This application claims priority to Japanese Patent Application No. 2021-036026 filed Mar. 8, 2021, the entire contents of which are incorporated herein by reference.
The disclosure relates to a cleaning apparatus that cleans a surface to be cleaned while moving on the surface to be cleaned.
Heretofore, autonomously moving cleaning apparatuses referred to as cleaning robots are known. An autonomous type of cleaning apparatus cleans a surface to be cleaned by suctioning in dust (or other objects to be suctioned in) from the surface to be cleaned along with taking in air using an intake fan through a suction port of an intake nozzle oriented toward the surface, while moving on a surface such as a floor surface. The dust that is suctioned in is guided to a dust collection box attached to the cleaning apparatus, separated from air by a filter inside the dust collection box, and collected in the collection box. The air from which dust is removed is discharged to the outside through an air discharge duct.
A known cleaning robot is configured such that an intake fan is provided in an apparatus body and a cleaning unit attached to a back face of the apparatus body is connected to the intake fan by a hose. In the above-described configuration, the air passed through the intake fan is discharged to the outside from an outlet provided in the apparatus body through an air discharge duct that extends from the air outlet of the intake fan to the outlet.
Note that cleaners are known that include a circulation structure for circulating the air to be discharged inside the apparatus bodies by returning the air to intake nozzles.
JP 7-222696B may be an example of the related art.
However, the cleaner described in JP 7-222696B is configured such that the air to be discharged is returned to the intake nozzle, and therefore a sufficient suction force may not be obtained.
On the other hand, in the aforementioned known autonomously moving cleaning apparatus, the air discharge duct is provided inside the apparatus body, and therefore the air discharge duct needs to be laid out by bypassing other devices that are mounted inside the apparatus body, such as a control unit, a movement unit, a battery, a power supply unit, a motor, and a sensor. Therefore, the duct length increases, and the flow channel resistance also increases, and as a result, the suction force of the intake fan may decrease. Although the flow channel resistance may be reduced by increasing the inner diameter of the air discharge duct, the size of the apparatus body needs to be increased in order to provide the installation space of the air discharge duct, which hampers the reduction in size of the apparatus.
Also, when a configuration is adopted in which air is discharged from an outlet provided in the surface of the apparatus body, discharging air is sprayed around the cleaning robot, and therefore the discharging air is blown against persons in the vicinity, making those persons feel uncomfortable. Also, when the discharging air is blown against an object in the vicinity, the state of the object may change. Therefore, the suction force of the intake nozzle may not be increased by increasing the blasting force of the intake fan. Also, discharging air may contain fine particle substances that are not removed by a filter, and therefore, if the discharging air is forcefully blasted out to the outside, fine particle substances are scattered around the apparatus.
Also, when the configuration is such that air is discharged to the outside from the outlet provided in a bottom face of the apparatus body, dust on the surface to be cleaned is scattered, and the cleaning efficiency may degrade.
A cleaning apparatus according to one or more embodiments may reduce the force of the discharging air flow to the outside.
(1) A cleaning apparatus according to one or more embodiments may include: a moving body configured to move on a surface to be cleaned in a moving direction; and a cleaning unit that is provided in the moving body and is configured to clean the surface to be cleaned. The cleaning unit includes an intake nozzle; an intake unit configured to suction in objects, along with air, from the surface to be cleaned through the intake nozzle; a collection container configured to separate the objects that are suctioned in and collect the objects in its inside; an air discharge duct configured to guide air suctioned in by the intake unit from an air outlet of the intake unit to the inside of the cleaning unit; and a cover member that covers at least the air discharge duct, and is configured to form an internal space with the air discharge duct.
As a result of the above-described configuration, the air suctioned in by the intake unit from the collection container passes through the air discharge duct and is discharged to an internal space of the cleaning unit. The internal space functions as a buffer chamber for reducing the force of the discharging air flow. Therefore, when air is discharged to the internal space, the force of the discharging air flow is reduced. Also, the force of the discharging air flow to the internal space is also reduced by collision with an inner face of the cover member. The air flow whose force has been reduced moves toward every corner of the internal space while the force thereof is being further reduced, and is finally gently discharged to the outside through gaps of attachment portions such as the cleaning unit and the cover member. Accordingly, the influence of the discharging air to the surrounding area of the cleaning apparatus may be minimized. Also, scattering of dust on the floor surface, and scattering of fine particle substances may be reduced. Also, air is discharged to the inside of the cleaning unit instead of the inside of the moving body, and therefore discharging air is not blown against electronic devices such as a control unit and electronic components that are provided inside the moving body, and as a result, malfunction, failure, or the like of the electronic devices due to discharging air being blown against them may be prevented.
