of the device housing 2, and as to the three-stage cyclone separating chamber, the third-stage cyclone chamber surrounds the device housing 2 along the circumferential direction of the device housing 2. Thus, the overall layout of the cyclone chambers may be compact, thereby reducing the energy consumption for air suction of the negative pressure device 3.
The dedusting device 4 according to some embodiments of the present disclosure will be described briefly in the following.
As shown in
Certainly, the present disclosure is not limited thereby. The dedusting device 4 may only include the first cyclone separating member 41 or the second cyclone separating member 42, in which case the dedusting device 4 defines an one-stage cyclone separating chamber. A case where the dedusting device 4 includes the first cyclone separating member 41 and the second cyclone separating member 42 simultaneously will be taken an example for explanation in the following, and after reading the following technical solution, those skilled in the art may understand a technical solution where the dedusting device 4 only includes the first cyclone separating member 41 or the second cyclone separating member 42.
Referring to
Referring to
In some embodiments of the present disclosure, as shown in
Preferably, the most downstream stage of cyclone chamber includes a plurality of cyclone air passages A10 of the most downstream stage, that are arranged successively along the circumferential direction of the device housing 2, the communicating chamber A2 includes the plurality of communication air passages A20, and the plurality of communication air passages A20 are in corresponding communication with the plurality of cyclone air passages A10 of the most downstream stage. In the example shown in
The plurality of cyclone air passages A10 are in communication with the plurality of communication air passages A20 in one-to-one correspondence. In the examples shown in
Hence, the filtration effect is better.
In some specific examples of the present disclosure, referring to
Preferably, as shown in
Therefore, referring to
Preferably, as shown in
Preferably, as shown in
In an example shown in
Preferably, as shown in
Alternatively, referring to
Referring to
Therefore, in a radial direction of the housing device 2, when the first cyclone separating member 41 is opposite to the first tube segment 211, or opposite to the first tube segment 211 and the transition tube segment 212, the first cyclone separating member 41 may make full use of space of the dedusting chamber A1 to improve the filtration effect on the dusty air. Meanwhile, in the radial direction of the housing device 2, when the negative pressure device 3 is opposite to the second tube segment 213, or opposite to the second tube segment 213 and the transition tube segment 212, the negative pressure device 3 may make full use of space of the air exhaust chamber A3 to improve the filtration effect on the dusty air.
Preferably, an axial length of the second tube segment 213 is greater than an axial length of the transition tube segment 212, for example, more than twice the axial length of the transition tube segment 212, but an axial length of the first tube segment 211 may be greater than or equal to the axial length of the transition tube segment 212. Thus, the first cyclone separating member 41 and the negative pressure device 3 may make better use of space, and the overall dust suction effect of the handheld cleaner 1000 may be improved.
Preferably, referring to
In the example shown in
In some embodiments of the present disclosure, the device housing 2 and the second cyclone separating member 42 are vertically disposed, and two axial ends of the second cyclone separating member 42 abut against an internal wall of the casing 1. In the examples shown in
Therefore, a primary annular-columnar dedusting chamber may be defined between an outer circumferential wall of the second cyclone separating member 42 and the inner circumferential wall of the casing 1, a secondary annular-columnar dedusting chamber may be defined between an inner circumferential wall of the second cyclone separating member 42 and the outer circumferential wall of the device housing 2, and the primary dedusting chamber surrounds the secondary dedusting chamber to defines the whole dedusting chamber together with the secondary dedusting chamber. Since the primary dedusting chamber and the secondary dedusting chamber are located outside and inside of the second cyclone separating member 42 respectively and both configured to have annular-columnar space, the layout of the dedusting chamber becomes more compact, and volumes of the primary dedusting chamber and the secondary dedusting chamber are increased to make dust and air more fully separated.
Referring to
Preferably, referring to
Certainly, the present disclosure is not limited thereby, and the second cyclone separating member 42 may be constituted by other components, for example, by a separating tube with a plurality of notches and filter discs embedded in the plurality of notches, which will not be described in detail.
Preferably, the second cyclone separating member 42 is at least partially in one piece with the first cyclone separating member 41. That is, the second cyclone separating member 42 may be completely in one piece with the first cyclone separating member 41, or only a part of the second cyclone separating member 42 is in one piece with the first cyclone separating member 41. For example, only the separating tube portion 421 and the first cyclone separating member 41 are in one piece, while the filtration tube portion 422 and the separating tube portion 421 are detachably connected with each other. Thus, when the second cyclone separating member 42 is at least partially in one piece with the first cyclone separating member 41, the assembling and disassembling difficulty may be further lowered and the user may conveniently disassemble the dust cup assembly 100 for cleaning.
In some embodiments of the present disclosure, the dedusting device 4 is disposed in the dedusting chamber A1 and defines at least one stage of annular or columnar cyclone chamber. For example, when the dedusting device 4 includes the plurality of cyclones 410, the cyclone 410 may defines the columnar cyclone chamber, but when the dedusting device 4 includes the second cyclone separating member 42, the annular cyclone chamber may be defined between the second cyclone separating member 42 and the casing 1.
The dedusting device 4 further defines a dust collecting groove 4210 in the dedusting chamber A1 and the dust collecting groove 4210 is in communication with the cyclone chamber. Thus, when the dusty air flows in the cyclone chamber in a cyclone manner, the separated dust may accumulate in the dust collecting groove 4210 rather than be rolled up again by the flowing airstream, so as to improve the dust and air separation effect effectively.
In some preferable embodiments (not shown in the drawings) of the present disclosure, the dust collecting groove 4210 is defined by the dedusting device 4, and thus is convenient to process and realize. In a specific example, the dedusting device 4 includes a continuous tube-shaped filter that has a tube shape and only has the filtration hole 4221 therein (for example, the separating tube portion 421 and the filtration tube portion 422 axially connected may make up the continuous tube-shaped filter, and the filtration hole 4221 may be formed in the filtration tube portion 422). The continuous tube-shaped filter is sleeved between the device housing 2 and the casing 1 to define the first-stage cyclone chamber A11 together with the casing 1. The dust collecting groove 4210 is formed by recessing an outer circumferential surface of the continuous tube-shaped filter inwards and communicates with the first-stage cyclone chamber A11, that is, the outer circumferential surface of the continuous tube-shaped filter has a groove recessed towards its central axis and the groove may be used as the dust collecting groove 4210.
In some other preferable embodiments of the present disclosure, the dust collecting groove 4210 is defined by the dedusting device 4 and the device housing 2 together, so as to further improve the structural compactness and save space. In a specific example, referring to
Certainly, the present disclosure is not limited thereby, and in other embodiments of the present disclosure, as shown in
Referring to
Preferably, referring to
Further, referring to
In an embodiment of the present disclosure, referring to
Preferably, the first dust-blocking sheet 113 extends along an axial direction of the casing 1. Therefore, when the casing 1 is vertically disposed, the blocked dust may flow downwards along the first dust-blocking sheet 113 to the bottom of the casing 1 to prevent the dust from being rolled up repeatedly to obstruct the filtration hole 4221 or enter the second-stage cyclone chamber A12, so as to further improve the dust and air separation effect. Preferably, a plurality of first dust-blocking sheets 113 are provided and spaced apart from one another in a circumferential direction of the casing 1. Thus, in the whole circumferential direction of the casing 1, the first dust-blocking sheets 113 may serve to block the dust effectively, so as to further improve the dust and air separation effect.
In an embodiment of the present disclosure, referring to
Preferably, the second dust-blocking sheet 114 extends along a radial direction of the casing 1. Therefore, in the whole radial direction of the casing 1, the second dust-blocking sheet 114 may serve to block the dust effectively, so as to further improve the dust and air separation effect. Preferably, a plurality of second dust-blocking sheets 114 are provided and spaced apart from one another in the circumferential direction of the casing 1. Thus, in the whole circumferential direction of the casing 1, the second dust-blocking sheets 114 may serve to block the dust effectively, so as to further improve the dust and air separation effect.
A working principle of the dust cup assembly 100 according to an embodiment of the present disclosure will be described with reference to the drawings.
Referring to
The handle assembly 200 according to some embodiments of the present disclosure will be described with reference to
Specifically, the holding assembly has a user-friendly handheld feature, and may be, for example, a lift handle or a handle assembly 200. When the holding assembly is configured as the handle assembly 200, the user may control orientation of the dust cup assembly 100 conveniently. For example, it is convenient for the user to make the dust suction inlet 112 of the dust cup assembly 100 face upwards or downwards, so as to facilitate dust suction. Only the handle assembly 200 used as the holding assembly will be taken as an example for explanation in the following. Additionally, it should be noted that the structure of the lift handle is well known to those skilled in the art and hence will not be described in detail.
