A structural earthquake safety wardrobe structure
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-07-02
- Publication Date
- 2026-08-04
AI Technical Summary
[0003]但是在地震等情况中,衣柜可能会因倒塌对人员造成伤害,还有可能损坏财物,现有技术的衣柜通常是嵌入式安装在墙内并直接放置在地面上,无法有效的防止衣柜因强烈震动倒塌,在倒塌时,可能因为其自身重量以及衣柜内物体的重量对使用者和衣柜自身造成伤害,不仅会使使用者受伤,还会造成一定的经济损失,因此,现有技术具有一定的使用弊端
[0019] 1. In summary, by setting up fixing devices, shock absorption devices, and anti-tipping devices, the wardrobe body can be fixed by the fixing devices to prevent excessive movement and shaking. The shock absorption devices reduce the shaking amplitude of the wardrobe body to further prevent it from collapsing. The anti-tipping devices detect large shaking. When large shaking occurs, the driving translation plate moves to move the second anti-slip strip against the wall, thereby further preventing the wardrobe body from collapsing.
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Figure CN122498708A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of earthquake-resistant wardrobe technology, specifically, it relates to a structural earthquake-resistant and safe wardrobe structure. Background Technology
[0002] Wardrobes are indispensable large solid wood or panel furniture pieces in home life, mainly placed in bedrooms, walk-in closets, and entryways. Their core function is to store and organize various clothes, bedding, accessories, and household miscellaneous items. With their practical storage functions and diverse decorative effects, they have become a major piece of furniture occupying an important position in the home layout and are key to improving the tidiness and comfort of the home. In daily home use, wardrobes not only neatly organize messy and scattered clothes, making the bedroom environment clean, refreshing, and orderly, eliminating the clutter of randomly piled clothes, but also enhance the home space with their elegant and sophisticated appearance, elevating the overall style of the home décor.
[0003] However, in situations such as earthquakes, wardrobes may collapse and cause injury to people, as well as damage to property. Current wardrobe technology is usually embedded in the wall and placed directly on the ground, which cannot effectively prevent the wardrobe from collapsing due to strong vibrations. When it collapses, its own weight and the weight of the objects inside the wardrobe may cause injury to the user and the wardrobe itself. Not only will it cause injury to the user, but it will also cause certain economic losses. Therefore, the current technology has certain drawbacks.
[0004] In view of this, the present invention is proposed. Summary of the Invention
[0005] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by the present invention is as follows:
[0006] A seismic-resistant and safe wardrobe structure, wherein:
[0007] The wardrobe body and fixing device are included. The fixing device includes a bottom protective frame, which is fixedly installed on the bottom wall of the wardrobe body. Two bottom fixing frames are provided on both the left and right sides of the cavity of the bottom protective frame. Multiple suction cups and fixing blocks are provided in the cavities of the multiple bottom fixing frames, and the suction cups and fixing blocks are in an alternating position.
[0008] It includes a shock absorption device, which includes a top plate. A movable part is installed at the lower part of the top plate. Multiple tension springs are installed at the front and rear sides of the top plate. The upper left and right side walls of the movable part are inclined.
[0009] The device includes an anti-tipping device, which includes side drive cavities on the left and right side walls of the wardrobe body. A sliding stop plate is installed inside the side drive cavity. Multiple second anti-slip strips are evenly spaced on the side wall of the sliding stop plate. A power rocking rod is installed inside each of the two side drive cavities. A gravity rocking block is fixedly installed on the bottom wall of each of the two power rocking rods.
[0010] In a preferred embodiment of the present invention, a top plate is fixedly installed on the top walls of the left and right sides of the cavity of the bottom fixing frame, and a side plate is fixedly installed on the left and right sides of the bottom wall of the top plate. The two side plates are inclined from high to low and from close to each other to far away from each other.
[0011] In a preferred embodiment of the present invention, a first connecting pipe is fixedly installed on the bottom wall of the top plate and the bottom wall of the two side plates, and a second connecting pipe is movably installed in each of the multiple cavities. The multiple second connecting pipes are installed on the top wall of the movable part and the corresponding inclined walls on both sides.