(2) In the cleaning apparatus according to one or more embodiments, the cleaning unit is attached to a back face of the moving body. The intake unit suctions in air inside the collection container through an outlet provided in an upper portion of a front face of the collection container on the moving direction side. The air discharge duct forms a discharging air flow channel extending from the air outlet of the intake unit to an internal space sideward of the collection container.
As a result of the above-described configuration, air may be guided to a relatively large space that is formed sideward of the collection container. As a result, the force of the discharging air flow may be effectively reduced.
(3) In the cleaning apparatus according to one or more embodiments, the cleaning unit further includes a distribution duct that is attached to an outlet of the air discharge duct and is configured to distribute a discharging air flow from the outlet into a plurality of air flows toward the internal space.
As a result of the above-described distribution duct being provided, the discharging air flow is distributed into a plurality of flow channels. Accordingly, the force of the discharging air flow to the internal space is further reduced.
(4) In the cleaning apparatus according to one or more embodiments, the distribution duct has a tubular shape whose inside is hollow, and includes a plurality of opening portions in its outer circumferential surface.
(5) In the cleaning apparatus according to one or more embodiments, the plurality of opening portions are formed in portions, of the outer circumferential surface, that oppose an inner face of the cover member.
As a result of the above-described configuration, the air flow discharged from the opening portions collides with the inner face of the cover member, and therefore the air flow is further distributed due to collision.
(6) The collection container is arranged at the center, in a width direction, of a back face of the moving body. The intake unit includes a first air outlet provided in a side face of its casing on one side in the width direction, and a second air outlet provided in a side face on the other side. The air discharge duct includes a first air discharge duct and a second air discharge duct. The first air discharge duct forms a first discharging air flow channel extending from the first air outlet to a space formed between the cover member and an upper portion of a first side face of the collection container on the one side. The second air discharge duct forms a second discharging air flow channel extending from the second air outlet to a space formed between the cover member and an upper portion of a second side face of the collection container on the other side.
As a result of the above-described configuration, the air suctioned in by the intake unit is distributed into two air flows that are guided to the internal spaces formed on both sides in the width direction. Accordingly, the force of the discharging air flow in the internal space may be further reduced.
(7) The cleaning apparatus according to one or more embodiments may further include a driving force transmission unit configured to move the moving body by transmitting a driving force in the moving direction to the surface to be cleaned.
As a result of the above-described configuration, the cleaning apparatus may move autonomously.
According to one or more embodiments, the force of discharging air flow to the outside may be reduced.
Hereinafter, one or more embodiments will be described with reference to the drawings. Note that the following embodiments are merely specific examples of the invention, and are not intended to limit the applicable scope of the invention. Note that a vertical direction D1, a front-back direction D2, and a horizontal direction or a width direction D3 are shown with reference a “portrait” viewing orientation of a person viewing the drawings with the text in a readable orientation.
The cleaning apparatus 10 shown in
Note that the cleaning apparatus 10 is merely one example of a cleaning apparatus according to one or more embodiments. One or more embodiments may also be applied to a cleaning apparatus that cleans an indoor floor surface 23 while autonomously moving thereon, a cleaning apparatus that cleans road surfaces of an outdoor footway and a road while autonomously moving thereon, and the like. Also, the cleaning apparatus 10 may be an autonomously moving mobile robot that has at least a cleaning function, but is not limited to a cleaning apparatus 10 that has only a cleaning function. For example, one or more embodiments may also be applied to an autonomously moving mobile robot that has other functions for the purpose of other applications, in addition to the cleaning function. For example, one or more embodiments may also be applied to autonomously moving apparatuses such as a mobile robot that has a guarding function while autonomously moving, a mobile robot that has a caretaking function, a mobile robot that has a load carriage function, and a mobile robot that has a display and guide function, in addition to the cleaning function. Also, one or more embodiments may also be applied to a manual type cleaning apparatus that cleans a floor surface 23 while being moved by manual pushing by a worker, for example, in addition to mobile robots that move autonomously.
