The present disclosure relates to the technical field of cleaning equipment, and more particularly relates to a mopping member, a mopping apparatus, a cleaning robot, and a control method for a cleaning robot.
The statement herein is merely used to provide background information related to the present disclosure, and is not intended to constitute the related art.
As the cleaning field has been developed, more various types of cleaning equipment are available. Many types of cleaning equipment adopt a circular double turntable structure for cleaning, namely, by rotating two mops for cleaning. However, due to processing errors, it is difficult to make the two mops tangent to each other without leaving a gap therebetween. If the mops are relatively small, there generally exists a gap therebetween; if the mops are relatively large, the mops typically squeeze and deform each other, resulting in a gap therebetween. The above-mentioned gap disables the existing cleaning equipment to remove all dust or dirt from an area to be clean at one time. Hence, many types of cleaning equipment must clean the area to be clean several times, so as to remove all the dust or dirt from the area to be clean.
It is an object of the present disclosure to provide a mopping member, a mopping apparatus, a cleaning robot, and a control method for the cleaning robot, aiming to solve the problem that the existing cleaning equipment cannot remove all dust or dirt from the area to be cleaned at one time.
In one aspect, the present disclosure provides a mopping member, used for a cleaning robot to mop and clean a floor surface, including a first mop and a second mop; the first mop is provided with a first rotating center, and the second mop is provided with a second rotating center; a distance between the first rotating center and the second rotating center is a rotating center distance;
In another aspect, the present disclosure provides a mopping apparatus, including a first turntable, a second turntable, and the above mopping member; a side edge of the first turntable and a side edge of the second turntable are configured to be spaced apart; the first mop is fixedly connected to a bottom of the first turntable, and is configured to rotate with the first turntable; the second mop is fixedly connected to a bottom of the second turntable, and is configured to rotate with the second turntable; a rotation axis of the first turntable is configured to pass through the first rotating center, and a rotation axis of the second turntable passes through the second rotating center.
In still another aspect, the present disclosure provides a cleaning robot, including a mopping drive mechanism and the above mopping apparatus; driven by the mopping drive mechanism, the first turntable and the first mop are rotatable with respect to the chassis of the cleaning robot around the rotation axis of the first turntable, and the second turntable and the second mop are rotatable with respect to the chassis of the cleaning robot around the rotation axis of the second turntable.
In still another aspect, the present disclosure provides a control method for a cleaning robot, applied to the cleaning robot, the control method including: driving, by the mopping drive mechanism, the first turntable and the first mop to rotate with respect to the chassis of the cleaning robot around the rotation axis of the first turntable, and driving the second turntable and the second mop to rotate with respect to the chassis of the cleaning robot around the rotation axis of the second turntable; where when the mopping drive mechanism drives the first turntable and the second turntable to rotate, the first turntable and the second turntable are controlled to rotate in opposite rotating directions and at a same rotating speed; and during rotation, the gap between the first mop and the second mop is always formed between the long-diameter edge and the short-diameter edge.
In accordance with the mopping member, the mopping apparatus, the cleaning robot, and the control method for the cleaning robot provided in the present disclosure, the first mop includes a first long-diameter edge and a first short-diameter edge that are connected via a first endpoint. The distance from any point on the first long-diameter edge to the first rotating center is greater than half of the rotating center distance, and the distance from any point on the first short-diameter edge to the first rotating center is less than half of the rotating center distance; the distance from the first endpoint to the first rotating center is equal to half of the rotating center distance. Besides, the second mop includes a second long-diameter edge and a second short-diameter edge that are connected via a second endpoint. The distance from any point on the second long-diameter edge to the second rotating center is greater than half of the rotating center distance, and the distance from any point on the second short-diameter edge to the second rotating center is less than half of the rotating center distance; the distance from the second endpoint to the second rotating center is equal to half of the rotating center distance. As such, when the first mop and the second mop are rotated, the short-diameter edge of one mop corresponds to the long-diameter edge of the other mop. On the connection line between the first rotating center and the second rotating center, the gap between the first mop and the second mop is formed between the short-diameter edge of one mop and the long-diameter edge of the other mop. The gap changes left and right as the first mop and the second mop are rotated. Even if there are processing errors in the first mop and the second mop, the first mop and the second mop when operation can cover the gap in between. Thus, the mops provided in the present disclosure, by rotating, can cover the uncleaned area existed in case of using the traditional two circular mops, thereby improving the cleaning efficiency of the cleaning equipment.
