Bathroom cabinet

By introducing a buffer device into the bathroom cabinet, the drawer's kinetic energy is dissipated by a damper. Combined with the design of a force bar, slider, rotating plate, and limit bar, the problem of drawer inertial impact is solved, the service life of the inner wall of the sliding cavity is extended, and the stability of drawer sliding is improved.

CN224165952UActive Publication Date: 2026-04-28ZHEJIANG ROYAL HOME CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHEJIANG ROYAL HOME CO LTD
Filing Date
2025-05-08
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

The inertial impact generated when the drawer of the bathroom vanity slides and closes against the inner wall of the sliding cavity causes deformation of the inner wall of the sliding cavity, reducing its service life.

Method used

A buffer device is adopted, including a buffer seat, a damper, and a connecting component. The damper consumes the kinetic energy of the drawer and generates resistance to suppress the movement of the drawer. Combined with the design of the force bar, slider, rotating plate, and limit bar, the drawer can achieve stable sliding and energy reduction buffering within the sliding cavity.

Benefits of technology

It reduces the impact of drawers on the inner wall of the sliding cavity, extends the service life of the bathroom cabinet, and improves the sliding stability of drawers within the sliding cavity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of furniture, in particular to a bathroom cabinet which comprises a cabinet body, a drawer and a buffering device, a sliding cavity for the drawer to slide is formed in the surface of the cabinet body, the buffering device comprises a buffering seat, a damper and a connecting assembly, the buffering seat is connected to the inner wall of the sliding cavity, and the damper is connected to the surface, facing the drawer, of the buffering seat. The axis of a piston rod of the damper is parallel to the sliding direction of the drawer, the connecting assembly is connected between the piston of the damper and the drawer, the connecting assembly can receive power of the damper and drive the drawer to slide in the direction close to the sliding cavity, and the surface of the drawer is flush with the surface of the cabinet body. According to the bathroom cabinet, through the arrangement of the damper, the buffer seat and the connecting assembly, the damper consumes kinetic energy of the drawer and generates resistance to restrain movement of the drawer, so that the impact force of the drawer on the inner wall of the sliding cavity is relieved, the inner wall of the sliding cavity is not prone to cracking due to the impact of the drawer, and the service life of the bathroom cabinet is prolonged.
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Description

Technical Field

[0001] This application relates to the field of furniture, and more particularly to a bathroom cabinet. Background Technology

[0002] Bathroom vanities are an indispensable piece of furniture in modern bathroom spaces, serving multiple functions such as storage, washing, and decoration.

[0003] Bathroom vanities mainly consist of a basin, a cabinet, and drawers. The basin is fixed to the top of the cabinet and is used for washing and grooming. The side walls of the cabinet have sliding cavities for the drawers to slide in, and the inner cavities of the drawers are used for storing toiletries.

[0004] However, the inertia generated when the drawer slides and closes will impact the inner wall of the sliding cavity. The inner wall of the sliding cavity is prone to deformation due to long-term impact from the drawer, thus reducing the service life of the bathroom cabinet. Utility Model Content

[0005] In order to improve the lifespan of bathroom cabinets, this application provides a bathroom cabinet.

[0006] This application provides a bathroom cabinet, which adopts the following technical solution:

[0007] A bathroom cabinet includes a cabinet body, a drawer, and a buffer device. The surface of the cabinet body has a sliding cavity for the drawer to slide. The buffer device includes a buffer seat, a damper, and a connecting assembly. The buffer seat is connected to the inner wall of the sliding cavity. The damper is connected to the surface of the buffer seat facing the drawer. The piston rod axis of the damper is parallel to the sliding direction of the drawer. The connecting assembly is connected between the damper piston and the drawer. The connecting assembly can receive the power of the damper and drive the drawer to slide towards the sliding cavity. The surface of the drawer is flush with the surface of the cabinet body.