[0012] In a preferred embodiment of the present invention, a tension spring is fixedly installed on the bottom wall of the top plate and the bottom wall of the two side plates at the side position of the first connecting pipe, and the other end of the multiple tension springs is fixedly connected to the top wall of the movable part and the corresponding two inclined walls on both sides.
[0013] In a preferred embodiment of the present invention, a side fixing plate is fixedly installed on both the left and right side walls of the movable part, and a lifting plate is provided below the two side fixing plates. A threaded hole is opened on the top wall of the side fixing plate and the lifting plate, and a bolt is threadedly connected to the two corresponding threaded hole cavities.
[0014] In a preferred embodiment of the present invention, a connecting plate is fixedly installed on the top wall of each of the plurality of bottom fixing frames. The two connecting plates are inclined from high to low and from close to each other to far away from each other. The connecting plates have a plurality of cavities in their transmission ratio. The top wall of the bottom fixing frame has a plurality of through holes at equal intervals.
[0015] In a preferred embodiment of the present invention, a connecting rod is fixedly installed on the top wall of each of the plurality of suction cups, the connecting rod passes through the through hole and is movably connected to the through hole, the bottom wall of the lifting plate is fixedly connected, a plurality of fixing blocks are fixedly installed in the cavity of the bottom fixing frame, and a plurality of first anti-slip strips are fixedly installed at equal intervals on the bottom wall of the plurality of side plates.
[0016] In a preferred embodiment of the present invention, a fixed drive frame is fixedly installed inside the side drive cavity. Two top limiting blocks are fixedly installed on the top wall of the fixed drive frame, and a fixed crossbar is fixedly installed between the two top limiting blocks. A gravity swing block is provided on the top side wall of the power rocking rod. The power rocking rod is movably connected to the fixed crossbar through the gravity swing block. An anti-collision soft pad is fixedly installed on both the front and rear side walls below the cavity of the fixed drive frame.
[0017] In a preferred embodiment of the present invention, a battery and a torque tilt detector are fixedly installed inside the side drive cavity, and an electric telescopic rod is fixedly installed on both the front and rear sides of the side drive cavity. The movable ends of the two electric telescopic rods are fixedly connected to the corresponding translational abutment sidewalls.
[0018] Compared with the prior art, the present invention has the following advantages:
[0019] 1. In summary, by setting up fixing devices, shock absorption devices, and anti-tipping devices, the wardrobe body can be fixed by the fixing devices to prevent excessive movement and shaking. The shock absorption devices reduce the shaking amplitude of the wardrobe body to further prevent it from collapsing. The anti-tipping devices detect large shaking. When large shaking occurs, the driving translation plate moves to move the second anti-slip strip against the wall, thereby further preventing the wardrobe body from collapsing.
[0020] 2. In summary, by setting up the wardrobe body, top panel, side panels, first connecting pipe, second connecting pipe, tension spring, threaded hole, bolt, and side fixing plate, the top panel and side panels can be connected to the moving parts through tension springs to dampen the wardrobe body, effectively limiting the swaying amplitude of the wardrobe body.
[0021] 3. In summary, by setting up the wardrobe body, tension spring, side fixing plate, cavity, suction cup, fixing block, first anti-slip strip, connecting rod and perforation, the wardrobe body can be fixed to the ground by connecting the suction cup and the first anti-slip strip, thereby preventing the wardrobe body from collapsing.
[0022] 4. In summary, by incorporating the wardrobe body, sliding stop plate, second anti-slip strip, powered rocker arm, gravity swing block, anti-collision pad, top limit block, torque and tilt angle detector, electric telescopic rod, and fixed crossbar, the torque and tilt angle detector can accurately monitor the swing amplitude, shaking frequency, and motion state of the gravity swing block in real time. When frequent external vibrations are detected and the wardrobe shakes violently, the movable end of the electric telescopic rod can be automatically driven to extend and retract, thereby pushing the sliding stop plate and ensuring that the second anti-slip strip fits tightly against the wall. This achieves lateral limiting and clamping fixation of the wardrobe body, effectively restraining the wardrobe's offset and tilting tendency, further improving the overall seismic protection performance, and preventing the wardrobe body from tilting, sliding, or even collapsing under earthquake or strong vibration conditions.