As shown in
The power supply device 52 may be a battery, for example, a rechargeable battery, which is easy to realize at a low cost and convenient to use.
As shown in
Preferably, the power supply device 52 is mounted in the mounting portion 511 and has a same length direction as the mounting portion 511. Thus, the power supply device 52 makes full use of space in the mounting portion 511 to make the handle assembly 200 miniaturized and allow the user to hold the handle assembly 200 with less effort.
Preferably, the power supply device 52 is mounted in the holding portion 512 and has a same length direction as the holding portion 512. Thus, the power supply device 52 makes full use of space in the holding portion 512 to make the handle assembly 200 miniaturized and allow the user to hold the handle assembly 200 with less effort.
Preferably, the dust cup assembly 100 is tube-shaped, the length direction of the mounting portion 511 is identical to an axial direction of the dust cup assembly 100, and the mounting portion 511 is connected to a radial side of the handle assembly 200, so as to increase a connection area between the mounting portion 511 and the dust cup assembly 100, enhance connection reliability between the handle assembly 200 and the dust cup assembly 100, and save effort for holding. Alternatively, the mounting portion 511 is detachably connected to the dust cup assembly 100. That is, the handle assembly 200 is detachably connected to the dust cup assembly 100, and thus it is convenient for mounting, dismounting, cleaning and replacement.
Further, as shown in
Preferably, an electric control board 53 connected with the power supply device 52 may be provided in the handle top 513, the electric control board 53 connected with the power supply device 52 may be provided in the handle bottom 514, or the electric control board 53 connected with the power supply device 52 may be provided in each of the handle top 513 and the handle bottom 514 simultaneously. Thus, space in the handle casing 51 may be fully utilized.
The handheld cleaner 1000 according to some embodiments of the present disclosure will be described with reference to
As shown in the drawings, the handheld cleaner 1000 according to the embodiments of the present disclosure includes a casing 1, the negative pressure device 3, a first detection device 500A and a control device.
The casing 1 may have an air intake passage that refers to a passage through which the dusty air in the environment flows after entering the casing 1 but before being filtered. The negative pressure device 3 is disposed in the casing 1 and used to make the dusty air outside the casing 1 enter the air intake passage. For example, in a specific example of the present disclosure, the casing 1 may include the casing 1 and the handle casing 51 in this description, the casing 1 has the dust suction inlet 112, and an inner hole of the dust suction inlet 112 defines the air intake passage. The negative pressure device 3 may include the fan 31 and the motor 323 connected with the fan 31, and suction strength of the negative pressure device 3 depends on an operating power of the motor 32. That is, the higher the operating power of the motor 32 is, the faster the fan 31 rotates and the greater the suction strength of the negative pressure device 3 is; the lower the operating power of the motor 32 is, the more slowly the fan 31 rotates and the smaller the suction strength of the negative pressure device 3 is.
The first detection device 500A is disposed to the casing 1 and used to detect a motion state of the casing 1, i.e. to detect whether the casing 1 is moving and how fast the casing 1 moves. For example, the first detection device 500A may be an acceleration sensor or a speed sensor. The control device is connected with the first detection device 500A and the negative pressure device 3. For example, the control device may be a printed circuit board (PCB) of the handheld cleaner 1000, and configured to control a working state of the handheld cleaner 1000 according to information detected by the first detection device 500A, for example, controlling the handheld cleaner 1000 to switch to a turn-on state, a turn-off state, a standby state, a high-suction state and a lower-suction state to be described below.
Therefore, the handheld cleaner 1000 according to the embodiments of the present disclosure may switch to a corresponding working state automatically and intelligently according to a change of its motion state, so as to achieve the dust suction effect and an energy saving effect simultaneously.
In some specific examples of the present disclosure, the control device may be configured to control the negative pressure device 3 to increase the suction strength if the first detection device 500A detects that a motion speed of the casing 1 rises. That is, when the first detection device 500A detects that the user moves the handheld cleaner 1000 faster, i.e., with an increasing speed, the control device increases the suction strength of the negative pressure device 3 to guarantee the dust suction effect.
In some specific examples of the present disclosure, the control device may be configured to control the negative pressure device 3 to decrease the suction strength if the first detection device 500A detects that the motion speed of the casing 1 drops. That is, when the first detection device 500A detects that the user moves the handheld cleaner 1000 more slowly, i.e., with a decreasing speed, the control device decreases the suction strength of the negative pressure device 3 to reduce the energy consumption.
In some specific examples of the present disclosure, the control device may be configured to control the negative pressure device 3 to operate with a first suction strength if the first detection device 500A detects that the motion speed of the casing 1 is higher than a first predetermined value, and control the negative pressure device 3 to operate with a second suction strength if the first detection device 500A detects that the motion speed of the casing 1 is lower than a second predetermined value, in which the first predetermined value is greater than or equal to the second predetermined value, and the first suction strength is greater than or equal to the second suction strength. That is, when the first detection device 500A detects that the motion speed of the handheld cleaner 1000 is relatively great, the handheld cleaner 1000 may switch to the high-suction state automatically and intelligently; and when the first detection device 500A detects that the motion speed of the handheld cleaner 1000 is relatively small, the handheld cleaner 1000 may switch to the low-suction state automatically and intelligently.
Therefore, when the first detection device 500A detects that the user moves the handheld cleaner 1000 in a relatively high speed, the control device may control the negative pressure device 3 to suck dust with a relatively great suction strength, so as to guarantee the dust suction effect; when the first detection device 500A detects that the user moves the handheld cleaner 1000 in a relatively low speed, the control device may control the negative pressure device 3 to suck dust with a relatively small suction strength, so as to reduce the energy consumption.
In some specific examples of the present disclosure, the control device may be configured to control the negative pressure device 3 to shut down, if the first detection device 500A detects that the casing 1 has never moved in a first predetermined duration (like one second). That is, when the handheld cleaner 1000 is at the turn-on state, if the user does not move the handheld cleaner 1000 in the first predetermined duration, i.e. no displacement of the handheld cleaner 1000 is detected by the first detection device 500A, the control device controls the handheld cleaner 1000 to enter the standby state where the negative pressure device 3 stops working but the first detection device 500A keeps working. Thus, when the user puts aside the handheld cleaner 1000 temporarily to do something else, the handheld cleaner 1000 may enter the standby state automatically and intelligently, so as to save unnecessary energy consumption and make it convenient for the user to continue to use the handheld cleaner 1000.
Further, the control device may be configured to control the negative pressure device 3 to turn on, if the first detection device 500A detects displacement of the casing 1 in a second predetermined duration (like ten minutes) after a shutdown of the negative pressure device 3. That is, after the handheld cleaner 1000 enters the standby state, if the user moves the handheld cleaner 1000 in the second predetermined duration, i.e. the first detection device 500A detects displacement of the handheld cleaner 1000 in the second predetermined duration, the control device controls the handheld cleaner 1000 to enter the turn-on state where the negative pressure device 3 starts to work, the first detection device 500A keeps working, and the control device controls the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A. Therefore, when the user continues to use the handheld cleaner 1000, the handheld cleaner 1000 may turn on automatically and intelligently, which is user-friendly.
Further, the control device may be configured to control the handheld cleaner 1000 to turn off, if the first detection device 500A detects no displacement of the casing 1 in the second predetermined duration (like ten minutes) after the shutdown of the negative pressure device 3. That is, after the handheld cleaner 1000 enters the standby state, if the user does not move the handheld cleaner 1000 in the second predetermined duration, i.e. no displacement of the handheld cleaner 1000 is detected by the first detection device 500A, the control device controls the handheld cleaner 1000 to enter the turn-off state where the negative pressure device 3 stops working, the first detection device 500A stops working, and the control device no longer controls the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A. Therefore, when the user leaves the handheld cleaner 1000 and forgets to turn it off, the handheld cleaner 1000 may turn off automatically and intelligently, thus saving the unnecessary energy consumption.
It should be noted herein that the first predetermined value and the second predetermined value may be set according to practical requirements, for example, preset by a designer before the handheld cleaner 1000 leaves the factory, or set and adjusted by the user after the handheld cleaner 1000 leaves the factory. Meanwhile, the first suction strength and the second suction strength may be set according to practical requirements, for example, preset by the designer before the handheld cleaner 1000 leaves the factory, or set and adjusted by the user after the handheld cleaner 1000 leaves the factory.
It should be noted herein that the first predetermined duration and the second predetermined duration may be set according to practical requirements, for example, preset by a designer before the handheld cleaner 1000 leaves the factory, or set and adjusted by the user after the handheld cleaner 1000 leaves the factory.