The realizing of the aim, functional characteristics and advantages of the present disclosure are further described in detail with reference to the accompanying drawings and the embodiments. It will be appreciated that the specific embodiments described herein are merely illustrative of the present disclosure and are not intended to limit the present disclosure.
Please refer to
In the first embodiment, the first mop 1a and the second mop 1b are substantially triangular-like.
As shown in
The second mop 2a includes second long-diameter edges 201a and second short-diameter edges 202a that are connected via second endpoints 203a. The distance from any point on the second long-diameter edge 201a to the second rotating center O2 is greater than half of the rotating center distance, and the distance from any point on the second short-diameter edge 202a to the second rotating center O2 is less than half of the rotating center distance. The distance from the second endpoint 203a to the second rotating center O2 is equal to half of the rotating center distance.
As shown in
As shown in
The second mop 2a includes same plurality of (here, three) second long-diameter edges 201a and same plurality of (here, three) second short-diameter edges 202a. The plurality of second long-diameter edges 201a and the plurality of second short-diameter edges 202a are alternately connected. The distance from a point on the second long-diameter edge 201a to the second rotating center O2 gradually increases as the point moves from either of two endpoints to the midpoint, and the distance from a point on the second short-diameter edge 202a to the second rotating center O2 gradually decreases as the point moves from either of two endpoints to the midpoint. The endpoint here refers to an intersection point of the second long-diameter edge 201a and the second short-diameter edge 202a, namely the second endpoint described above. In case where the plurality of second long-diameter edges 201a and the plurality of second short-diameter edges 202a are alternately connected, the two ends of each of the second long-diameter edges 201a are respectively the second endpoints, and the two ends of each of the second short-diameter edges 202a are respectively the second endpoints.
In accordance with this, the point farthest from the first rotating center O1 on the first long-diameter edge 101a is the midpoint of the first long-diameter edge 101a; the point farthest from the second rotating center O2 on the second long-diameter edge 201a is the midpoint of the second long-diameter edges 201a; the point closest to the first rotating center O1 on the first short-diameter edge 102a is the midpoint of the first short-diameter edge 102a; the point closest to the second rotating center O2 on the second short-diameter edge 202a is the midpoint of the second short-diameter edge 202a.
In addition, it can be seen from
Generally, a mechanism is provided for scraping the long-diameter edges and the short-diameter edges of the mops, so as to clean the sides of the mops. However, since the rotation speeds of the mops are high, and a difference between the length of the long-diameter edge and the length of the short-diameter edge is large, the mechanism needs to have a certain deformability and a certain scratch resistance, which results in excessive cost or short life of the mechanism.
In the embodiment of the present disclosure, the rotation speed of the first mop 1a is the same as the rotation speed of the second mop 2a, the distance from a contact point of the two mops to the first rotating center is different from the distance from the contact point to the second rotating center. For example, the long-diameter edge of one mop is in contact with the short-diameter edge of the other mop. In this case, different linear speeds are generated when the two mops are in contact with each other, thereby producing a speed difference. This helps to improve the cleaning effect. Accordingly, it is a reasonable cleaning approach to use the interference due to the squeezing between the first mop 1a and the second mop 2a for the self-cleaning of the sides.
In this way, when the first mop and the second mop are self-cleaning at the base station, in case where the sizes of the first mop and the second mop are relatively large, there exists the interference area when they are rotated at the same speed. For example, the long-diameter edge of one mop and the short-diameter edge of the other mop interfere with each other due to the squeezing between the two mops. As such, different linear speeds are produced when they are in contact, which produces the speed difference, thereby realizing the self-cleaning of the sides of the mops.
In some other specific implementations, if there is no design error in the first mop 1a and the second mop 2a, the width of the gap between the first mop 1a and the second mop 2a is 0, the first mop 1a and the second mop 2a just touch each other.
In the first embodiment, a bottom surface of the first mop 1a is flush with a bottom surface of the second mop 2a.