[0023] The specific embodiments of the present invention will now be described in further detail with reference to the accompanying drawings. Attached Figure Description
[0024] In the attached diagram:
[0025] Figure 1 This is a perspective view of the present invention;
[0026] Figure 2 This is a perspective view of the fixing device and the shock absorption device of the present invention;
[0027] Figure 3 This is a perspective view of one side of the shock absorption device of the present invention;
[0028] Figure 4 This is a perspective view of one side of the fixing device of the present invention;
[0029] Figure 5 This is a perspective view of the other side of the fixing device of the present invention;
[0030] Figure 6 This is a perspective view of one side of the anti-tipping device of the present invention;
[0031] Figure 7 This is a structural diagram of the anti-tipping device of the present invention;
[0032] Figure 8 This is a perspective view of the power rocking rod 33 and the gravity rocking block 34 of the present invention.
[0033] In the diagram: 10. Wardrobe body; 11. Bottom protective frame; 12. Bottom fixing frame; 13. Moving parts; 14. Top panel; 15. Side panel; 16. First connecting pipe; 17. Second connecting pipe; 18. Tension spring; 19. Threaded hole; 20. Bolt; 21. Side fixing plate; 22. Connecting plate; 23. Cavity; 24. Suction cup; 25. Fixing block; 26. First anti-slip strip; 27. Connecting rod; 28. Perforation; 29. Lifting plate; 30. Side drive cavity; 31. Translational stop plate; 32. Second anti-slip strip; 33. Power rocking rod; 34. Gravity rocking block; 35. Anti-collision soft pad; 36. Top limiting block; 37. Battery; 38. Torque and tilt angle detector; 39. Fixed drive frame; 40. Electric telescopic rod; 41. Fixed crossbar. Detailed Implementation
[0034] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate the present invention.
[0035] like Figure 1 and Figure 2 As shown, a seismic-resistant and safe wardrobe structure is described, wherein:
[0036] The wardrobe body 10 includes a fixing device. The fixing device includes a bottom protective frame 11, which is fixedly installed on the bottom wall of the wardrobe body 10. Two bottom fixing frames 12 are provided on both the left and right sides of the cavity of the bottom protective frame 11. Multiple suction cups 24 and fixing blocks 25 are provided in the cavities of the multiple bottom fixing frames 12. The suction cups 24 and fixing blocks 25 are staggered in position.
[0037] It includes a shock absorption device, which includes a top plate 14. A movable part 13 is provided at the lower part of the top plate 14. Multiple tension springs 18 are provided at the front and rear sides of the top plate 14. The upper left and right side walls of the movable part 13 are inclined.
[0038] The device includes an anti-tipping device, which includes side drive cavities 30 on the left and right side walls of the wardrobe body 10. A translational abutment 31 is provided inside the side drive cavity 30. Multiple second anti-slip strips 32 are provided at equal intervals on the side wall of the translational abutment 31. A power rocking rod 33 is provided inside each of the two side drive cavities 30. A gravity rocking block 34 is fixedly installed on the bottom wall of each of the two power rocking rods 33.
[0039] In practical use, the fixing device can fix the wardrobe body 10 through the suction cup 24 and the first anti-slip strip 26 to prevent the wardrobe body 10 from shaking too much and causing it to collapse. The shock absorption device can reduce the shaking amplitude of the wardrobe body 10 through the connection between the top plate 14 and the side plate 15 and the moving part 13 through the tension spring 18, which can further prevent the wardrobe body 10 from collapsing. The anti-tipping device can detect large shaking through the gravity swing block 34, and then drive the translational abutment plate 31 to move and drive the second anti-slip strip 32 to abut against the wall, thereby further preventing the wardrobe body 10 from collapsing.