It should be noted herein that “the turn-on state” means that the handheld cleaner 1000 may conduct dust suction and switch to a corresponding working state by detecting the motion state thereof; “the standby state” means that the handheld cleaner 1000 cannot conduct dust suction; and “the turn-off state” means that the handheld cleaner 1000 can neither conduct dust suction nor switch to the corresponding working state by detecting the motion state thereof.
In some embodiments of the present disclosure, the handheld cleaner 1000 includes a control key connected with the control device. The control key is configured to control the control device to start controlling the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A after being trigged by an odd number of times (like the first time, the third time, the fifth time, etc.), and configured to control the control device to stop controlling the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A after being trigged by an even number of times (like the second time, the fourth time, the sixth time, etc.). The control key may be disposed to the casing 1 or other positions, for example, being configured as a virtual key of a phone application.
That is, only after the user triggers the control key by the odd number of times, can the control device start controlling the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A, i.e. entering an energy-saving mode. Before the user triggers the control key or when the user triggers the control key by the even number of times, the control device will not control the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A, i.e. stopping the energy-saving mode, even if the first detection device 500A performs the detection. Thus, the user is offered more options and enjoys using the handheld cleaner 1000. Moreover, the switching between entering the energy-saving mode and stopping the energy-saving mode can be realized by triggering one control key different times, which saves space occupied by the control key and improves simplicity.
In some other embodiments of the present disclosure, the handheld cleaner 1000 further includes a turn-on control key and a turn-off control key. The turn-on control key is connected with the control device and configured to control the control device to start controlling the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A after being trigged. The turn-off control key is connected with the control device and configured to control the control device to stop controlling the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A after being trigged. The turn-on control key and the turn-off control key may be disposed to the casing 1 and other positions, for example, be configured as virtual keys of a phone application.
That is, only after the user triggers the turn-on control key, can the control device start controlling the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A, i.e. entering the energy-saving mode. After the user triggers the turn-off control key, the control device will not control the working state of the handheld cleaner 1000 according to the information detected by the first detection device 500A, i.e. stopping the energy-saving mode, even if the first detection device 500A performs the detection. Thus, the user is offered more options and enjoys using the handheld cleaner 1000. Moreover, the switching between entering the energy-saving mode and stopping the energy-saving mode can be realized by the turn-on control key and the turn-off control key, which improves accuracy and reliability of operations and reduces the probability of misoperations.
In conclusion, in some specific embodiments of the present disclosure, by providing the handheld cleaner 1000 with a sensor chip for detecting displacement, speed or acceleration, a main PCB may automatically control the motor 32 to work with a small power when the handheld cleaner 1000 moves at a low motion speed for cleaning, so as to reduce an output power of the handheld cleaner 1000, and the main PCB may also automatically control the motor 32 to work with a large power when the handheld cleaner 1000 moves at a high motion speed for cleaning, so as to increase the output power of the handheld cleaner 1000, thus improving dust suction capacity and efficiency and saving energy. Meanwhile, if the handheld cleaner 1000 has no displacement in a preset duration (like one second), the handheld cleaner 1000 may enter the standby state automatically; when the handheld cleaner 1000 is in the standby state, if the displacement thereof happens, the handheld cleaner 1000 may switch to the turn-on state, but if no displacement thereof happens during a certain period of time (like ten minutes), the handheld cleaner 1000 may turn off automatically, i.e. entering the turn-off state, so as to achieve the energy-saving effect. Thus, the handheld cleaner 1000 according to embodiments of the present disclosure may provide the improved dust suction efficiency and the energy-saving effect.
A method for controlling the handheld cleaner 1000 according to some extended embodiments of the present disclosure will be described in detail.
Specifically, the method may include the following steps.
First, (step A) the motion state of the handheld cleaner 1000 is detected, i.e. it is detected whether the handheld cleaner 1000 is moving and how fast the handheld cleaner 1000 moves. Then, (step B) the working state of the handheld cleaner 1000 is controlled according to the detected motion state. For example, the handheld cleaner 1000 is controlled to switch to the turn-on state, the turn-off state, the standby state, the high-suction state and the lower-suction state described above. Thus, with the method for controlling the handheld cleaner 1000 according to the embodiments of the present disclosure, it is possible to make the handheld cleaner 1000 switch to the corresponding working state by detecting the motion state of the handheld cleaner 1000, so as to combine the dust suction effect and the energy-saving effect.
It should be noted herein that step A may be realized by the first detection device 500A described above, and certainly may be realized in other manners. For example, the handheld cleaner 1000 may be provided with a GPS, and the motion state of the handheld cleaner 1000 is detected by a terminal connected with the GPS. Certainly, the present disclosure is not limited thereby, and for example, a camera device may be provided indoors to shoot the handheld cleaner 1000, and the motion state of the handheld cleaner 1000 may be detected by a terminal connected with the camera device. Step B may be realized by the control device described above, and certainly may be realized in other manners. For example, the control in step B may be realized by a remote terminal or a remote control device.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to increase the suction strength when it is detected that the motion speed of the handheld cleaner 1000 rises. That is, when it is detected that the user moves the handheld cleaner 1000 faster, i.e., with an increasing speed, the handheld cleaner 1000 is controlled to increase the suction strength, so as to guarantee the dust suction effect.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to decrease the suction strength when it is detected that the motion speed of the handheld cleaner 1000 drops. That is, when it is detected that the user moves the handheld cleaner 1000 more slowly, i.e., with a decreasing speed, the handheld cleaner 1000 is controlled to decrease the suction strength, so as to reduce the energy consumption.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to operate with the first suction strength when it is detected that the motion speed of the handheld cleaner 1000 is higher than the first predetermined value. That is, when it is detected that the user moves the handheld cleaner 1000 at a relatively high speed, the handheld cleaner 1000 is controlled to switch to the high-suction state, and thus the handheld cleaner 1000 may suck dust with a relatively great suction strength, so as to guarantee the dust suction effect.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to operate with the second suction strength when it is detected that the motion speed of the handheld cleaner 1000 is lower than the second predetermined value. That is, when it is detected that the user moves the handheld cleaner 1000 at a relatively low speed, the handheld cleaner 1000 is controlled to switch to the low-suction state, and thus the handheld cleaner 1000 may suck dust with a relatively small suction strength to reduce the energy consumption.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to enter the standby state, if no displacement of the handheld cleaner 1000 is detected in the first predetermined duration (like one second), when the handheld cleaner 1000 is in the turn-on state.
That is, when the handheld cleaner 1000 is in the turn-on state, if it is detected that the user has never moved the handheld cleaner 1000 in the first predetermined duration (for example, the user puts aside the handheld cleaner 1000 to do something else), the handheld cleaner 1000 may be controlled to enter the standby state, so as to save unnecessary energy consumption and make it convenient for the user to continue to use the handheld cleaner 1000.
Further, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to enter the turn-on state, if it is detected that the handheld cleaner 1000 has a displacement in the second predetermined duration, when the handheld cleaner 1000 is in the standby state. That is, when the handheld cleaner 1000 is in the standby state, if it is detected that the user moves the handheld cleaner 1000 in the second predetermined duration (for example, the user continues to use the handheld cleaner 1000), the handheld cleaner 1000 may be controlled to enter the turn-on state again, which is user-friendly.
Further, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to enter the turn-off state, if no displacement of the handheld cleaner 1000 is detected in the second predetermined duration, when the handheld cleaner 1000 is in the standby state. That is, when the handheld cleaner 1000 is in the standby state, if it is detected that the user has never moved the handheld cleaner 1000 in the second predetermined duration (for example, the user leaves the handheld cleaner 1000 and forgets to turn it off), the handheld cleaner 1000 may be controlled to enter the turn-off state, so as to save the unnecessary energy consumption.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: receiving an instruction of turning on the energy-saving mode, and starting to control the working state of the handheld cleaner 1000 according to the detected motion state thereof after receiving the instruction. That is, only after the instruction of turning on the energy-saving mode is received, can the working state of the handheld cleaner 1000 be controlled according to the detected information, i.e. entering the energy-saving mode. Thus, the user may be offered more options and enjoy using the handheld cleaner 1000.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: receiving an instruction of turning off the energy-saving mode, and stopping controlling the working state of the handheld cleaner 1000 according to the detected motion state thereof after receiving the instruction. That is, after the instruction of turning off the energy-saving mode is received, the handheld cleaner 1000 cannot be controlled to switch the working state thereof, i.e. cannot enter the energy-saving mode, even if the information is detected. Thus, actual requirements of the user may be satisfied better.
In some specific examples of the present disclosure, reception of the instruction of turning on the energy-saving mode and reception of the instruction of turning off the energy-saving mode may be integrated into one key, for example, into the control key described above. When the control key is triggered by the odd number of times (like the first time, the third time, the fifth time, etc.), the instruction of turning on the energy-saving mode is received to make the handheld cleaner 1000 enter the energy-saving mode; when the control key is triggered by the even number of times (like the second time, the fourth time, the sixth time, etc.), the instruction of turning off the energy-saving mode is received to make the handheld cleaner 1000 stop the energy-saving mode.
