Novel rubber plate structure

The modular rubber sheet structure, with its tight fit of docking and snap-fit ​​units, enables precise disassembly of the rubber sheet, solving the problem of inconvenient partial disassembly of large-area rubber sheets, reducing replacement costs and improving maintenance efficiency.

CN223894657UActive Publication Date: 2026-02-10SHANGHAI VICTORY FLUID TECH CO LTD
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Patent Information

Application Number
CN202520421913.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-02-10
Estimated Expiration
2035-03-11

AI Technical Summary

Technical Problem

The existing rubber sheet has a large area, making partial disassembly inconvenient and increasing replacement costs.

Method used

The modular design allows for precise disassembly of the rubber sheet by tightly engaging the first docking unit, the second docking unit, the first snap-fit ​​unit, and the second snap-fit ​​unit, combined with the coordinated use of the first limiting unit and the second limiting unit.

Benefits of technology

It simplifies the partial disassembly process, reduces replacement costs, improves maintenance efficiency, and ensures the stability and sealing of the rubber sheet.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN223894657U_ABST
    Figure CN223894657U_ABST
Patent Text Reader

Abstract

The utility model relates to a novel rubber plate structure which comprises a main body unit, a first butt joint unit, at least one first clamping unit, a second butt joint unit, at least one second clamping unit, a first limiting unit and a second limiting unit. The folding chair has the advantages that the first butt joint unit and the second butt joint unit as well as the first clamping unit and the second clamping unit are in tight butt joint and clamping, so that memory stress generated by the main body unit due to rolling is effectively counteracted. Through mutual close fit, the displacement of the two ends of the main body unit is greatly limited, the main body unit is stably attached to a mounting surface, loosening and tilting are avoided, the stability and the sealing performance of the main body unit after mounting are ensured, and the normal use performance of the main body unit is guaranteed; the first limiting unit and the second limiting unit are used in cooperation. When a local main body unit needs to be replaced, only connection of the limiting units corresponding to the main body unit in the damaged area needs to be removed.
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Description

Technical Field

[0001] This utility model relates to the technical field of rubber sheet installation, and in particular to a novel rubber sheet structure. Background Technology

[0002] Rubber sheets are sheet materials made primarily of rubber through processes such as mixing and vulcanization. They possess numerous excellent properties, including high elasticity, allowing them to quickly return to their original shape under varying external forces; good wear resistance, resisting long-term frictional wear; and outstanding corrosion resistance, remaining stable in various chemical environments. Additionally, rubber sheets offer some insulation, effectively blocking electric current. They are typically flat sheets, available in various colors, commonly black, white, and gray. Depending on the formulation and processing, the hardness and thickness of rubber sheets vary, making them widely applicable in various fields such as industry, construction, electrical, and medical, playing crucial roles in sealing, shock absorption, insulation, and protection.

[0003] During the installation of rubber sheets, most existing rubber sheets are typically large in area, a characteristic that causes numerous problems in practical use. When a rubber sheet is partially damaged due to long-term use or accidental events, replacement is inconvenient. When removing the damaged section, due to its large area and close proximity to the surrounding area, conventional removal tools are difficult to apply precisely to the damaged area. This easily leads to secondary damage to the surrounding intact rubber sheets during removal, such as tearing or scratching, thus affecting the normal service life of the surrounding rubber sheets. This not only increases the difficulty of replacement but also raises the replacement cost.

[0004] Currently, no effective solution has been proposed to address the problems of large rubber sheet area, inconvenient partial disassembly, and increased replacement costs in related technologies. Utility Model Content

[0005] The purpose of this utility model is to address the shortcomings of existing technologies by providing a novel rubber sheet structure to solve the problems of large rubber sheet area, inconvenient partial disassembly, and increased replacement costs in related technologies.

[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0007] A novel rubber sheet structure, comprising:

[0008] Main unit;

[0009] The first docking unit is disposed on the side of the main body unit and is docked with another main body unit of a novel rubber plate structure that is adjacent to it on the left and right sides.

[0010] At least one first snap-fit ​​unit is disposed at the top of the first docking unit and snaps into the main body unit of another novel rubber plate structure on the left and right adjacent sides.