In some examples, the bottom surface of the first mop 1a being flush with the bottom surface of the second mop 2a means that the bottom surface of the first mop 1a is permanently flush with the bottom surface of the second mop 2a. That is, in any working state, the bottom surface of the first mop 1a is always flush with the bottom surface of the second mop 2a.
In some other examples, the bottom surface of the first mop 1a being flush with the bottom surface of the second mop 2a means that the bottom surface of the first mop 1a is temporally flush with the bottom surface of the second mop 2a. That is, in some working states, e.g., when there occurs no relative deflection between the bottom surface of the first mop 1a and the bottom surface of the second mop 2a, the bottom surface of the first mop 1a is flush with the bottom surface of the second mop 2a; while when there occurs a relative deflection between the bottom surface of the first mop 1a and the bottom surface of the second mop 2a, the bottom surface of the first mop 1a may not be flush with the bottom surface of the second mop 2a.
In the first embodiment, the first long-diameter edge 101a is an arc-shaped edge convex about the first rotating center O1, and the first short-diameter edge 102a is a straight edge. The second long-diameter edge 201a is an arc-shaped edge convex about the second rotating center O2, and the second short-diameter edge 202a is a straight edge.
However, in some alternative embodiments of the first embodiment, the first short-diameter edge 102a may be an arc-shaped edge convex about the first rotating center O1. Similarly, the second short-diameter edge 202a may be an arc-shaped edge convex about the second rotating center O2.
It will be appreciated that although the first embodiment is described by taking the first mop 1a and the second mop 2a being substantially triangular-like as an example, the side contours of the first mop and the second mop may have other specific shapes. The present disclosure does not limit the side contours of the first mop and the second mop. For instance, the side contours of the first mop and the second mop may have the shape shown in the second embodiment or the third embodiment.
Please refer to
In the second embodiment, the first mop 1b and the second mop 2b are substantially quadrilateral-like.
As shown in
When the first mop 1b and the second mop 2b are rotated, on the rotating center connection line L, the gap between the first mop 1a and the second mop 2b is formed between the first long-diameter edge 101b and the second short-diameter edge 202b, or formed between the second long-diameter edge 201b and the first short-diameter edge 102b.
As shown in
The second mop 2b includes a plurality of (here, four) same second long-diameter edges 201b and a plurality of (here, four) same second short-diameter edges 202b. The plurality of second long-diameter edges 201b and the plurality of second short-diameter edges 202b are alternately connected. The distance from a point on the second long-diameter edge 201b to the first rotating center O1 gradually increases as the point moves from either of two endpoints to the midpoint, and the distance from a point on the second short-diameter edge 202b to the first rotating center O1 gradually decreases as the point moves from either of two endpoints to the midpoint.
The mopping member in the second embodiment has the same function as that of the mopping member in the first embodiment. The specific implementation of the mopping member in the second embodiment may refer to the relevant description in the first embodiment. Further, the undescribed parts of the mopping member in the second embodiment may also refer to the detailed description of the mopping member in the first embodiment.
Please refer to
In the third embodiment, the first mop 1c and the second mop 1c are substantially oval-like.
As shown in
When the first mop 1c and the second mop 2c are rotated, on the rotating center connection line L, the gap between the first mop 1c and the second mop 2c is formed between the first long-diameter edge 101c and the second short-diameter edge 202c, or formed between the second long-diameter edge 201c and the first short-diameter edge 102c.
As shown in
The second mop 2c includes a plurality of (here, two) same second long-diameter edges 201c and a plurality of (here, two) same second short-diameter edges 202c. The plurality of second long-diameter edges 201c and the plurality of second short-diameter edges 202c are alternately connected. The distance from a point on the second long-diameter edge 201c to the first rotating center O1 gradually increases as the point moves from either of two endpoints to the midpoint, and the distance from a point on the second short-diameter edge 202c to the first rotating center O1 gradually decreases as the point moves from either of two endpoints to the midpoint. The endpoint herein refers to the intersection point of the second long-diameter edge 201c and the second short-diameter edge 202c.
The mopping member in the third embodiment has the same function as that of the mopping member in the first embodiment. The specific implementation of the mopping member in the third embodiment may refer to the relevant description in the first embodiment. Further, the undescribed parts of the mopping member in the third embodiment may also refer to the detailed description of the mopping member in the first embodiment.