In some specific examples of the present disclosure, the reception of the instruction of turning on the energy-saving mode and the reception of the instruction of turning off the energy-saving mode may be integrated into two keys respectively, for example into the turn-on control key and the turn-off control key described above. When the turn-on control key is triggered, the instruction of turning on the energy-saving mode is received to make the handheld cleaner 1000 enter the energy-saving mode; when the turn-off control key is triggered, the instruction of turning off the energy-saving mode is received to make the handheld cleaner 1000 stop the energy-saving mode.
The handheld cleaner 1000 according to some embodiments of the present disclosure will be described with reference to
As shown in the drawings, the handheld cleaner 1000 according to the embodiments of the present disclosure includes the casing 1, the negative pressure device 3, a second detection device 500B and a control device.
The casing 1 may have the air intake passage that refers to a passage through which the dusty air in the environment flows after entering the casing 1 but before being filtered. The negative pressure device 3 is disposed in the casing 1 and used to make the dusty air outside the casing 1 enter the air intake passage. For example, in a specific example of the present disclosure, the casing 1 may include the casing 1 and the handle casing 51 in this description, the casing 1 has the dust suction inlet 112, and the inner hole of the dust suction inlet 112 defines the air intake passage. The negative pressure device 3 may include the fan 31 and the motor 323 connected with the fan 31, suction strength of the negative pressure device 3 depends on an operating power of the motor 32. That is, the higher the operating power of the motor 32 is, the faster the fan 31 rotates and the greater the suction strength of the negative pressure device 3 is; the lower the operating power of the motor 32 is, the more slowly the fan 31 rotates and the smaller the suction strength of the negative pressure device 3 is.
The second detection device 500B is disposed to the casing 1 and used to detect a dust concentration in the air intake passage, in which the term “dust concentration in the air intake passage” refers to a dust concentration at a certain section of the air intake passage, or an average dust concentration in a certain segment of sections of the air intake passage, or an average dust concentration in the whole air intake passage. “The dust concentration at the certain section” refers to a ratio of an area occupied by the dust contained in the dusty air within the certain section to an area of the certain section.
In a specific example of the present disclosure, the second detection device 500B may include an emitter 501B and a receiver 502B, and the emitter 501B is disposed opposite to the receiver 502B, such that the dust entering the air intake passage may go through a space between the emitter 501B and the receiver 502B. The emitter 501B and the receiver 502B may be disposed at two sides in the air intake passage respectively, for example, disposed in the dust suction inlet 112 and located at two diametrical ends of the dust suction inlet 112 respectively.
The emitter 501B may be used to emit light to the receiver 502B, and the receiver 502B may be used to receive the light emitted by the emitter 501B. When the dusty airstream flows through the space between the emitter 501B and the receiver 502B, the dust may block some light from being received by the receiver 502B, so the amount of light received by the receiver 502B decreases. In such a way, when a large amount of dust flows through the space between the emitter 501B and the receiver 502B, i.e., the dust centration of the dusty air that flows through the space between the emitter 501B and the receiver 502B is relatively high, the amount of light received by the receiver 502B is small; when a small amount of dust flows through the space between the emitter 501B and the receiver 502B, i.e., the dust centration of the dusty air that flows through the space between the emitter 501B and the receiver 502B is relatively low, the amount of light received by the receiver 502B is large. Thus, the dust centration of the dusty air that flows through the space between the emitter 501B and the receiver 502B may be judged simply and reliably according to the amount of light received by the receiver 502B. It should be noted that structures of the emitter 501B and the receiver 502B are well known to those skilled in the art and hence will not be described in detail.
Certainly, the present disclosure is not limited thereby, and the second detection device 500B may be configured as other devices. In another specific example of the present disclosure, the second detection device 500B may be an image detection system, for example, including a camera and a data terminal. The camera may shoot a dust condition in the air intake passage, and the data terminal may obtain the dust concentration in the air intake passage through computation and analysis according to image information shot by the camera. In one more specific example of the present disclosure, the second detection device 500B may be a weight detection system, for example, including a sensitive scale and a data terminal, and the sensitive scale may be disposed at a bottom of the air intake passage to monitor a weight change in the air intake passage. Since dust is heavier than air, the weight change in the air intake passage mainly reflects a dust weight change, and then the data terminal may obtain the dust concentration in the air intake passage through computation and analysis according to weight information measured by the sensitive scale.
The control device is connected with the second detection device 500B and the negative pressure device 3. For example, the control device may be the PCB of the handheld cleaner 1000, and configured to control the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B, for example, controlling the handheld cleaner 1000 to switch to the high-suction state or the lower-suction state. Therefore, the handheld cleaner 1000 according to the embodiments of the present disclosure may switch to the corresponding working state automatically and intelligently according to changes of the dust concentration in the air intake passage, so as to achieve the dust suction effect and the energy-saving effect simultaneously.
In some specific examples of the present disclosure, the control device may be configured to control the negative pressure device 3 to increase the suction strength thereof if the second detection device 500B detects that the dust concentration rises. That is, when the second detection device 500B detects that the dust concentration in the air intake passage becomes high, the control device increases the suction strength of the negative pressure device 3 to guarantee the dust suction effect.
In some specific examples of the present disclosure, the control device may be configured to control the negative pressure device 3 to decrease the suction strength thereof if the second detection device 500B detects that the dust concentration drops. That is, when the second detection device 500B detects that the dust concentration in the air intake passage becomes low, the control device decreases the suction strength of the negative pressure device 3 to reduce the energy consumption.
In some specific examples of the present disclosure, the control device may be configured to control the negative pressure device 3 to operate with a first suction strength if the second detection device 500B detects that the dust concentration is higher than a first preset value, and control the negative pressure device 3 to operate with a second suction strength if the second detection device 500B detects that the dust concentration is lower than a second preset value, in which the first preset value is greater than or equal to the second preset value, and the first suction strength is greater than or equal to the second suction strength. That is, when the second detection device 500B detects that the dust concentration in the air intake passage is relatively high, the handheld cleaner 1000 may switch to the high-suction state automatically and intelligently; and when the second detection device 500B detects that the dust concentration in the air intake passage is relatively low, the handheld cleaner 1000 may switch to the low-suction state automatically and intelligently.
Therefore, when there is much dust on the surface to be cleaned, i.e. when the second detection device 500B detects that the dust concentration in the air intake passage is relatively high, the control device may control the negative pressure device 3 to suck dust with relatively great suction strength, so as to guarantee the dust suction effect; when there is little dust on the surface to be cleaned, i.e. when the second detection device 500B detects that the dust concentration in the air intake passage is relatively low, the control device may control the negative pressure device 3 to suck dust with relatively small suction strength, so as to reduce the energy consumption.
It should be noted herein that the first preset value and the second preset value may be set according to practical requirements, for example, preset by the designer before the handheld cleaner 1000 leaves the factory, or set and adjusted by the user after the handheld cleaner 1000 leaves the factory. Meanwhile, the first suction strength and the second suction strength may be set according to practical requirements, for example, predetermined by the designer before the handheld cleaner 1000 leaves the factory, or set and adjusted by the user after the handheld cleaner 1000 leaves the factory.
In some embodiments of the present disclosure, the handheld cleaner 1000 includes a control key connected with the control device. The control key is configured to control the control device to start controlling the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B after being trigged by an odd number of times (like the first time, the third time, the fifth time, etc.), and configured to control the control device to stop controlling the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B after being trigged by an even number of times (like the second time, the fourth time, the sixth time, etc.). The control key may be disposed to the casing 1 or other positions, for example, being configured as a virtual key of a phone application.
That is, only after the user triggers the control key by the odd number of times, can the control device start controlling the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B, i.e. entering the energy-saving mode. Before the user triggers the control key or when the user triggers the control key by the even number of times, the control device will not control the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B, i.e. stopping the energy-saving mode, even if the second detection device 500B performs the detection. Thus, the user is offered more options and enjoys using the handheld cleaner 1000. Moreover, the switching between entering the energy-saving mode and stopping the energy-saving mode can be realized by triggering one control key different times, which saves space occupied by the control key and improves simplicity.
In some other embodiments of the present disclosure, the handheld cleaner 1000 further includes a turn-on control key and a turn-off control key. The turn-on control key is connected with the control device and configured to control the control device to start controlling the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B after being trigged. The turn-off control key is connected with the control device and configured to control the control device to stop controlling the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B after being trigged. The turn-on control key and the turn-off control key may be disposed to the casing 1 and other positions, for example, being configured as virtual keys of a phone application.