[0008] By adopting the above technical solution, when the drawer cavity is empty, pushing the drawer causes it to slide along the inner wall of the sliding cavity towards the cabinet body. The connecting component is connected between the damper piston and the drawer. The connecting component can receive the power of the damper and drive the drawer to slide towards the sliding cavity, and the drawer surface is flush with the cabinet surface, thus realizing the storage of the drawer. The damper consumes the kinetic energy of the drawer and generates resistance to suppress the movement of the drawer, thereby reducing the impact force of the drawer on the inner wall of the sliding cavity, making the inner wall of the sliding cavity less likely to crack due to the impact of the drawer, thereby extending the service life of the bathroom cabinet.

[0009] Optionally, the connecting assembly includes a force-applying rod, a slider, a rotating plate, and a limiting strip. The limiting strip is connected to the surface of the buffer seat facing the drawer, and the length direction of the limiting strip is parallel to the axis of the damper piston rod. The slider is slidably connected to the surface of the buffer seat facing the drawer, and the sliding direction of the slider is parallel to the sliding direction of the limiting strip. The end of the damper piston rod is connected to the surface of the slider. The rotating plate is rotatably connected to the surface of the slider away from the damper, and the rotation axis of the rotating plate is perpendicular to the sliding direction of the slider. The rotating plate faces the buffer seat. The surface of the seat has a limiting cavity for the end of the limiting strip to be inserted. When the end of the limiting strip is inserted into the limiting cavity, the damper piston rod extends. The end of the force-applying rod is connected to the surface of the drawer facing the rotating plate. The surface of the rotating plate has a force-applying groove for the end of the force-applying rod to be inserted. When the drawer slides along the inner wall of the sliding cavity toward the cabinet, the end of the force-applying rod is inserted into the force-applying groove. The rod surface of the force-applying rod abuts against the inner wall of the force-applying groove and drives the rotating plate to rotate away from the limiting strip. The end of the limiting strip disengages from the limiting cavity, and the damper piston rod retracts.

[0010] By adopting the above technical solution, one end of the force-applying rod is fixed to the drawer surface, and the other end is embedded in the force-applying groove. The surface of the force-applying rod abuts against the inner wall of the force-applying groove to form a limit. When the drawer slides away from the cabinet along the inner wall of the sliding cavity, the force-applying rod drives the slider to slide along the surface of the buffer seat towards the limit strip. The limit cavity faces the end of the limit strip. As the drawer continues to slide, the force-applying rod drives the rotating plate to rotate towards the end of the limit strip. The end of the limit strip is embedded in the limit cavity, and the outer wall of the limit strip abuts against the inner wall of the limit cavity to form a limit. At the same time, the end of the damper piston rod is connected to the slider. The slider causes the damper piston rod to extend. When items are placed inside the drawer, the drawer slides along the inner wall of the sliding cavity towards the cabinet. The force rod drives the rotating plate to rotate away from the limit strip. The end of the limit strip disengages from the limit cavity, and the contact effect between the outer wall of the limit strip and the inner wall of the limit cavity disappears. The damper piston rod retracts, and the slider receives the power from the damper and drives the drawer to slide along the inner wall of the sliding cavity towards the cabinet. The surface of the drawer is flush with the surface of the cabinet, which reduces the energy of the drawer in the sliding cavity and improves the stability of the drawer sliding in the sliding cavity.

[0011] Optionally, the connecting assembly further includes an elastic element, one end of which is connected to the rotating shaft of the rotating plate in the elastic direction, and the other end of which is connected to the surface of the slider. The elastic element has the elastic force to drive the rotating plate to rotate toward the direction of the limiting strip, and the end of the limiting strip tends to be embedded in the limiting cavity.

[0012] By adopting the above technical solution, when the limiting cavity faces the end of the limiting strip, the elastic element drives the rotating plate to rotate towards the direction of the limiting strip. The end of the limiting strip is embedded in the limiting cavity, and the outer wall of the limiting strip abuts against the inner wall of the limiting cavity to form a limit, thereby improving the limiting stability of the end of the limiting strip in the limiting cavity.

[0013] Optionally, the rotating plate has a guide surface facing the end of the force-applying rod. The guide surface is in the shape of a circular arc protrusion and can abut against the surface of the force-applying rod and guide the end of the force-applying rod to be embedded in the force-applying groove.