The fourth embodiment of the present disclosure provides a mopping apparatus. The mopping apparatus includes a first turntable 5, a second turntable 6, and the mopping member according to any of the embodiments described above.
A side edge of the first turntable 5 and a side edge of the second turntable 6 are arranged to be spaced apart, so that the first turntable 5 and the second turntable 6 are rotated relatively independently without touching each other. The first mop is fixedly connected to the bottom of the first turntable 5, and is configured to rotate with the first turntable 5. The second mop is fixedly connected to the bottom of the second turntable 6, and is configured to rotate with the second turntable 6. The rotation axis of the first turntable 5 is configured to pass through the first rotating center O1, and the rotation axis of the second turntable 6 is configured to pass through the second rotating center O2.
There are various ways to connect the first mop and the first turntable 5, and various ways to connect the second mop and the second turntable 6, such as a detachable connection, or a non-detachable connection. For instance, the ways to connect the first mop and the first turntable 5 and the ways to connect the second mop and the second turntable 6 include, but are not limited to, a glued connection, a bolted connection, a detachable connection through a Velcro provided between the first mop and the first turntable 5, or a snap-fit connection through a button fastener, and so on.
Optionally, in the fourth embodiment, the side contour of the first turntable 5 and the side contour of the first mop are of the same shape, and the side contour of the first turntable 5 falls within the side contour of the first mop. The side contour of the second turntable 6 and the side contour of the second mop are of the same shape, and the side contour of the second turntable 6 falls within the side contour of the second mop. By this way, the first mop and the second mop can be made with a certain range of installation and/or manufacturing errors in case of keeping the first turntable 5 and second turntable 6 out of contact.
In some specific examples, along different rays radiating outward from the first rotating center O1, the distance between the side contour of the first turntable 5 and the side contour of the first mop is equal; along different rays radiating from the second rotating center O2, the distance between the side contour of the second turntable 6 and the side contour of the second mop is equal. As such, the force of the first turntable 5 on the first mop can be more balanced, and the force of the second turntable 6 on the second mop can be more balanced.
As shown in
Optionally, in the fifth embodiment, the mopping drive mechanism 4 includes a first output shaft 401 and a second output shaft 402. A lower end of the first output shaft 401 is connected to a position where is the rotating center of the first turntable 5, and a lower end of the second output shaft 402 is connected to a position where is the rotating center of the second turntable 6. The axis of the first output shaft 401 is coincided with the rotation axis of the first turntable 5, and the axis of the second output shaft 402 is coincided with the rotation axis of the second turntable 6.
As shown in
As shown in
The second turntable 6 is provided with a second shaft sleeve 601 adapted for the second output shaft 402, so that the second output shaft 402 can be detachably inserted into the second shaft sleeve 601. The second shaft sleeve 601 being adapted for the second output shaft 402 means that the second output shaft 402 can be inserted into the second shaft sleeve 601. An outer peripheral surface of the second output shaft 402 and an inner wall surface of the second shaft sleeve 601 limit each other, so as to limit a relative rotation between the second output shaft 402 and the second shaft sleeve 601. Specifically, a limit surface of the outer peripheral surface of the second output shaft 402 and a limit surface of the inner wall surface of the second shaft sleeve 601 limit each other, thereby limiting the relative rotation between the second output shaft 402 and the second shaft sleeve 601. For example, a cross-section of the outer peripheral surface of the second output shaft 402 and a cross-section of the inner wall surface of the second shaft sleeve 601 are the same preset regular polygon. After the second output shaft 402 is inserted into the second shaft sleeve 601, the outer peripheral surface of the second output shaft 402 is clamped with the inner wall surface of the second shaft sleeve 601; or in operation, the limit surface of the outer peripheral surface of the second output shaft 402 and the limit surface of the inner wall surface of the second shaft sleeve 601 are abutted each other, so as to limit the relative rotation between the second output shaft 402 and the second shaft sleeve 601.