That is, only after the user triggers the turn-on control key, can the control device start controlling the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B, i.e. entering the energy-saving mode; after the user triggers the turn-off control key, the control device will not control the working state of the handheld cleaner 1000 according to the information detected by the second detection device 500B, i.e. stopping the energy-saving mode, even if the second detection device 500B performs the detection. Thus, the user is offered more options and enjoys using the handheld cleaner 1000. Moreover, the switch between entering the energy-saving mode and stopping the energy-saving mode can be realized by the turn-on control key and the turn-off control key, which improves accuracy and reliability of operations and reduce the probability of misuse.
In conclusion, in the handheld cleaner 1000 according to some specific embodiments of the present disclosure, an emitting sensor and a receiving sensor are respectively provided at two sides of an air passage, through which the sucked dust passes, so that when the dust passes through the air passage between the two sensors, the sensors may perceive the amount of dust and transmit a signal indicating the amount of dust to the main PCB, and thus the main PCB adjusts the power output by the motor 32 according to the signal, thereby improving the dust suction efficiency and saving energy.
Another method for controlling the handheld cleaner 1000 according to some extended embodiments of the present disclosure will be described in detail.
Specifically, the method may include the following steps.
First, (step A) a concentration of dust sucked into the handheld cleaner 1000 is detected, i.e. the dust concentration in the air intake passage of the handheld cleaner 1000 is detected. Then, (step B) the working state of the handheld cleaner 1000 is controlled according to the detected dust concentration. For example, the handheld cleaner 1000 is controlled to switch to the high-suction state or the low-suction state described above. Thus, according to the method for controlling the handheld cleaner 1000 according to the embodiments of the present disclosure, it is possible to make the handheld cleaner 1000 switch to the corresponding working state according to changes of the dust concentration in the air intake passage, so as to combine the dust suction effect and the energy-saving effect.
It should be noted herein that step A may be realized by the second detection device 500B described above, and certainly may be realized in other manners. For example, the handheld cleaner 1000 may be provided with a camera device for shooting a dust condition on the surface to be cleaned, and the concentration of dust sucked into the handheld cleaner 1000 may be judged by a terminal connected with the camera device. Step B may be realized by the control device described above, and certainly may be realized in other manners. For example, the control in step B may be realized by a remote terminal or a remote control device.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to increase the suction strength when it is detected that the concentration of dust sucked into the handheld cleaner 1000 rises. That is, when it is detected that the concentration of dust sucked into the handheld cleaner 1000 becomes high, the handheld cleaner 1000 is controlled to increase the suction strength, so as to guarantee the dust suction effect.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the handheld cleaner 1000 to decrease the suction strength when it is detected that the concentration of dust sucked into the handheld cleaner 1000 drops. That is, when it is detected that the concentration of dust sucked into the handheld cleaner 1000 becomes low, the handheld cleaner 1000 is controlled to decrease the suction strength, so as to reduce the energy consumption.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the negative pressure device 3 to operate with the first suction strength when it is detected that the dust concentration is higher than the first preset value. That is, when it is detected that the dust concentration is relatively high, i.e. there is much dust on the surface to be cleaned, the handheld cleaner 1000 is controlled to switch to the high-suction state, and thus the handheld cleaner 1000 may suck dust with a relatively great suction strength, so as to guarantee the dust suction effect.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: controlling the negative pressure device 3 to operate with the second suction strength when it is detected that the dust concentration is lower than the second preset value. That is, when it is detected that the dust concentration is relatively low, i.e. there is little dust on the surface to be cleaned, the handheld cleaner 1000 is controlled to switch to the low-suction state, and thus the handheld cleaner 1000 may suck dust with a relatively small suction strength, so as to reduce the energy consumption.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: receiving an instruction of turning on the energy-saving mode, and starting to control the working state of the handheld cleaner 1000 according to the detected dust concentration after receiving the instruction. That is, only after the instruction of turning on the energy-saving mode is received, can the working state of the handheld cleaner 1000 be controlled according to the detected information, i.e. entering the energy-saving mode. Thus, the user may be offered more options and enjoy using the handheld cleaner 1000.
In some embodiments of the present disclosure, the method for controlling the handheld cleaner 1000 may further include: receiving an instruction of turning off the energy-saving mode, and stopping controlling the working state of the handheld cleaner 1000 according to the detected dust concentration after receiving the instruction. That is, after the instruction of turning off the energy-saving mode is received, the handheld cleaner 1000 cannot be controlled to switch the working state, i.e. stopping the energy-saving mode, even if the information is detected. Thus, actual requirements of the user may be satisfied better.
In some specific examples of the present disclosure, reception of the instruction of turning on the energy-saving mode and reception of the instruction of turning off the energy-saving mode may be integrated into one key, for example, into the control key described above. When the control key is triggered by the odd number of times (like the first time, the third time, the fifth time, etc.), the instruction of turning on the energy-saving mode is received to make the handheld cleaner 1000 enter the energy-saving mode; when the control key is triggered by the even number of times (like the second time, the fourth time, the sixth time, etc.), the instruction of turning off the energy-saving mode is received to make the handheld cleaner 1000 stop the energy-saving mode.
In some specific examples of the present disclosure, the reception of the instruction of turning on the energy-saving mode and the reception of the instruction of turning off the energy-saving mode may be integrated into two keys, for example into the turn-on control key and the turn-off control key respectively. When the turn-on control key is triggered, the instruction of turning on the energy-saving mode is received to make the handheld cleaner 1000 enter the energy-saving mode; when the turn-off control key is triggered, the instruction of turning off the energy-saving mode is received to make the handheld cleaner 1000 stop the energy-saving mode.
In conclusion, the handheld cleaner 1000 according to some specific embodiments of the present disclosure has the following advantages.
a. The negative pressure device 3 is disposed in the casing 1, such that the dust cup assembly 100 may enjoy a compact, small and lightweight overall structure and be used with high comfort, and the air passages in the dust cup assembly 100 have a compact layout and thus result in less suction power loss and higher energy efficiency.
b. The cyclone separating device is provided in the casing 1, thus improving the cleaning effect of the handheld cleaner 1000, and when the dedusting device 4 surrounds the negative pressure device 3, the working noise of the handheld cleaner 1000 may be reduced, thus improving environmental friendliness of the handheld cleaner 1000.
c. When the negative pressure device 3 and the device housing 2 are in one piece, space may be saved effectively to further improve the structural compactness of the handheld cleaner 1000, the dust capacity may be improved, and the strength of the device housing 2 may be strengthened without increasing cost, such that the device housing 2 may protect the negative pressure device 3 better to prolong the service life of the negative pressure device 3.
d. Other components in the dust cup assembly 100, except some components in one piece, may be connected in a detachable manner, such that the dust cup assembly 100 is convenient to assemble and disassemble and also may be selectively assembled and disassembled, which facilitates targeted cleaning of internal components of the handheld cleaner 1000 and improves the cleaning effect of the handheld cleaner 1000.
e. The motor 32 and the cyclone 410 are axially spaced apart from each other, so as to make better use of the space in the casing 1 and improve the dust suction effect.
f. The air exhaust port 220 is disposed at the bottom of the dust cup assembly 100, the airstream purified by the handheld cleaner 1000 is exhausted downwards, which prevents the dust cup assembly 100 from blowing air to the user, improves the comfort of using the handheld cleaner 1000, and hence raises the user's willingness to use the handheld cleaner 1000.
g. The dust collecting groove 4210 is provided, such that the dust accumulates in dust collecting groove 4210 may be kept away from the airstream flowing in the casing 1 and hence will not be rolled up easily to block the filter or enter the next stage of cyclone chamber, and moreover, after the dust in dust collecting groove 4210 accumulates to a certain amount, dust outside the dust collecting groove 4210 may be adhered to, thereby preventing the dust from being blown up and improving the cleaning effect. Additionally, the first dust-blocking sheet 113 and the second dust-blocking sheet 114 are provided in the casing 1 to further prevent the dust from being blown repeatedly to block the filter or enter the next stage of cyclone chamber, which improves the cleaning effect.
h. The center of gravity of the handle assembly 200 is raised, such that the whole handheld cleaner 1000 may be held more effortlessly.
i. The extension pipe 300 may enlarge the whole angle range of dust suction of the handheld cleaner 1000 on one hand, and also may be detached from the dust cup assembly 100 to be used separately on the other hand.
j. The first detection device 500A is provided, such that the handheld cleaner 1000 may adjust the working state thereof automatically according to its own motion state, thus achieving the dust suction effect and the energy-saving effect simultaneously.
k. The second detection device 500B is provided, such that the handheld cleaner 1000 may adjust the working state thereof automatically according to the dust concentration, thus achieving the dust suction effect and the energy-saving effect simultaneously.