[0014] By adopting the above technical solution, when the drawer slides along the inner wall of the sliding cavity towards the cabinet, the guide surface abuts against the surface of the force-applying rod and guides the end of the force-applying rod to be embedded in the force-applying groove. The outer wall of the force-applying rod abuts against the inner wall of the force-applying groove to form a limit, reducing the wear between the force-applying rod and the rotating plate, thereby further extending the service life of the bathroom cabinet.

[0015] Optionally, the connecting assembly further includes a connecting post, which is coaxially fixed to the end of the damper piston rod. The slider surface has a positioning cavity for the damper piston rod to be embedded in, and the surface of the connecting post protruding from the damper piston rod abuts against the slider surface to form a limiting position.

[0016] By adopting the above technical solution, when the damper piston rod is embedded in the positioning cavity, the connecting column protrudes from the surface of the damper piston rod and presses against the surface of the slider to form a limit, thereby realizing the detachable connection between the end of the damper piston rod and the slider, which facilitates the replacement and maintenance of the slider and reduces the cost of using the bathroom cabinet.

[0017] Optionally, the buffer device further includes a limiting block connected to the surface of the buffer seat, and a damper is embedded between the limiting strip and the buffer seat. The surface of the limiting strip and the surface of the buffer seat clamp the two sides of the damper to form a limiting.

[0018] By adopting the above technical solution, when the damper is embedded between the limiting block and the buffer seat, the surface of the limiting block and the surface of the buffer seat clamp the two sides of the damper to form a limit, thereby realizing the detachable installation of the damper on the buffer seat, which facilitates the replacement and maintenance of the damper.

[0019] Optionally, the surface of the buffer seat facing the drawer is connected to an outer rail, and the surface of the drawer facing the buffer seat is connected to an inner rail embedded in the outer rail. When the drawer slides on the inner wall of the sliding cavity, the inner rail slides on the outer rail.

[0020] By adopting the above technical solution, when the drawer slides on the inner wall of the sliding cavity, the inner rail slides on the outer rail, making it less likely for the drawer to deviate when sliding on the inner wall of the sliding cavity, thereby improving the stability of the drawer sliding on the inner wall of the sliding cavity.

[0021] Optionally, the limiting block is rotatably connected to the surface of the buffer seat, and an elastic element two is connected between the rotating shaft of the limiting block and the surface of the buffer seat. The elastic element two has an elastic force that drives the limiting block to rotate in a direction closer to the damper, and the surface of the limiting block and the surface of the buffer seat tend to clamp the two sides of the damper to form a limiting position.

[0022] By adopting the above technical solution, when the damper is installed, it drives the limiting block to rotate away from the buffer seat. The damper is placed on the surface of the buffer seat facing the limiting block. When the limiting block is released, the elastic element drives the limiting block to rotate closer to the damper. The surface of the limiting block and the surface of the buffer seat clamp the two sides of the damper to form a limit, reducing the wear between the limiting block and the buffer seat, thereby extending the service life of the bathroom cabinet.

[0023] In summary, this application includes at least one of the following beneficial technical effects:

[0024] 1. The damper, buffer seat and connecting components are designed to dissipate the kinetic energy of the drawer and generate resistance to suppress the drawer's movement, thereby reducing the impact force of the drawer on the inner wall of the sliding cavity, making the inner wall of the sliding cavity less likely to crack due to the impact of the drawer, thus extending the service life of the bathroom cabinet.

[0025] 2. The setting of the force bar, slider, rotating plate and limit bar, the damper piston rod retracts, the slider receives the power of the damper and drives the drawer to slide along the inner wall of the sliding cavity towards the cabinet body, the drawer surface is flush with the cabinet surface, realizing energy reduction and buffering of the drawer in the sliding cavity, thereby improving the stability of the drawer sliding in the sliding cavity;

[0026] 3. The setting of the elastic element one, the outer wall of the limiting strip abuts against the inner wall of the limiting cavity to form a limit, thereby improving the limiting stability of the end of the limiting strip in the limiting cavity. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the overall structure in an embodiment of this application.