As shown in
As shown in
The apparatus body 11 is configured to move on the floor surface 23, which is a surface to be cleaned, in a predetermined moving direction. In the present embodiment or embodiments, the apparatus body 11 can move using the moving unit 12. As shown in
The wheels 121 are attached rotatably on both sides of the chassis 11B in the horizontal direction D3 (width direction), at the center in the front-back direction. The four casters 122 are for keeping the moving posture of the apparatus body 11, and are attached rotatably on both sides at the forward end of the chassis 11B, and on both sides at the rear end of the chassis 11B. The outer circumferential surfaces of the wheels 121 and the casters 122 are supported by the floor surface 23 in a state in which the cleaning apparatus 10 is placed on the floor surface 23. Accordingly, the apparatus body 11 is kept in the moving posture, as shown in
Rotating shafts of the wheels 121 are respectively connected to output shafts of the motors 13 via transmission mechanisms such as reduction gears. Therefore, when the motors 13 are driven, and rotational driving forces are output from the output shafts, the rotational driving forces of the motors 13 are transmitted to the wheels 121. In the present embodiment or embodiments, the motors 13 are provided individually to the two wheels 121. Therefore, the rotating speeds of the wheels 121 are controlled by individually controlling the driving of the motors 13. For example, when the rotating speeds of the wheels 121 are controlled to be the same, the cleaning apparatus 10 moves straight, and when the rotating speeds of the wheels 121 are controlled to be different, the cleaning apparatus 10 turns to the side of the wheel 121 that rotates more slowly.
The battery 14 is provided in a central portion of the apparatus body 11. The battery 14 supplies driving power to the motors 13 and motors 74 of intake fans 72 of an intake unit 70 (see
The console unit 20 is provided in an upper portion of the apparatus body 11. The console unit 20 is attached to the exterior cover 11A. The console unit 20 is a device to be operated by a worker, and is a terminal apparatus including a touch panel on which a touch operation can be performed, for example. Various types of registration information (information such as a moving route, a cleaning area, a cleaning time slot, and home position information) for the cleaning apparatus 10 can be input through the console unit 20. The input registration information is transferred to the control unit 40, and is used for movement control performed by the control unit 40.
The display panel 21 is provided in a front face of the apparatus body 11. The display panel 21 is a liquid crystal panel, for example. Various types of announcement information are displayed in the display panel 21 by the control unit 40 while cleaning is performed. The announcement information is information indicating the fact that cleaning is underway, guidance information regarding the floor on which cleaning is performed, and the like.
The operating handle 22 is provided in an uppermost portion of a back face of the apparatus body 11. The operating handle 22 is an operation member that is held by a worker when the worker performs cleaning by manually operating the cleaning apparatus 10, or when the worker performs a teaching operation (instructing operation) for instructing the moving route to the cleaning apparatus 10. The operating handle 22 is provided with various operation buttons for receiving driving operations from a worker. Information regarding operations performed on the operation buttons is transferred to the control unit 40, and is used for movement control performed by the control unit 40.
As shown in
The cleaning unit 30 includes a collection box 31 (an example of a collection container according to one or more embodiments), a support holder 32, an intake nozzle 33, an extension nozzle 34 (see
The support holder 32 is provided on the back face of the apparatus body 11. The support holder 32 is a supporting member that supports the collection box 31 such that the collection box 31 can be attached and removed. The collection box 31 is attached to the support holder 32 and is removable.
As shown in
The cover 35 is attached to the support holder 32. As a result of the cover 35 being attached to the support holder 32, components provided inside the cleaning unit 30 such as the air discharge duct 80 and a distribution duct 85, which will be described later, are covered, and an internal space is formed between the support holder 32 and an inner face of the cover 35.
In a state in which the cover 35 is attached to the support holder 32, the housing portion 322, together with the cover 35, forms a recessed housing space extending in the vertical direction D1. The collection box 31 is attached removably to the housing portion 322, and is accommodated in the recessed housing space of the housing portion 322 when it is attached to the housing portion 322.
As shown in
The intake nozzle 33 is a portion for suctioning up waste matters such as dust from the floor surface 23 along with air when the intake fans 72 operate. The intake nozzle 33 includes a suction port 331 at a position separated from the floor surface 23 upward by a gap ΔT. The intake nozzle 33 extends in the width direction D3, and is constituted by a rectangular tube-shaped outer circumferential wall 332 that protrude downward from an outer circumferential portion of a bottom plate 324 of a base portion 321.