Hereinafter, a handheld cleaner W according to embodiments of the present disclosure will be described with reference to
As shown in
Referring to
Hereinafter, the dust cup assembly WD according to embodiments of the present disclosure will be described with reference to
Referring to
As examples shown in
As shown in
Preferably, referring to
Further, as shown in
Further, referring to
As shown in
Thus, with the dust cup assembly WD according to embodiments of the present disclosure, the cleaner cover D12 is openable, the dust collecting cup D112, the dedusting device D2 and the filter D121 are all detachable components, such that the user may selectively withdraw an component to be cleaned for cleaning, which is convenient for the user to use.
For example, in some optional embodiments of the present disclosure, the dust collecting cup D112 may be detachably connected to the mounting frame D111 by a button-hook structure, in which, the button-hook structure includes a hook for connecting the dust collecting cup D112 and the mounting frame D111 together, and a button for unlocking the hook, that is to say, when the button is pressed, the hook may perform a release motion, such that the dust collecting cup D112 and the mounting frame D111 are disconnected, thus the dust collecting cup D112 may be removed from the mounting frame D111. In which, specific structures and motion principles of the hook that locks two components together and the button unlocks the hook are well known by those skilled in the art, which will not be described in detail herein.
For example, in other optional embodiments of the present disclosure, the dust collecting cup D112 is detachably connected to the mounting frame D111 by an internal-external-thread structure. For example, an outer circumferential surface of a top end of the dust collecting cup D112 may have an external thread, the mounting frame D111 is annular and an inner circumferential surface thereof has an internal thread. Thus, when the dust collecting cup D112 is rotated, the external thread may be threaded into the internal thread, such that the internal thread and the external thread are in a threaded fit, thus the dust collecting cup D112 may be mounted to the mounting frame D111.
In some embodiments of the present disclosure, referring to
Referring to
Thus, a structure of the mounting frame D111 including the ring D1111, the limiting and supporting portion D1112 and the fixed mounting portion D1113 is simple, the one mounting frame D111 has multiple functions of mounting the dedusting device D2, the negative pressure device D3 and the dust collecting cup D112, such that the mounting frame D111 has a powerful function.
Preferably, referring to
In embodiments of the present disclosure, referring to
In addition, in embodiments of the present disclosure, referring to
Preferably, referring to
In embodiments of the present disclosure, the dedusting device D2 has a limiting hole D210 penetrating therethrough in an up-and-down direction and a support groove D211 with an open bottom, and the support groove D211 includes two support sub-grooves D2111 disposed at two radial sides of the limiting hole D210. The limiting and supporting portion D1112 includes a limiting post Da and a support beam Db, the limiting post Da is provided in the ring D1111 and fitted in the limiting hole D210 in an insertion manner, the support beam Db includes two support sub-beams Db1 disposed at two radial sides of the limiting post Da respectively, and the two support sub-beams Db1 are correspondingly provided in the two support sub-grooves D2111 and support top walls of the corresponding support sub-grooves D2111. It should be noted herein that, since the bottom of the support groove D211 is open, the support groove D211 has the top wall, and if a top wall of the support groove D211 is open, the support groove D211 may have a bottom wall.
Thus, the limiting hole D210 is fitted with the limiting post Da in an insertion manner, which effectively avoids a movement of the dedusting device D2 in a horizontal plane with respect to the mounting frame D111. The support groove D211 is supported by the support beam Db, such that the mounting frame D111 may effectively support the dedusting device D2 to prevent the dedusting device D2 from falling, and may effectively prevent the dedusting device D2 from rotating in the horizontal plane with respect to the mounting frame D111. Furthermore, structures of the dedusting device D2 and the limiting and supporting portion D1112 are simple, and may be processed and assembled conveniently, and the supporting effect and the limiting effect on the dedusting device D2 performed by the limiting and supporting portion D1112 are excellent.
It should be noted herein that, the wording “the limiting post Da is fitted in the limiting hole D210 in an insertion manner” means that shapes of the limiting post Da and the limiting hole D210 are matched to each other, after the limiting post Da is coaxially inserted into the limiting hole D210, the limiting post Da is in a clearance fit with the limiting hole D210 and the clearance is uniform. Preferably, a cross section of the limiting post Da is circular, but it is not limited thereto, the cross section of the limiting post Da may also be polygonal or irregular, in which, when the cross section of the limiting post Da is circular, a radial direction of the limiting post Da refers to a diameter direction thereof, and when the cross section of the limiting post Da is not circular, the radial direction of the limiting post Da refers to a length direction of the cross section thereof.
In one optional embodiment of the present disclosure, referring to
Optionally, the dedusting device D2 further includes a cyclone assembly, the cyclone assembly is provided in the split-type filtration tube D22, two cyclone assemblies are included and located at two sides of the support groove D211, each cyclone assembly is connected to the corresponding arc filter D221 and includes a plurality of cyclones arranged in a circumferential direction of the split-type filtration tube D22, the filtration tube cover plate D21 has air outlet pipes D212 correspondingly extending into each cyclone, in which, each cyclone is configured as a conical tube having a bottom tapered and a tangential inlet in a side wall thereof. Thus, the airflow separated by the first stage cyclone separation outside the continuous filtration tube may enter an interior of the continuous filtration tube via a filtration hole D220 of the arc filter D221, and then enters the plurality of cyclones to be subject to a second stage cyclone separation. The airflow separated by the second stage cyclone separation may output upward via the air outlet pipe D212, such that the dedusting effect of the dust cup assembly WD may be further improved. A plurality of air inlets of the above-described cleaner cover D12 are included and directly opposite to upper ends of the plurality of air outlet pipes D212 one to one, thus, the dedusting chamber D102 may conveniently introduce the air into the communicating chamber, which has a high efficiency for dust absorbing.
Preferably, the limiting post Da is a hollow cylinder and the air exhaust chamber D101 is defined therein, a bottom of the air exhaust chamber D101 is in communication with the negative pressure device D3, for example, the fixed mounting portion D1113 may be a cover body in a butt connection with and in communication with the limiting post Da in an up-and-down direction, and the negative pressure device D3 is disposed in the cover body. Thus, when the negative pressure device D3 is started, a negative pressure may be produced in the cover body, a negative pressure may also be produced in the limiting post Da in communication with the cover body, meanwhile, a negative pressure may also be produced in the communicating chamber in the cleaner cover 12 in communication with the air exhaust chamber D101 in the limiting post Da, a negative pressure may also be produced in the dedusting chamber D102 in communication with the communicating chamber, such that the dedusting chamber D102 may suck airflow from the outer environment via the suction nozzle D113.
Hereinafter, referring to
Referring to
Optionally, referring to
Preferably, referring to
In one optional example of the present disclosure, referring to
Preferably, the holding portion E11 may include an inner holding casing and an outer holding casing, the upper arm portion E12 may include an upper-arm upper casing and an upper-arm lower casing, and the lower arm portion E13 may include a lower-arm lower casing and a lower-arm upper casing, in which, the inner holding casing, the upper-arm lower casing, the lower-arm upper casing and the casing D1 are formed in one piece, the outer holding casing may be detachably mounted to an outer side of the inner holding casing, the upper-arm upper casing may be detachably mounted to a top of the upper-arm lower casing, and the lower-arm lower casing may be detachably mounted to a bottom of the lower-arm upper casing.
Preferably, referring to
Preferably, referring to
Hereinafter, referring to
When the negative pressure device D3 (for example, including an electric motor and a fan) is started, the dedusting chamber D102 sucks the dusty air from the outer environment via the suction nozzle D113. After entering the cup body D11, the dusty air undergoes the first stage cyclone separation between the outer circumferential surface of the continuous filtration tube and the inner circumferential surface of the cup body D11, the dust matter separated by the first stage cyclone separation falls into the bottom of the dust collecting cup D112, and the airflow separated by the first stage cyclone separation may enter the continuous filtration tube via the filtration hole D220 of the continuous filtration tube, and enters the plurality of cyclones to undergo the second stage cyclone separation via the tangential inlet in the side wall of each cyclone. The dust matter separated by cyclone separation in the plurality of cyclones falls downward into the bottom of the dust collecting cup D112 via the outlet of the bottom of the cyclone, and the airflow separated by the second stage cyclone separation in the plurality of cyclones may flow upward, pass through the air outlet pipe D212 of the filtration tube cover plate D21 and the filter D121 and air inlet of the cleaner cover D12, and enter the communicating chamber, the airflow in the communicating chamber is discharged into the air exhaust chamber D101 via air outlet of the cleaner cover D12, and finally the airflow flows through the negative pressure device D3 and is discharged via the air exhaust port of the casing D1.