[0040] In summary, by setting up a fixing device, a shock-absorbing device, and an anti-tipping device, the wardrobe body 10 can be fixed by the fixing device to prevent excessive movement and shaking. The shock-absorbing device reduces the shaking amplitude of the wardrobe body 10 to further prevent it from collapsing. The anti-tipping device detects large shaking. When large shaking occurs, the driving translation plate 31 moves to move the second anti-slip strip 32 against the wall, thereby further preventing the wardrobe body 10 from collapsing.
[0041] like Figure 2 , Figure 3 and Figure 4 As shown, a top plate 14 is fixedly installed on the top walls of both the left and right sides of the cavity of the bottom fixing frame 12, and a side plate 15 is fixedly installed on the left and right sides of the bottom wall of the top plate 14. The two side plates 15 are inclined from high to low, from close to each other to far away from each other.
[0042] A first connecting pipe 16 is fixedly installed on the bottom wall of the top plate 14 and the bottom wall of the two side plates 15. A second connecting pipe 17 is movably installed in each of the multiple cavities. The multiple second connecting pipes 17 are installed on the top wall of the movable part 13 and the corresponding two inclined walls.
[0043] A tension spring 18 is also fixedly installed on the bottom wall of the top plate 14 and the bottom wall of the two side plates 15 at the side position of the first connecting pipe 16. The other ends of the multiple tension springs 18 are fixedly connected to the top wall of the movable part 13 and the corresponding two inclined walls on both sides, respectively.
[0044] A side fixing plate 21 is fixedly installed on both the left and right side walls of the movable part 13. A lifting plate 29 is provided below the two side fixing plates 21. A threaded hole 19 is opened on the top wall of the side fixing plate 21 and the lifting plate 29. A bolt 20 is threadedly connected to the cavity of each of the two corresponding threaded holes 19.
[0045] In practical use, the top plate 14 provides stable installation support and positioning for the side plates 15. When an earthquake occurs or external vibrations cause the wardrobe body 10 to sway left and right or back and forth, the wardrobe body 10 will simultaneously cause the bottom protective frame 11 to shift and swing. As the bottom protective frame 11 sways and moves, it will directly cause the top plate 14 mounted on top to shift as well. During the displacement of the top plate 14, the side plates 15 mounted on both sides will further swing and shift synchronously. Throughout the entire process of the top plate 14 and side plates 15 swaying and shifting with the wardrobe body 10, the movable interlocking structure between the first connecting pipe 16 and the second connecting pipe 17 can effectively constrain the movement of the top plate 14 and side plates 15, limit the displacement amplitude and movement trajectory. The system avoids excessive displacement and misalignment. Simultaneously, the elastic tension and rebound of multiple sets of tension springs 18 gradually dissipate and buffer the vibration impact, providing a flexible shock absorption effect for the swaying displacement of the wardrobe body 10. This significantly reduces the shaking force caused by vibration transmission. Furthermore, the side fixing plate 21 and the tension springs 18 can be connected by bolts 20 threaded into the corresponding threaded holes 19 to achieve threaded locking assembly, securely connecting the side fixing plate 21 and the lifting plate 29 into a single unit. This ensures the stability of the overall structural assembly and also stabilizes the installation position of the tension springs 18, guaranteeing that the entire shock absorption structure can reliably and stably perform its shock absorption and limiting function under vibration conditions.
[0046] In summary, by setting up the wardrobe body 10, top plate 14, side plate 15, first connecting pipe 16, second connecting pipe 17, tension spring 18, threaded hole 19, bolt 20 and side fixing plate 21, the top plate 14 and side plate 15 can be connected to the moving part 13 through the tension spring 18 to play a shock absorption role for the wardrobe body 10, which can effectively limit the swaying amplitude of the wardrobe body 10.