There are a plurality of inserting positions for the first output shaft 401 and the first shaft sleeve 501, so that the first turntable 5 and the first mop have a plurality of installation positions with respect to the chassis of the cleaning robot. There are a plurality of inserting positions for the second output shaft 402 and the second shaft sleeve 601, so that the second turntable 6 and the second mop have a plurality of installation positions with respect to the chassis of the cleaning robot. As such, the first mop and the second mop can be installed at a target relative installation position (a correct relative angle). In other words, when the first output shaft 401 is inserted into the first shaft sleeve 501 at any one of the plurality of inserting positions, and the second output shaft 402 is inserted into the second shaft sleeve 601 at any one of the plurality of inserting positions, the first mop and the second mop can be at the target relative installation position. When the first mop and the second mop are at the target relative installation position, on the rotating center connection line L, the gap between the first mop and the second mop is formed between the first long-diameter edge and the second short-diameter edge, or formed between the second long-diameter edge and the first short-diameter edge.
In this way, it can prevent that when the first mop and the second mop are paired, on the rotating center connection line L, the long-diameter edge of one mop corresponds to the long-diameter edge of the other mop, so that the two mops seriously interfere with each other, thereby resulting in a failure of normal operation. Also it can prevent that when the first mop and the second mop are paired, on the rotating center connection line L, the short-diameter edge of one mop corresponds to the short-diameter edge of the other mop, which causes an excessively large gap.
Optionally, the first mop and the second mop are rotational symmetry with a rotation angle of a preset angle. An absolute value of an angle difference between adjacent inserting positions of the plurality inserting positions for the first output shaft 401 and the first shaft sleeve 501 is N times the preset angle; an absolute value of an angle difference between adjacent inserting positions of the plurality inserting positions for the second output shaft 402 and the second shaft sleeve 601 is N times the preset angle; where N is a positive integer. As such, as long as it is ensured that, in an initial configuration, after inserting the first output shaft into the first shaft sleeve and inserting the second output shaft into the second shaft sleeve, the long-diameter edge of one mop corresponds to the short-diameter edge of the other mop on the rotating center connection line L during the rotations of the two mops, users can insert the first output shaft 401 into the first shaft sleeve 501 at any optional inserting position, and insert the second output shaft 402 into the second shaft sleeve 601 at any optional inserting position. For example, the first mop and the second mop are rotational symmetry with the rotation angle of 120 degrees. That is, the first mop coincides with itself as it rotates through 120 degrees, and the second mop coincides with itself as it rotates through 120 degrees. In this case, there are three insertion potions for the first output shaft 401 and the first shaft sleeve 501, and the angle difference between adjacent inserting positions of the three inserting positions for the first output shaft 401 and the first shaft sleeve 501 is 120 degrees. Besides, there are three insertion potions for the second output shaft 402 and the second shaft sleeve 601, and the angle difference between adjacent inserting positions of the three inserting positions for the second output shaft 402 and the second shaft sleeve 601 is 120 degrees.
For example, the first mop and the second mop are rotational symmetry with the rotation angle of 60 degrees. That is, the first mop coincides with itself as it rotates through 60 degrees, and the second mop coincides with itself as it rotates through 60 degrees. In this case, there are six insertion potions for the first output shaft 401 and the first shaft sleeve 501, and the angle difference between adjacent inserting positions of the six inserting positions for the first output shaft 401 and the first shaft sleeve 501 is 60 degrees. Besides, there are six insertion potions for the second output shaft 402 and the second shaft sleeve 601, and the angle difference between adjacent inserting positions of the six inserting positions for the second output shaft 402 and the second shaft sleeve 601 is 60 degrees. In some other embodiments, there are three insertion potions for the first output shaft 401 and the first shaft sleeve 501, and the angle difference between adjacent inserting positions of the three inserting positions for the first output shaft 401 and the first shaft sleeve 501 is 120 degrees. Besides, there are three insertion potions for the second output shaft 402 and the second shaft sleeve 601, and the angle difference between adjacent inserting positions of the three inserting positions for the second output shaft 402 and the second shaft sleeve 601 is 120 degrees. Alternatively or optionally, there are two insertion potions for the first output shaft 401 and the first shaft sleeve 501, and the angle difference between the two inserting positions for the first output shaft 401 and the first shaft sleeve 501 is 180 degrees. Besides, there are two insertion potions for the second output shaft 402 and the second shaft sleeve 601, and the angle difference between the two inserting positions for the second output shaft 402 and the second shaft sleeve 601 is 180 degrees.