Hereinafter, beneficial effects of the handheld cleaner W according to embodiments of the present disclosure will be briefly described.
1. As to a handheld cleaner in the related art, a power supply device and a negative pressure device are both provided in the handle, and the power supply device is generally disposed to a bottom of the handle, such that the handle has a large volume and weight, which is not only inconvenient but also laborious for handholding with little comfort.
However, with the handheld cleaner W according to embodiments of the present disclosure, the power supply device E2 is disposed to the top of handle casing E1, meanwhile, the negative pressure device D3 is provided in the dust collecting cup D112, such that a distribution of the center of gravity of the handheld cleaner W is effectively improved, i.e. a position of the center of overall gravity of the handheld cleaner W is balanced, the comfort of the user holding the handheld cleaner W is improved, such that the user may use the handheld cleaner W more effortlessly and easily, improving the user experience.
2. As to the handheld cleaner in the related art, a dedusting device is fixed inside the cleaner body, the user may not remove the dedusting device by himself to clean it, thus, the residual dust in the dedusting device easily causes bacterial growth, resulting in stink, and further causes a secondary pollution for the next use, which reduces the overall cleaning effect.
However, with the handheld cleaner W according to embodiments of the present disclosure, since the cleaner cover D12 may be conveniently opened, and the dedusting device D2 may be taken out of the interior of the dust collecting cup D112, such that the user may clean the dedusting device D2 conveniently, which avoids residual dust in the casing D1, avoids problems of growth of bacteria, generation of stink, etc., and improves the overall cleaning effect of the handheld cleaner W.
Hereinafter, a handheld cleaner V according to an embodiment of the present disclosure will be described with reference to
As shown in
Referring to
Hereinafter, the dust cup assembly VB according to the embodiment of the present disclosure will be described.
Referring to
Referring to
Certainly, the present disclosure is not limited to this, and in other embodiments of the present disclosure, the casing B1 may not have the air exhaust chamber B1011, in which case the dedusting chamber B102 may be a columnar cavity and superposed upon the dust collecting chamber B103 and the mounting chamber B1012, and the mounting chamber B1012 may be in direct communication with the dedusting chamber B102. Additionally, referring to
Referring to
For example, in the embodiment shown in
Alternatively, referring to
Alternatively, referring to
Alternatively, referring to
As shown in
Preferably, referring to
Referring to
Referring to
For example, in the embodiment shown in
Preferably, as shown in
Preferably, as shown in
Referring to
Referring to
In some embodiments of the present disclosure, referring to
Alternatively, an edge of the cleaner cover B13 has a first end and a second end opposite to each other (for example, when the cleaner cover B13 is circular, the first end and the second end are located at two sides of the cleaner cover B13 in a diameter direction thereof), the first end is articulated with the cabinet B11, and the second end is connected to the cabinet B11 by a snap connection. Therefore, after the snap connection is released, the user may grasp the second end of the cleaner cover B13 to lift the cleaner cover B13, thus making it convenient for the user to open the cleaner cover B13, and avoiding problems of losing the cleaner cover B13 when the cleaner cover B13 is removed completely and hardly assembling the cleaner cover B13 back to the cabinet B11 after the cleaner cover B13 is removed completely. It should be noted herein that, a snap structure for connecting the cabinet B11 and the cleaner cover B13 is well known to those skilled in the art, and for example, it may be a snap structure for opening a cover of a rice cooker, which thus will not be elaborated herein. Of course, the present disclosure is not limited to this, and the cleaner cover B13 may be designed as a structure completely removable from the cabinet B11, which will not be elaborated herein.
Alternatively, as shown in
In some embodiments of the present disclosure, referring to
Referring to
Referring to
Alternatively, referring to
Certainly, the present disclosure is not limited to this, and the dedusting device B2 may be free of the cyclone separating member B21 and the end cover B22, in which case the dedusting device B2 may be simply configured as a filter screen. Moreover, the cyclone separating member B21 may be free of the filtration tube B211. That is to say, a specific structure of the dedusting device B2 may be specifically configured in accordance with actual production requirements.
Referring to
Referring to
The first dust collecting chamber B1031 is located right under the first cyclone chamber B1021 and the inlet of the first dust collecting chamber B1031 is in communication with the first cyclone chamber B1021. The second dust collecting chamber B1032 is located right under the second cyclone chamber B1022 and the inlet of the second dust collecting chamber B1032 is in communication with the plurality of cyclones B212. Therefore, the dust separated from the first cyclone chamber B1021 may be accurately discharged downwards into the first dust collecting chamber B1031, and the dust separated from the cyclone B212 may be accurately discharged downwards into the second dust collecting chamber B1032, thus effectively addressing a problem that the dust in the dust collecting chamber B103 flows back into the dedusting chamber B102, so as to improve the cleaning effect and efficiency.
Alternatively, a bottom wall of the second dust collecting chamber B1032 is configured as an inclined wall with a high center and two low ends, and the two ends of the inclined wall are opened as outlets B1230 of the second dust collecting chamber B1032. Therefore, the dust falling into the second dust collecting chamber B1032 may slide from top to bottom along the bottom wall of the second dust collecting chamber B1032 to the outlets B1230 at two sides of the bottom of the second dust collecting chamber B1032, thus effectively preventing the dust from rising in the second dust collecting chamber B1032.
Alternatively, the chamber-partition wall B123 includes a vertical wall B1231 and a horizontal wall B1232. The vertical wall B1231 is vertically disposed between the inner-ring wall face B1221 and the outer-ring wall face B1222. Referring to
Referring to
For example, in the embodiment shown in
It should be noted herein that when the dedusting chamber B102 is not divided into the first cyclone chamber B1021 and the second cyclone chamber B1022, the dust cup B12 may not be provided with the chamber-partition wall B123. That is to say, the dust collecting chamber B103 does not need to be divided into the first dust collecting chamber B1031 and the second dust collecting chamber B1032, in which case the cup cover B124 only needs to be provided with the dust inlet B1240, but not need the first dust inlet B1241 and the second dust inlet B1242.
Referring to
Therefore, when the base bottom cover B1212 is in a closed position, the buffering chamber B104 is defined between the base bottom cover B1212 and the base body B1211, in which case the dust in the first dust collecting chamber B1031 may be discharged into the buffering chamber B104 and accumulated in the buffering chamber B104, while the dust in the second dust collecting chamber B1032 may be accumulated at the bottom of the second dust collecting chamber B1032. When the base bottom cover B1212 is in an open position, the base bottom cover B1212 may open a bottom of the buffering chamber B104 and the bottom of the second dust collecting chamber B1032, such that the dust in the buffering chamber B104 may be discharged downwards out and the dust in the second dust collecting chamber B1032 may be discharged downwards out.
Therefore, referring to
The handle assembly VC according to the embodiment of the present disclosure will be described below.
Referring to
Optionally, referring to
Preferably, referring to
In an alternative example of the present disclosure, referring to
Preferably, at least part of the upper arm portion C12, at least part of the lower arm portion C13 and the cabinet B11 are integrally molded, that is to say, at least part of the upper arm portion C12, at least part of the lower arm portion C13 and the cabinet B11 may be configured as an integral part through one injection molding, such that reliability of connecting the handle casing C1 with the cabinet B11 may be enhanced effectively. Preferably, at least part of the holding portion C11, at least part of the upper arm portion C12 and at least part of the lower arm portion C13 may be integrally molded, that is to say, at least part of the holding portion C11, at least part of the upper arm portion C12 and at least part of the lower arm portion C13 may be an integral part through one injection molding, such that structural reliability of the handle casing C1 may be improved effectively.
For example, the holding portion C11 may include an inner holding casing and an outer holding casing, the upper arm portion C12 may include an upper-arm upper casing and an upper-arm lower casing, and the lower arm portion C13 may include a lower-arm lower casing and a lower-arm upper casing. The inner holding casing, the upper-arm lower casing, the lower-arm upper casing and the cabinet B11 are integrally molded, the outer holding casing may be detachably mounted to an outer side of the inner holding casing, the upper-arm upper casing may be detachably mounted to a top of the upper-arm lower casing, and the lower-arm lower casing may be detachably mounted to a bottom of the lower-arm upper casing.