[0011] The second docking unit is disposed at the end of the main body unit and is connected to another main body unit with a novel rubber plate structure that is adjacent to it on the front and back.

[0012] At least one second snap-fit ​​unit is disposed at the top of the second docking unit and snaps into the main body unit of another novel rubber plate structure that is adjacent to it in front and behind.

[0013] The first limiting unit is detachably connected to the main unit and the first docking unit of another novel rubber plate structure on the left and right sides respectively.

[0014] The second limiting unit is detachably connected to the main unit and the corresponding adjacent second docking unit of another novel rubber plate structure.

[0015] In some embodiments, the main body unit includes:

[0016] The main component has a first docking unit on one side and a second docking unit on the rear end, and is connected to the first docking unit and the second docking unit respectively.

[0017] The first docking element is disposed on the other side of the main body element and is connected to the first docking unit of another novel rubber plate structure that is adjacent to it on the left and right sides.

[0018] At least one first snap-fit ​​element is disposed at the top of the first mating element and snaps into the first snap-fit ​​unit of another novel rubber plate structure on the left and right adjacent sides.

[0019] The second docking element is disposed at the front end of the main body element and is connected to the second docking unit of another novel rubber plate structure that is adjacent to it on the front and back.

[0020] At least one second snap-fit ​​element is disposed at the top of the second mating element and snaps into the corresponding second snap-fit ​​unit of another novel rubber plate structure.

[0021] In some embodiments, the main body unit further includes:

[0022] A first through-slot element is disposed through the other side of the main body element and is connected to the first docking element for the first limiting unit to pass through.

[0023] In some embodiments, the main body unit further includes:

[0024] The second through-slot element extends through the front end of the main body element and is connected to the second docking element, allowing the second limiting unit to pass through.

[0025] In some embodiments, the first docking unit includes:

[0026] The third docking element is disposed on the side of the main body unit and is docked with the corresponding left and right adjacent main body unit of another novel rubber plate structure;

[0027] A first connecting element is disposed at the top of the third docking element and is detachably connected to the first limiting unit of another novel rubber plate structure on the left and right adjacent sides.

[0028] In some embodiments, the first snap-fit ​​unit includes:

[0029] The third snap-fit ​​element is disposed at the top of the first docking unit and snaps into the main body unit of the corresponding left and right adjacent novel rubber plate structure.

[0030] In some embodiments, the second docking unit includes:

[0031] A fourth docking element is disposed at the end of the main body unit and is docked with another main body unit with a novel rubber plate structure that is adjacent to it on the front and back.

[0032] The second connecting element is disposed at the top of the fourth docking element and is detachably connected to the second limiting unit of another novel rubber plate structure that is adjacent to it on the front and back.

[0033] In some embodiments, the second snap-fit ​​unit includes:

[0034] A fourth snap-fit ​​element is disposed at the top of the second docking unit and snaps into the main body unit of another novel rubber plate structure that is adjacent to it on the front and back.

[0035] In some embodiments, the first defining unit includes:

[0036] The first limiting element is detachably connected to the main body unit and the first docking unit of another novel rubber plate structure on the left and right sides.

[0037] In some embodiments, the second defining unit includes:

[0038] The second limiting element is detachably connected to the main body unit and the second docking unit of another novel rubber plate structure that is adjacent to it on the front and back.

[0039] The present invention adopts the above technical solution and has the following technical effects compared with the prior art:

[0040] This utility model discloses a novel rubber sheet structure. By tightly engaging and locking the first and second mating units, and the first and second snap-fit ​​units, the memory stress generated by the winding of the main unit is effectively offset. This tight cooperation greatly limits the displacement at both ends of the main unit, ensuring a stable fit against the mounting surface and preventing loosening or warping. This guarantees the stability and sealing of the main unit after installation, ensuring its normal performance. Furthermore, the cooperation between the first and second limiting units allows for precise separation of the damaged portion of the main unit when it needs replacement. For example, the first limiting unit restricts adjacent units on the left and right, and the second limiting unit restricts adjacent units on the front and rear. This modular design greatly simplifies the partial disassembly process, reduces replacement costs, improves maintenance efficiency, and makes the maintenance of the main unit more convenient. Attached Figure Description