In another embodiment, the first mop and the second mop are non-rotational symmetry. The absolute value of the angle difference between adjacent inserting positions of the plurality of inserting positions for the first output shaft 401 and the first shaft sleeve 501 is N times the preset angle, and the absolute value of the angle difference between adjacent inserting positions of the plurality of inserting positions for the second output shaft 402 and the second shaft sleeve 601 is N times the preset angle; where N is a positive Integer. As such, as long as it is ensured that, in an initial configuration, after inserting the first output shaft into the first shaft sleeve and inserting the second output shaft into the second shaft sleeve, the long-diameter edge of one mop corresponds to the short-diameter edge of the other mop on the rotating center connection line L during the rotations of the two mops, users can insert the first output shaft 401 into the first shaft sleeve 501 at any optional inserting position, and insert the second output shaft 402 into the second shaft sleeve 601 at any optional inserting position.
For example, the first mop has one first long-diameter edge and one first short-diameter edge; the second mop has one second long-diameter edge and one second short-diameter edge. The first mop coincides with itself as it rotates through 360 degrees, and the second mop coincides with itself as it rotates through 360 degrees. In this case, there is one inserting position for the first output shaft 401 and the first shaft sleeve 501, and there is one inserting position for the second output shaft 402 and the second shaft sleeve 601. By providing a buckle or other structures on the output shafts 401, 402 or on the shaft sleeves 501, 601, the first output shaft 401 and the first shaft sleeve 501 can have only one inserting position, and the second output shaft 402 and the second shaft sleeve 601 can have only one inserting position.
It will be appreciated that the above embodiment is described by taking the first output shaft 401 being detachably inserted into the first shaft sleeve 501 and the second output shaft 402 being detachably inserted into the second shaft sleeve 601 as an example. However, in some other embodiments, the first output shaft 401 may be connected to the first turntable 5 in other ways, e.g., by welding or threading, and so on; the second output shaft 402 may be connected to the second turntable 6 in other ways, e.g., by welding or threading, and so on.
From above, during the operation of the cleaning robot, a control method for the cleaning robot includes:
When the mopping drive mechanism 4 drives the first turntable 5 and the second turntable 6 to rotate, the first turntable 5 and the second turntable 6 are controlled to rotate in opposite rotating directions and at a same rotating speed. During the rotations, the gap between the first mop 1a and the second mop 2a is always formed between the long-diameter edge and the short-diameter edge.
In an embodiment, before the mopping drive mechanism 4 drives the first turntable 5 and the second turntable 6 to rotate, the method further includes:
In accordance with the mopping member, the mopping apparatus and the cleaning robot provided in the present disclosure, when the first mop and the second mop are rotated, the short-diameter edge of one mop corresponds to the long-diameter edge of the other mop. On the connection line between the first rotating center and the second rotating center, the gap between the first mop and the second mop is formed between the short-diameter edge of one mop and the corresponding long-diameter edge of the other mop. During the rotations of the two mops, the gap moves left and right. As such, the mops according to the embodiments, by rotating, can cover the uncleaned gap area that existed in case of using the traditional two circular mops, thereby improving the cleaning efficiency of the cleaning equipment.
The foregoing are only illustrative embodiments in accordance with the present disclosure and therefore not intended to limit the patentable scope of the present disclosure. Any equivalent structure or flow transformations that are made taking advantage of the specification and accompanying drawings of the disclosure and any direct or indirect applications thereof in other related technical fields are within the protection scope of the present disclosure.
Number | Date | Country | Kind |
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201810987148.7 | Aug 2018 | CN | national |
The present disclosure is a Continuation Application of PCT Application No. PCT/CN2019/101589, filed on Aug. 20, 2019, which claims the priority of Chinese Patent Application No. 201810987148.7, filed on Aug. 28, 2018 with the China National Intellectual Property Administration and entitled “MOPPING MEMBER, MOPPING APPARATUS, AND CLEANING ROBOT”, the entirety of which is hereby incorporated herein by reference for all purposes.
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Number | Date | Country | |
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20210177227 A1 | Jun 2021 | US |
Number | Date | Country | |
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Parent | PCT/CN2019/101589 | Aug 2019 | US |
Child | 17186537 | US |