An elastic sheet-like seal member 335 extending toward the floor surface 23 is provided on an edge portion, on the rear side, of the suction port 331 of the intake nozzle 33. The seal member 335 is rectangular and elongated in the width direction D3. The gap ΔT between the edge portion of the suction port 331 on the rear side and the floor surface 23 is closed by the seal member 335.
A pair of rotary brushes 26 (see
As shown in
As shown in
The support holder 32 includes a plate-shaped base portion 321 extending in the vertical direction D1. The base portion 321 is attached to the back face frame 11C (see
The housing portion 322 is integrally formed in the base portion 321. The housing portion 322 is provided on a face 321A on the rear side of the base portion 321, and is arranged at the center, with respect to the width direction D3, of the base portion 321. The housing portion 322 includes a pair of side plates 322A and a retaining board 322B. The two side plates 322A are spaced apart from each other in the width direction D3 by a predetermined distance. The retaining board 322B, which extends in the width direction D3, is attached to the rear end portions of the lower portions of the side plates 322A. Also, a bottom plate 324 that forms an upper face of the intake nozzle 33 is provided in a lower portion of the base portion 321. The collection box 31 is housed in a housing space that is surrounded by the pair of side plates 322A, the retaining board 322B, and the bottom plate 324.
The rear side of the housing portion 322 is open in a state in which the cover 35 is attached, and the upper side is also open (see
As shown in
In the present embodiment or embodiments, in a state in which the collection box 31 is attached to the housing portion 322, two outlets (not illustrated) provided in a side face on the front side (front face) of the collection box 31 are connected to the intake ports 73. Accordingly, the intake unit 70 is connected to the collection box 31 such that air can be suctioned from the collection box 31.
An air filter for capturing and removing waste matters such as dust from the air discharged from the outlet is provided inside the collection box 31. As a result, clean air is obtained. A chemical filter, a HEPA filter, an ULPA filter, or the like can be used as the air filter.
A rectangular opening 323 elongated in the width direction D3 is formed in a bottom face of the housing portion 322. The opening 323 is in communication with the intake nozzle 33, which will be described later. In a state in which the collection box 31 is attached to the housing portion 322, an inlet 311 provided in a bottom face of the collection box 31 is aligned to the opening 323. Accordingly, the intake nozzle 33 is brought into communication with the collection box 31. When air is suctioned in by driving the intake fans 72, the pressure inside the collection box 31 decreases, and as a result, waste matters such as dust are suctioned up through the intake nozzle 33 along with air. Then, the suctioned up waste matters flow into the collection box 31 through the inlet 311, and are collected in the collection box 31.
The support shaft 61 is a member for positioning the cleaning unit 30 to a cleaning position when cleaning is performed. Downward movement of the cleaning unit 30 from the cleaning position is restricted as a result of a rotating cam (not illustrated) included in the dial unit 62 engaging with the support shaft 61.
The support shaft 61 is a horizontal shaft member extending in the width direction D3, and is fixed to a support frame or the like of the apparatus body 11. As a result of the rotating cam included in the dial unit 62 being supported by an upper face of the support shaft 61, the cleaning unit 30 supported by the sliding mechanism 50 is kept at the cleaning position.
Two dial units 62 are provided in the cleaning unit 30. The two dial units 62 are attached to a bracket 325 that is fixed to a face 321B on the forward side of the base portion 321. The two dial units 62 are arranged side by side in the width direction D3.
The dial units 62 include adjustment dials 69 (see
The intake unit 70 is provided in an upper portion of the cleaning unit 30, and specifically is attached to the base portion 321 of the support holder 32. The intake unit 70 is for generating a suction force for causing air to be suctioned in through the intake nozzle 33 of the cleaning unit 30, and suctions in waste matters such as dust (objects to be suctioned in) from the floor surface 23 through the intake nozzle 33 along with air.
The driving of the motors 74 is controlled by the control unit 40 provided in the apparatus body 11. As shown in
The intake fans 72 are centrifugal fans or sirocco fans (multiblade fans) that blast air in a direction perpendicular to an intake direction D11, for example. The intake fans 72 are arranged such that their inlets face the intake ports 73. Rotation support portions are provided at the respective centers of the intake fans 72, and the output shafts of the motors 74 are attached to the respective rotation support portions. As shown in
As shown in
An opening 713 is formed in a face on the rear side of the casing 711, and a seal member 714 is provided at circumferential edges of the opening 713. In the present embodiment or embodiments, the casing 711 is fixed to the base portion 321 such that the opening 713 is closed by the face 321B of the base portion 321 of the support holder 32. When the motors 74 are driven in the above-described state and the intake fans 72 rotate, the air inside the collection box 31 is suctioned in through the intake ports 73, and is conveyed to the later-described air discharge ducts 80. Also, the partition plate 712 is provided in the casing 711, and therefore, when the intake fan 72A rotates, air will not flow to the intake fan 72B side, but be conveyed toward an air discharge duct 80A located on the left side. Also, when the intake fan 72B rotates, air will not flow to the intake fan 72A side, but be conveyed toward an air discharge duct 80B located on the right side.