Preferably, referring to
Preferably, referring to
In the following, referring to
When the negative pressure device B3 (e.g. including a motor and a fan) starts, negative pressure is produced in the mounting chamber B1012, and hence negative pressure is also produced in the air exhaust chamber B1011, the communicating chamber B105, the dedusting chamber B102 and the air suction pipe B1113 which are in communication with the mounting chamber B1012. In such a case, the handheld cleaner V may suck the dusty air from the external environment into the dedusting chamber B102 through the air suction pipe B1113, and the dusty air enters the first cyclone chamber B1021 tangentially to undergo the cyclone separation. The dust separated by the cyclone separation in the first cyclone chamber B1021 falls down, enters the first dust collecting chamber B1031 via the first dust inlet B1241 in the cup cover B124, and is further discharged into the buffering chamber B104, while the airflow separated by the cyclone separation in the first cyclone chamber B1021 enters the second cyclone chamber B1022 through the filtration hole B2110 in the filtration tube B211, enters the plurality of cyclones B212 through the tangential inlet B2120 in the side wall of each cyclone B212 to undergo the cyclone separation. The dust separated by the cyclone separation in the plurality of cyclones B212 falls down, enters the second dust collecting chamber B1032 via the second dust inlets B1242 in the cup cover B124, while the airflow separated by the cyclone separation in the plurality of cyclones B212 flows upwards, passes through the plurality of air outlet pipes B222 of the end cover B22, and further through the filter B131 and the air inlet of the cleaner cover B13, and enters the communicating chamber B105. Subsequently, the airflow in the communicating chamber B105 is exhausted into the air exhaust chamber B1011 through the air outlet B1301 in the cleaner cover B13, further passes through the negative pressure device B3 and the isolating screen B5 at a rear side of the negative pressure device B3, and then is exhausted to the air-exhaust filtration device B4. The airflow is further exhausted out of the bottom of the air exhaust space B106 to the external environment of the handheld cleaner V, after final filtration by the air-exhaust filtration device B4.
In the following, beneficial effects in some aspects of the handheld cleaner V according to the embodiment of the present disclosure will be described in brief.
1. For the handheld cleaner in the related art, the power supply device and the negative pressure device are both provided in the handle, and the power supply device is generally disposed at the bottom of the handle, such that the handle has large volume and weight, and thus it is not only inconvenient for the user to hold the handle, but also troublesome and uncomfortable for handholding.
However, for the handheld cleaner V according to the embodiment of the present disclosure, the power supply device C2 is disposed to the top of handle casing C1, and the negative pressure device B3 is disposed in the dust cup B12, so as to improve distribution of the gravity center of the handheld cleaner V effectively, enhance the comfort of holding the handheld cleaner V by the user, and enable the user to use the handheld cleaner V more effortlessly and easily, thereby improving the user experience.
2. For the handheld cleaner in the related art, since the dedusting device is fixed inside the cleaner body, the user cannot remove the dedusting device by himself/herself to clean the dedusting device, such that the dust remaining in the dedusting device tends to cause bacteria growth, result in odor, and further lead to secondary pollution for the next use, thus reducing the overall cleaning effect.
However, for the handheld cleaner V according to the embodiment of the present disclosure, since the cleaner cover B13 may be conveniently opened, and the dedusting device B2 may be taken out of the cabinet B11, the user may clean the dedusting device B2 conveniently, which prevents the dust from remaining in the cabinet B11, avoids problems of bacteria growth and odor generation, and improves the overall cleaning effect of the handheld cleaner V.
3. For the handheld cleaner in the related art, the negative pressure device is typically disposed in the handle, so the handle has the large volume and weight, and thus it is not only inconvenient for the user to hold the handle, but also troublesome and uncomfortable for handholding. In addition, for some other handheld cleaners in the related art, the negative pressure device is disposed in the cup casing but surrounded by the dust collecting chamber entirely, such that the negative pressure device is difficult to assemble or disassemble and is not convenient to maintain or repair.
However, for the handheld cleaner V according to the embodiment of the present disclosure, by disposing the negative pressure device B3 in the dust cup B12, the distribution of the gravity center of the handheld cleaner V is improved effectively, and the comfort of holding the handheld cleaner V by the user is enhanced. Moreover, since the cup casing B122 of the dust cup B12 is configured to have an annular-column shape with a side opening, the negative pressure device B3 may be assembled or disassembled from the side opening conveniently, thus facilitating the assembling, disassembling, maintenance and replacement of the negative pressure device B3. Additionally, since the dedusting device B2 is located in the dedusting chamber B102 outside the dust collecting chamber B103, the dust cup B12 and the dedusting device B2 are relatively independent, the dust in the dust collecting chamber B103 will not be raised or flow back to the dedusting chamber B102 easily, so as to improve the dedusting effect, reduce suction resistance, and lower energy consumption.
4. For the handheld cleaner V according to the embodiment of the present disclosure, the dedusting device B2 and the negative pressure device B3 are both disposed in the cabinet B11, and the dedusting device B2 is arranged at an upper side of the negative pressure device B3. Also, the dust cup B12 is disposed outside the cabinet B11, and the cup casing B122 of the dust cup B12 surrounds the negative pressure device B3 by less than one circle. Thus, the overall structure layout of the handheld cleaner V is optimized and the user experience is improved.
5. For the handheld cleaner V according to the embodiment of the present disclosure, the dedusting device B2 and the negative pressure device B3 are both disposed in the cabinet B11, and the dedusting device B2 is arranged at the upper side of the negative pressure device B3. Also, the dust cup B12 is disposed outside the cabinet B11, and the cup casing B122 of the dust cup B12 surrounds the negative pressure device B3 by less than one circle. Moreover, the power supply device C2 is disposed at the top of the handle casing C1. Thus, the overall structure layout of the handheld cleaner V is further optimized and the user experience is further improved.
6. For the handheld cleaner V according to the embodiment of the present disclosure, since the upper end of the negative pressure device B3 may utilize the expansion space among the bottoms of the plurality of cyclones B212, the space utilization rate and the structural compactness of the dust cup assembly VB are improved, an internal space of the casing B1 is saved, an effective volume of the dust cup B12 is increased, and an overall size of the handheld cleaner V is decreased, thus making the entire handheld cleaner V lightweight and enhancing the user experience.
In the specification, it is to be understood that terms such as “central,” “longitudinal,” “lateral,” “length,” “width,” “thickness,” “upper,” “lower,” “front,” “rear,” “left,” “right,” “vertical,” “horizontal,” “top,” “bottom,” “inner,” “outer,” “clockwise,” “counterclockwise,” “axial,” “radial” and “circumferential” should be construed to refer to the orientation as then described or as shown in the drawings under discussion. These relative terms are for convenience of description and do not require that the present disclosure be constructed or operated in a particular orientation.
In addition, terms such as “first” and “second” are used herein for purposes of description and are not intended to indicate or imply relative importance or significance or to imply the number of indicated technical features. Thus, the feature defined with “first” and “second” may comprise one or more of this feature. In the description of the present disclosure, “a plurality of” means two or more than two, unless specified otherwise.
In the present disclosure, unless specified or limited otherwise, the terms “mounted,” “connected,” “coupled,” “fixed” and the like are used broadly, and may be, for example, fixed connections, detachable connections, or integral connections; may also be direct connections or indirect connections via intervening structures; may also be inner communications of two elements or interaction of two elements, which can be understood by those skilled in the art according to specific situations. In the present disclosure, unless specified or limited otherwise, a structure in which a first feature is “on” or “below” a second feature may include an embodiment in which the first feature is in direct contact with the second feature, and may also include an embodiment in which the first feature and the second feature are not in direct contact with each other, but are contacted via an additional feature formed therebetween. Furthermore, a first feature “on,” “above,” or “on top of” a second feature may include an embodiment in which the first feature is right or obliquely “on,” “above,” or “on top of” the second feature, or just means that the first feature is at a height higher than that of the second feature; while a first feature “below,” “under,” or “on bottom of” a second feature may include an embodiment in which the first feature is right or obliquely “below,” “under,” or “on bottom of” the second feature, or just means that the first feature is at a height lower than that of the second feature.
Reference throughout this specification to “an embodiment,” “some embodiments,” “an example,” “a specific example,” or “some examples,” means that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the present disclosure. Thus, the appearances of the phrases in various places throughout this specification are not necessarily referring to the same embodiment or example of the present disclosure. Furthermore, the particular features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments or examples. In addition, those skilled in the art can integrate and combine different embodiments or examples, and the features in different embodiments or examples without contradiction.
Although embodiments of the present disclosure have been shown and illustrated, it shall be understood by those skilled in the art that various changes, modifications, alternatives and variants without departing from the principle and spirit of the present disclosure are acceptable. The scope of the present disclosure is defined by the claims or the like.
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Filing Document | Filing Date | Country | Kind |
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PCT/CN2016/108103 | 11/30/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2018/000718 | 1/4/2018 | WO | A |
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20040078923 | Streciwilk | Apr 2004 | A1 |
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1911153 | Feb 2007 | CN |
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102217912 | Oct 2011 | CN |
102217912 | Oct 2011 | CN |
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Number | Date | Country | |
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20190104904 A1 | Apr 2019 | US |