[0028] Figure 2 This is a partial cross-sectional view of an embodiment of this application, mainly showing the buffer device.

[0029] Figure 3 This is a partial structural diagram of an embodiment of this application, mainly showing the positioning cavity.

[0030] Figure 4 This is a schematic diagram of the overall structure of the limiting block in the embodiment of this application.

[0031] Figure 5 This is a schematic diagram of the overall structure of the rotating plate in an embodiment of this application.

[0032] Explanation of reference numerals in the attached drawings: 1. Cabinet body; 11. Sliding cavity; 2. Washbasin; 3. Drawer; 4. Buffer device; 41. Buffer seat; 42. Damper; 43. Connecting assembly; 431. Force bar; 432. Slider; 4321. Positioning cavity; 433. Rotating plate; 4331. Limiting cavity; 4332. Force groove; 4333. Guide surface; 434. Limiting strip; 435. Elastic element one; 436. Connecting column; 44. Limiting block; 5. Outer rail; 6. Inner rail; 7. Elastic element two. Detailed Implementation

[0033] The following is in conjunction with the appendix Figure 1-5 This application will be described in further detail.

[0034] This application discloses a bathroom cabinet. (Refer to...) Figure 1 and Figure 2 The bathroom vanity includes a cabinet body 1, a basin 2, a drawer 3, and a buffer device 4. The back of the cabinet body 1 is fixed to the wall via a connecting structure. The basin 2 is fixed to the top surface of the cabinet body 1 and is used for washing. The surface of the cabinet body 1 has a sliding cavity 11 for the drawer 3 to slide. The sliding direction of the drawer 3 is parallel to the width direction of the cabinet body 1. The inner cavity of the drawer 3 is used to store toiletries. The buffer device 4 is connected between the drawer 3 and the inner wall of the sliding cavity 11. The buffer device 4 can dissipate the kinetic energy of the drawer 3 and generate resistance to inhibit the movement of the drawer 3, thereby reducing the impact force of the drawer 3 on the inner wall of the sliding cavity 11. This makes the inner wall of the sliding cavity 11 less likely to crack due to the impact of the drawer 3, thus extending the service life of the bathroom vanity.

[0035] Reference Figure 2 and Figure 3 The buffer device 4 includes a buffer seat 41, a damper 42, a connecting assembly 43, and a limiting block 44. The buffer seat 41 is fixed to the inner wall of the sliding cavity 11 by bolts. An outer rail 5 is fixed to the surface of the buffer seat 41 facing the drawer 3. The length direction of the outer rail 5 is parallel to the sliding direction of the drawer 3. An inner rail 6 that can be embedded in the outer rail 5 is fixed to the surface of the drawer 3 facing the outer rail 5 by bolts. When the drawer 3 slides on the inner wall of the sliding cavity 11, it drives the inner rail 6 to slide on the outer rail 5, so that the drawer 3 is less likely to deviate during the sliding process on the inner wall of the sliding cavity 11, thereby improving the stability of the drawer 3 sliding on the inner wall of the sliding cavity 11.

[0036] Reference Figure 3 and Figure 4The end of the limiting block 44 is rotatably connected to the surface of the buffer seat 41. The rotation axis of the limiting block 44 and the sliding direction of the drawer 3 are parallel to each other. The damper 42 is embedded between the limiting block 44 and the buffer seat 41. An elastic element 7 is connected between the rotation axis of the limiting block 44 and the surface of the buffer seat 41. The elastic element 7 can be a tension spring or a torsion spring and has a certain deformation capacity. The elastic element 7 has the elastic force to drive the limiting block 44 to rotate in the direction closer to the damper 42. The surface of the limiting block 44 and the surface of the buffer seat 41 clamp the damper 42 on both sides to form a limiting tendency, which reduces the wear between the limiting block 44 and the buffer seat 41 when the damper 42 is embedded, thereby extending the service life of the bathroom cabinet.