[0047] like Figure 4 and Figure 5 As shown, a connecting plate 22 is fixedly installed on the top wall of each of the multiple bottom fixing frames 12. The two connecting plates 22 are inclined from high to low and from close to each other to far away from each other. Multiple cavities 23 are opened on the transmission ratio of the connecting plate 22. Multiple through holes 28 are opened at equal intervals on the top wall of the bottom fixing frame 12.
[0048] A connecting rod 27 is fixedly installed on the top wall of each of the multiple suction cups 24. The connecting rod 27 passes through the through hole 28 and is movably connected to the through hole 28. The bottom wall of the lifting plate 29 is fixedly connected. Multiple fixing blocks 25 are fixedly installed in the cavity of the bottom fixing frame 12. Multiple first anti-slip strips 26 are fixedly installed at equal intervals on the bottom wall of the multiple side plates 15.
[0049] In practical use, the fixed assembly connection between the tension spring 18 and the side fixing plate 21 can reliably position and stably constrain the installation position of the tension spring 18, preventing it from shifting, loosening, or falling off during vibration. When encountering earthquake vibration or external disturbance, the tension spring 18 elastically expands and contracts and changes position with the overall structure. Its own displacement can synchronously drive the connecting rod 27 connected below to move up and down and slightly laterally. The through hole 28 on the bottom fixing frame 12 can provide good guidance and limit constraint for the movement trajectory of the connecting rod 27, preventing the connecting rod 27 from tilting, shifting, or getting stuck during movement. At the same time, the cavity 23 inside the connecting plate 22 can reserve sufficient space for the extension and retraction of the connecting rod 27, ensuring that the connecting rod 27 can smoothly complete the return movement. As the connecting rod 27 moves downwards synchronously, the suction cup 24 mounted at the bottom can be tightly attached to the ground surface. The negative pressure of the suction cup 24 anchors the bottom of the wardrobe body 10, effectively limiting the overall slippage and shaking of the wardrobe. In addition, the fixing block 25 arranged inside the bottom fixing frame 12 can reliably lock, limit, and support the first anti-slip strip 26 installed at the bottom of the side panel 15, preventing the first anti-slip strip 26 from shifting or falling off. With the large static friction generated between the first anti-slip strip 26 and the ground contact surface, the wardrobe body 10 is further prevented from sliding or shifting horizontally. Through the combined effect of the suction cup negative pressure adsorption and the anti-slip strip friction, the wardrobe body 10 is firmly locked from the bottom in all directions, significantly improving the overall placement stability and effectively avoiding the safety hazards of wardrobe slippage and tipping under vibration conditions.
[0050] In summary, by setting up the wardrobe body 10, tension spring 18, side fixing plate 21, cavity 23, suction cup 24, fixing block 25, first anti-slip strip 26, connecting rod 27 and perforation 28, the wardrobe body 10 can be fixed to the ground by connecting the suction cup 24 and the first anti-slip strip 26, thereby preventing the wardrobe body 10 from collapsing.
[0051] like Figure 1 , Figure 6 , Figure 7 and Figure 8 As shown, a fixed drive frame 39 is fixedly installed inside the side drive cavity 30. Two top limiting blocks 36 are fixedly installed on the top wall of the fixed drive frame 39. A fixed crossbar 41 is fixedly installed between the two top limiting blocks 36. A gravity swing block 34 is provided on the top side wall of the power rocking rod 33. The power rocking rod 33 is movably connected to the fixed crossbar 41 through the gravity swing block 34. A collision-resistant soft pad 35 is fixedly installed on both the front and rear side walls below the cavity of the fixed drive frame 39.
[0052] A battery 37 and a torque tilt detector 38 are fixedly installed inside the side drive cavity 30. An electric telescopic rod 40 is fixedly installed on both the front and rear sides of the side drive cavity 30. The movable ends of both electric telescopic rods 40 are fixedly connected to the side walls of the corresponding translational abutment plates 31. Both the electric telescopic rods 40 and the torque tilt detector 38 are electrically connected to the battery 37.