As shown in
The air discharge ducts 80 are duct members that guide air that is suctioned into the inside of the casing 711 by the intake unit 70 to an internal space of the cleaning unit 30 through air discharge ports 76 (air outlets, see FIG. 12) of the casing 711. The two air discharge ducts 80 are spaced apart from each other in the width direction D3, an air discharge duct 80A located on the left side guides air from an air discharge port 76A provided in a left side face of the casing 711 to an upper portion of the internal space of the cleaning unit 30, and an air discharge port 76 provided in a right side face of the casing 711 to an upper portion of the internal space of the cleaning unit 30.
As shown in
In the present embodiment or embodiments, the air discharge duct 80A guides air to the upper space 39A. That is, the air discharge duct 80A is a duct member that forms an air flow channel (first discharging air flow channel) that extends from the air discharge port 76A to the upper space 39A. Also, the air discharge duct 80B guides air to the upper space 39B. That is, the air discharge duct 80B is a duct member that forms an air flow channel (second discharging air flow channel) that extends from the air discharge port 76 in the right side face of the casing 711 to the upper space 39B. Note that the air discharge ports 76 are examples of a first air outlet and a second air outlet of one or more embodiments. Also, the air discharge ducts 80A, 80B are examples of a first air discharge duct and a second air discharge duct of one or more embodiments.
As a result of these air discharge ducts 80 being provided, as shown in
As shown in
In the present embodiment or embodiments, the distribution duct 85 is cylindrical, and four opening portions 86 are formed in its outer circumferential surface. Also a sheet-like filter 87 (see
As shown in
As shown in
As a result of these distribution ducts 85 being attached to the air discharge ducts 80, the flow of air flowing into the distribution ducts 85 from the air discharge ducts 80 is distributed toward the plurality of opening portions 86, and the distributed flow is blasted out from the opening portions 86 (see white arrows). Accordingly, as a result of the air flow passing through the distribution ducts 85 being distributed into a plurality of flow channels, the force thereof can be reduced. Also, the force of the air blasted out from the opening portions 86 is further reduced in the upper spaces 39A, 39B, as described above, and is yet further reduced by collision with the inner face of the cover 35, and the air is finally discharged to the outside through a gap between the cover 35 and the support holder 32, the gap between the support holder 32 and the back face frame 11C, and the like.
Accordingly, the influence of the discharging air flow to the surrounding area of the cleaning apparatus 10 can be minimized. Also, scattering of dust on the floor surface 23, and scattering of fine particle substances included in the discharging air can be suppressed.
Also, since the air discharge ducts 80 are laid out inside the cleaning unit 30, the flow channel resistance can be reduced compared to the case where the duct is laid out from the cleaning unit 30 to the apparatus body 11, and therefore the suction efficiency of the intake fan 72 can be prevented from decreasing. Also, even if the inner diameter of the air discharge duct is increased in order to increase the suction force of the intake fan 72, a small-sized cleaning apparatus 10 can be realized without increasing the size of the cleaning unit 30 or the apparatus body 11.
Also, as a result of discharging air to the inside of the cleaning unit 30 instead of the inside of the apparatus body 11, the discharging air will not be blown against electronic devices such as a control unit and electronic components that are provided inside the apparatus body 11. Also, the motors 74 are arranged inside the apparatus body 11 through openings of the back face frame 11C, and therefore, even if air is discharged to the inside of the cleaning unit 30, malfunction or failure due to discharging air will not occur in the motors 74.
Note that, in one or more embodiments, a configuration in which a plurality of air discharge ducts 80 are provided in the cleaning unit 30 is illustrated. However, the invention may also be applied to other configurations. For example, a configuration in which one air discharge duct 80 is provided, or a configuration in which three or more air discharge ducts 80 are provided are within the scope of the invention.
Number | Date | Country | Kind |
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2021-036026 | Mar 2021 | JP | national |