[0037] Reference Figure 2 and Figure 3 The piston rod axis of the damper 42 and the sliding direction of the drawer 3 are parallel to each other. The connecting component 43 is connected between the piston rod of the damper 42 and the drawer 3. The connecting component 43 can receive the power of the damper 42 and drive the drawer 3 to slide towards the sliding cavity 11. The surface of the drawer 3 is flush with the surface of the cabinet 1, realizing the storage of the drawer 3. At the same time, the damper 42 consumes the kinetic energy of the drawer 3 and generates resistance to suppress the movement of the drawer 3, thereby reducing the impact force of the drawer 3 on the inner wall of the sliding cavity 11, making the inner wall of the sliding cavity 11 less likely to crack due to the impact of the drawer 3, thereby extending the service life of the bathroom cabinet.

[0038] Reference Figure 2 and Figure 5 The connecting assembly 43 includes a force-applying rod 431, a slider 432, a rotating plate 433, a limiting strip 434, an elastic element 435, and a connecting post 436. The limiting strip 434 is fixed to the surface of the buffer seat 41 facing the drawer 3. The length direction of the limiting strip 434 is parallel to the sliding direction of the drawer 3. The slider 432 is slidably connected to the surface of the buffer seat 41 facing the drawer 3. The sliding direction of the slider 432 is parallel to the sliding direction of the drawer 3, and the slider 432 is located between the limiting strip 434 and the outer rail 5. The connecting post 436 is coaxially fixed to the end of the piston rod of the damper 42. The surface of the slider 432 facing the connecting post 436 has a positioning cavity 4321 for the piston rod of the damper 42 to be inserted. The connecting post 436 protrudes from the surface of the piston rod of the damper 42 and abuts against the surface of the slider 432 to form a limit, thereby realizing the detachable connection between the slider 432 and the damper 42, which facilitates the maintenance and replacement of the slider 432.

[0039] Reference Figure 2 and Figure 5The rotating plate 433 is rotatably connected to the end face of the slider 432 away from the damper 42. The rotation axis of the rotating plate 433 is parallel to the length direction of the cabinet 1. The rotating plate 433 has a limiting cavity 4331 on the surface facing the buffer seat 41 for the end of the limiting strip 434 to be embedded. The elastic element 435 can be a tension spring or a torsion spring. In this embodiment, the elastic element 435 is a torsion spring with a certain deformation capacity. One end of the elastic element 435 in the elastic direction is connected to the rotating shaft of the rotating plate 433, and the other end of the elastic element 435 in the elastic direction is connected to the surface of the slider 432. The elastic element 435 has the elastic force to drive the rotating plate 433 to rotate in the direction closer to the limiting strip 434. The end of the limiting strip 434 is embedded in the limiting cavity 4331, and the inner wall of the limiting cavity 4331 abuts against the surface of the limiting strip 434 to form a limiting tendency.

[0040] Reference Figure 2 and Figure 3 The end of the force-applying rod 431 is fixed to the surface of the drawer 3 facing the slider 432. The rotating plate 433 has a force-applying groove 4332 for the end of the force-applying rod 431 to be inserted. The end face of the rotating plate 433 away from the damper 42 has a guide surface 4333. The guide surface 4333 is arc-shaped and can abut against the surface of the force-applying rod 431 and guide the end of the force-applying rod 431 to be inserted into the force-applying groove 4332, thereby reducing the wear between the rotating plate 433 and the force-applying rod 431 and extending the service life of the bathroom cabinet.