[0053] In practical use, the fixed drive frame 39 is installed inside the side drive cavity 30. It effectively limits and constrains the overall installation position of the power rocker arm 33 using two sets of top limiting blocks 36 and a fixed crossbar 41 positioned between them. The power rocker arm 33, through its own structure and in cooperation with the gravity rocker block 34, is movably sleeved on the outside of the fixed crossbar 41. This allows the power rocker arm 33 to maintain flexible swinging and rotational freedom around the fixed crossbar 41 even while its overall position is constrained. When encountering earthquake vibrations or continuous external shaking impacts, the power rocker arm 33 can generate a large-amplitude reciprocating swinging motion due to the counterweight of the bottom gravity rocker block 34 combined with the swaying inertia caused by the vibration. The torque and tilt angle detector 38 installed inside the side drive cavity 30 can sense and monitor the swinging of the gravity rocker block 34 in real time. The amplitude, tilt angle, and oscillation frequency and motion state are monitored. If the gravity swing block 34 is detected to have an abnormal operating condition, such as excessive oscillation amplitude, excessive shaking, chaotic oscillation trajectory, and unstable operation, the torque and tilt angle detector 38 will immediately output a control electrical signal, triggering the movable ends of the electric telescopic rods 40 on both sides to extend and retract. During the outward extension of the movable ends of the electric telescopic rods 40, they simultaneously push the horizontally displaced translational abutment plate 31, which is fixedly connected to it. The translational abutment plate 31 then drives the second anti-slip strips 32, which are equidistantly arranged on its side wall, to gradually approach and adhere to the interior wall. With the continuous and stable pushing action of the movable ends of the electric telescopic rods 40, the second anti-slip strips 32 can be tightly pressed against the wall, forming a stable top-holding structure between the wall and the side of the wardrobe. This provides reliable lateral restraint for the wardrobe body 10, effectively counteracting the tendency to tip over due to vibration, further reinforcing protection from the side, and preventing the wardrobe body 10 from tilting, shifting, or even collapsing under strong vibration conditions.
[0054] In summary, by setting up the wardrobe body 10, the sliding abutment 31, the second anti-slip strip 32, the power rocking rod 33, the gravity rocking block 34, the anti-collision soft pad 35, the top limiting block 36, the torque and tilt angle detector 38, the electric telescopic rod 40, and the fixed crossbar 41, the torque and tilt angle detector 38 can accurately monitor the swing amplitude, shaking frequency, and motion state of the gravity rocking block 34 in real time. When frequent external vibrations are detected and the wardrobe shakes violently, the movable end of the electric telescopic rod 40 can be automatically driven to extend and retract, thereby driving the sliding abutment 31 to move, so that the second anti-slip strip 32 fits tightly against the wall, realizing the lateral limiting and clamping fixation of the wardrobe body 10, effectively restraining the wardrobe's offset and tilting tendency, further improving the overall seismic protection performance, and preventing the wardrobe body 10 from tilting, sliding, or even collapsing under earthquake or strong vibration conditions.
[0055] It is understood that the present invention has been described through some embodiments, and those skilled in the art will recognize that various changes or equivalent substitutions can be made to these features and embodiments without departing from the spirit and scope of the invention. Furthermore, under the teachings of the present invention, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of the invention. Therefore, the present invention is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are within the protection scope of the present invention.
Claims
1. A structural seismic safety closet structure, characterized by, The following is stated: The wardrobe body (10) and the fixing device include a bottom protective frame (11). The bottom protective frame (11) is fixedly installed on the bottom wall of the wardrobe body (10). Two bottom fixing frames (12) are provided on the left and right sides of the cavity of the bottom protective frame (11). Multiple suction cups (24) and fixing blocks (25) are provided in the cavities of the multiple bottom fixing frames (12). The suction cups (24) and fixing blocks (25) are in an alternating position. Includes a shock-absorbing device, which includes a top plate (14), a movable part (13) is provided at the lower position of the top plate (14), and multiple tension springs (18) are provided at the front and rear sides of the top plate (14). The upper left and right side walls of the movable part (13) are inclined. The device includes an anti-tipping device, which includes side drive cavities 30 on the left and right side walls of the wardrobe body (10). A translation plate (31) is provided inside the side drive cavity 30. Multiple second anti-slip strips (32) are provided at equal intervals on the side wall of the translation plate (31). A power rocking rod (33) is provided inside each of the two side drive cavities (30). A gravity rocking block (34) is fixedly installed on the bottom wall of each of the two power rocking rods (33).