[0041] Reference Figure 2 and Figure 5The outer wall of the force-applying rod 431 abuts against the inner wall of the force-applying groove 4332 to form a limit. When the drawer 3 slides away from the cabinet 1 along the inner wall of the sliding cavity 11, the force-applying rod 431 drives the slider 432 to slide along the surface of the buffer seat 41 towards the end of the limit bar 434. The limit cavity 4331 faces the end of the limit bar 434. The elastic element 435 drives the rotating plate 433 to rotate towards the limit bar 434. The end of the limit bar 434 is embedded in the limit cavity 4331. The outer wall of the limit bar 434 abuts against the inner wall of the limit cavity 4331 to form a limit. At the same time, the surface of the connecting column 436 protruding from the piston rod of the damper 42 abuts against the surface of the slider 432 to form a limit. The slider 432 drives the piston rod of the damper 42 to extend. When the drawer 3 is filled with items, it drives the drawer 3 to slide towards the cabinet 1 along the inner wall of the sliding cavity 11. The guide surface 4333 The force-applying rod 431 abuts against the rod surface and guides the end of the force-applying rod 431 into the force-applying groove 4332. The rod surface of the force-applying rod 431 presses against the inner wall of the force-applying groove 4332 to form a limit. The force-applying rod 431 drives the rotating plate 433 to rotate away from the limit strip 434. The end of the limit strip 434 disengages from the limit cavity 4331. The contact effect between the outer wall of the limit strip 434 and the inner wall of the limit cavity 4331 disappears. The piston rod of the damper 42 retracts. The slider 432 receives the power of the damper 42 and drives the drawer 3 to slide along the inner wall of the sliding cavity 11 towards the cabinet 1. The surface of the drawer 3 is flush with the surface of the cabinet 1. The damper 42 consumes the kinetic energy of the drawer 3 and generates resistance to suppress the movement of the drawer 3, thereby reducing the impact force of the drawer 3 on the inner wall of the sliding cavity 11. This makes the inner wall of the sliding cavity 11 less likely to crack due to the impact of the drawer 3, thereby extending the service life of the bathroom cabinet.

[0042] The implementation principle of a bathroom cabinet according to an embodiment of this application is as follows: When drawer 3 slides along the inner wall of sliding cavity 11 away from cabinet body 1, the force bar 431 drives slider 432 to slide along the surface of buffer seat 41 towards the end of limit bar 434. Limit cavity 4331 faces the end of limit bar 434. Elastic element 435 drives rotating plate 433 to rotate towards the end of limit bar 434. The end of limit bar 434 is embedded in limit cavity 4331. The outer wall of limit bar 434 abuts against the inner wall of limit cavity 4331 to form a limit. At the same time, the surface of connecting column 436 protruding from damper 42 piston rod abuts against the surface of slider 432 to form a limit. Slider 432 drives damper 42 piston rod to extend. When items are placed in the inner cavity of drawer 3, drawer 3 is driven to slide along the inner wall of sliding cavity 11 towards the end of cabinet body 1. Guide surface 4333 abuts against the force bar 431. The force bar 431 is guided to embed its end into the force groove 4332. The force bar 431 abuts against the inner wall of the force groove 4332 to form a limit. The force bar 431 drives the rotating plate 433 to rotate away from the limit bar 434. The end of the limit bar 434 disengages from the limit cavity 4331. The contact effect between the outer wall of the limit bar 434 and the inner wall of the limit cavity 4331 disappears. The piston rod of the damper 42 retracts. The slider 432 receives the power of the damper 42 and drives the drawer 3 to slide along the inner wall of the sliding cavity 11 towards the cabinet 1. The surface of the drawer 3 is flush with the surface of the cabinet 1. The damper 42 consumes the kinetic energy of the drawer 3 and generates resistance to suppress the movement of the drawer 3, thereby reducing the impact force of the drawer 3 on the inner wall of the sliding cavity 11. This makes the inner wall of the sliding cavity 11 less likely to crack due to the impact of the drawer 3, thus extending the service life of the bathroom cabinet.

[0043] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A bathroom vanity, characterized in that: The system includes a cabinet (1), a drawer (3), and a buffer device (4). The surface of the cabinet (1) is provided with a sliding cavity (11) for the drawer (3) to slide. The buffer device (4) includes a buffer seat (41), a damper (42), and a connecting assembly (43). The buffer seat (41) is connected to the inner wall of the sliding cavity (11). The damper (42) is connected to the surface of the buffer seat (41) facing the drawer (3). The piston rod axis of the damper (42) is parallel to the sliding direction of the drawer (3). The connecting assembly (43) is connected between the piston of the damper (42) and the drawer (3). The connecting assembly (43) can receive the power of the damper (42) and drive the drawer (3) to slide towards the sliding cavity (11). The surface of the drawer (3) is flush with the surface of the cabinet (1).

2. The bathroom cabinet according to claim 1, characterized in that: The connecting assembly (43) includes a force-applying rod (431), a slider (432), a rotating plate (433), and a limiting strip (434). The limiting strip (434) is connected to the surface of the buffer seat (41) facing the drawer (3). The length direction of the limiting strip (434) is parallel to the axis of the piston rod of the damper (42). The slider (432) is slidably connected to the surface of the buffer seat (41) facing the drawer (3). The sliding direction of the slider (432) is parallel to the sliding direction of the limiting strip (434). The end of the piston rod of the damper (42) is connected to the surface of the slider (432). The rotating plate (433) is rotatably connected to the surface of the slider (432) away from the damper (42). The rotation axis of the rotating plate (433) is perpendicular to the sliding direction of the slider (432). The surface of the rotating plate (433) facing the buffer seat (41) is... The surface has a limiting cavity (4331) for the end of the limiting strip (434) to be inserted. When the end of the limiting strip (434) is inserted into the limiting cavity (4331), the piston rod of the damper (42) extends. The end of the force rod (431) is connected to the surface of the drawer (3) facing the rotating plate (433). The surface of the rotating plate (433) has a force groove (4332) for the end of the force rod (431) to be inserted. When the... When the drawer (3) slides along the inner wall of the sliding cavity (11) toward the cabinet (1), the end of the force-applying rod (431) is embedded in the force-applying groove (4332), the rod surface of the force-applying rod (431) abuts against the inner wall of the force-applying groove (4332) and drives the rotating plate (433) to rotate away from the limiting strip (434), the end of the limiting strip (434) disengages from the limiting cavity (4331), and the piston rod of the damper (42) retracts.

3. The bathroom cabinet according to claim 2, characterized in that: The connecting assembly (43) further includes an elastic element (435), one end of which is connected to the rotating shaft of the rotating plate (433) in the elastic direction, and the other end of which is connected to the surface of the slider (432). The elastic element (435) has the elastic force to drive the rotating plate (433) to rotate toward the limiting strip (434), and the end of the limiting strip (434) tends to be embedded in the limiting cavity (4331).

4. The bathroom cabinet according to claim 2, characterized in that: The rotating plate (433) has a guide surface (4333) at the end facing the force-applying rod (431). The guide surface (4333) is in the shape of a circular arc protrusion. The guide surface (4333) can abut against the rod surface of the force-applying rod (431) and guide the end of the force-applying rod (431) to be embedded in the force-applying groove (4332).

5. The bathroom cabinet according to claim 2, characterized in that: The connecting assembly (43) further includes a connecting post (436), which is coaxially fixed to the end of the piston rod of the damper (42). The surface of the slider (432) is provided with a positioning cavity (4321) for the piston rod of the damper (42) to be inserted. The connecting post (436) protrudes from the surface of the piston rod of the damper (42) and abuts against the surface of the slider (432) to form a limit.

6. The bathroom cabinet according to claim 2, characterized in that: The buffer device (4) further includes a limiting block (44), which is connected to the surface of the buffer seat (41). The limiting strip (434) and the buffer seat (41) allow the damper (42) to be embedded. The surface of the limiting strip (434) and the surface of the buffer seat (41) clamp the two sides of the damper (42) to form a limiting.

7. The bathroom cabinet according to claim 2, characterized in that: The surface of the buffer seat (41) facing the drawer (3) is connected to an outer rail (5), and the surface of the drawer (3) facing the buffer seat (41) is connected to an inner rail (6) embedded in the outer rail (5). When the drawer (3) slides on the inner wall of the sliding cavity (11), the inner rail (6) slides on the outer rail (5).

8. The bathroom cabinet according to claim 6, characterized in that: The limiting block (44) is rotatably connected to the surface of the buffer seat (41). An elastic element (7) is connected between the rotating shaft of the limiting block (44) and the surface of the buffer seat (41). The elastic element (7) has an elastic force that drives the limiting block (44) to rotate toward the damper (42), and the surface of the limiting block (44) and the surface of the buffer seat (41) tend to clamp the damper (42) on both sides to form a limiting.