2. The structural seismic safety closet structure according to claim 1, wherein, A top plate (14) is fixedly installed on the top walls of the left and right sides of the cavity of the bottom fixing frame (12). A side plate (15) is fixedly installed on the left and right sides of the bottom wall of the top plate (14). The two side plates (15) are in an inclined state from high to low, from close to each other to far away from each other.
3. The earthquake-resistant and safe wardrobe structure according to claim 2, characterized in that, A first connecting pipe (16) is fixedly installed on the bottom wall of the top plate (14) and the bottom wall of the two side plates (15). A second connecting pipe (17) is movably installed in each of the multiple cavities. The multiple second connecting pipes (17) are installed on the top wall of the movable part (13) and the corresponding two inclined walls.
4. The earthquake-resistant and safe wardrobe structure according to claim 3, characterized in that, A tension spring (18) is also fixedly installed on the bottom wall of the top plate (14) and the bottom wall of the two side plates (15) at the side position of the first connecting pipe (16). The other ends of the multiple tension springs (18) are respectively fixedly connected to the top wall of the movable part (13) and the corresponding two inclined walls.
5. The earthquake-resistant and safe wardrobe structure according to claim 4, characterized in that, A side fixing plate (21) is fixedly installed on both the left and right side walls of the movable part (13). A lifting plate (29) is provided at the lower position of both side fixing plates (21). A threaded hole (19) is opened on the top wall of both the side fixing plate (21) and the lifting plate (29). A bolt (20) is threadedly connected in the cavity of each of the two corresponding threaded holes (19).
6. The earthquake-resistant and safe wardrobe structure according to claim 1, characterized in that, Each of the multiple bottom fixing frames (12) has a connecting plate (22) fixedly installed on its top wall. The two connecting plates (22) are inclined from high to low and from close to each other to far away from each other. Multiple cavities (23) are opened on the transmission ratio of the connecting plate (22). Multiple perforations (28) are opened at equal intervals on the top wall of the bottom fixing frame (12).
7. The earthquake-resistant and safe wardrobe structure according to claim 6, characterized in that, A connecting rod (27) is fixedly installed on the top wall of each of the multiple suction cups (24). The connecting rod (27) passes through the through hole (28) and is movably connected to the through hole (28). The bottom wall of the lifting plate (29) is fixedly connected. Multiple fixing blocks (25) are fixedly installed in the cavity of the bottom fixing frame (12). Multiple first anti-slip strips (26) are fixedly installed at equal intervals on the bottom wall of multiple side plates (15).
8. The earthquake-resistant and safe wardrobe structure according to claim 1, characterized in that, A fixed drive frame (39) is fixedly installed inside the side drive cavity (30). Two top limit blocks (36) are fixedly installed on the top wall of the fixed drive frame (39). A fixed crossbar (41) is fixedly installed between the two top limit blocks (36). A gravity swing block (34) is provided on the top side wall of the power rocking rod (33). The power rocking rod (33) is movably connected to the fixed crossbar (41) through the gravity swing block (34). A collision-proof soft pad (35) is fixedly installed on both the front and rear side walls below the cavity of the fixed drive frame (39).
9. The earthquake-resistant and safe wardrobe structure according to claim 8, characterized in that, A battery (37) and a torque tilt detector (38) are fixedly installed inside the side drive cavity (30). An electric telescopic rod (40) is fixedly installed on both the front and rear sides of the side drive cavity (30). The movable ends of the two electric telescopic rods (40) are fixedly connected to the side wall of the corresponding translation plate (31).