[0041] Figure 1 This is a three-dimensional structural diagram of the novel rubber sheet structure according to an embodiment of the present utility model;

[0042] Figure 2 This is an exploded view of the novel rubber sheet structure according to an embodiment of the present utility model;

[0043] Figure 3a This is a partial enlarged view of the main body unit according to an embodiment of the present utility model;

[0044] Figure 3b This is a three-dimensional structural diagram of the main unit according to an embodiment of the present utility model;

[0045] Figure 4 This is a three-dimensional structural schematic diagram of the first docking unit according to an embodiment of the present utility model;

[0046] Figure 5 This is a three-dimensional structural diagram of the first snap-fit ​​unit according to an embodiment of the present utility model;

[0047] Figure 6 This is a three-dimensional structural schematic diagram of the second docking unit according to an embodiment of the present utility model;

[0048] Figure 7 This is a three-dimensional structural diagram of the second snap-fit ​​unit according to an embodiment of the present utility model;

[0049] Figure 8 This is a three-dimensional structural diagram of the first defining unit according to an embodiment of the present utility model;

[0050] Figure 9 This is a three-dimensional structural diagram of the second defining unit according to an embodiment of the present utility model.

[0051] The reference numerals in the accompanying drawings are as follows: 10, main body unit; 11, main body element; 12, first mating element; 13, first snap-fit ​​element; 14, second mating element; 15, second snap-fit ​​element; 16, first through-slot element; 17, second through-slot element;

[0052] 20. First docking unit; 21. Third docking element; 22. First connecting element;

[0053] 30. First snap-fit ​​unit; 31. Third snap-fit ​​element;

[0054] 40. Second docking unit; 41. Fourth docking element; 42. Second connecting element;

[0055] 50. Second snap-fit ​​unit; 51. Fourth snap-fit ​​element;

[0056] 60. First limiting unit; 61. First limiting element;

[0057] 70. Second limiting unit; 71. Second limiting element. Detailed Implementation

[0058] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0059] It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0060] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, but this is not intended to limit the present invention.

[0061] An illustrative embodiment of this utility model, such as Figure 1 , Figure 2 As shown, a novel rubber sheet structure includes a main body unit 10, a first docking unit 20, at least one first snap-fit ​​unit 30, a second docking unit 40, at least one second snap-fit ​​unit 50, a first limiting unit 60, and a second limiting unit 70. The first docking unit 20 is disposed on the side of the main body unit 10 and is connected to the corresponding left and right adjacent main body unit 10 of another novel rubber sheet structure. The first snap-fit ​​unit 30 is disposed at the top of the first docking unit 20 and is snap-fitted to the corresponding left and right adjacent main body unit 10 of another novel rubber sheet structure. The second docking unit 40 is disposed at the end of the main body unit 10 and is connected to the corresponding front and rear adjacent main body unit 10 of another novel rubber sheet structure. The second snap-fit ​​unit 50 is disposed at the top of the second docking unit 40 and is snap-fitted to the corresponding front and rear adjacent main body unit 10 of another novel rubber sheet structure. The first limiting unit 60 is detachably connected to the main body unit 10 and the corresponding left and right adjacent first docking unit 20 of another novel rubber sheet structure. The second limiting unit 70 is detachably connected to the main body unit 10 and the corresponding front and rear adjacent second docking unit 40 of another novel rubber sheet structure.

[0062] In some embodiments, there are multiple first snap-fit ​​units 30. The multiple first snap-fit ​​units 30 are arranged at equal intervals along the length direction of the first docking unit 20.

[0063] In some embodiments, a first snap-fit ​​unit 30 is provided on one side of the first docking unit 20, and a first snap-fit ​​unit 30 is provided on the other side of the first docking unit 20.

[0064] In some embodiments, the number of second latching units 50 matches the number of first latching units 30. Generally, the number of second latching units 50 is equal to the number of first latching units 30.

[0065] In some embodiments, there are multiple second snap-fit ​​units 50. These multiple second snap-fit ​​units 50 are arranged at equal intervals along the length of the second docking unit 40.

[0066] In some embodiments, a second snap-fit ​​unit 50 is provided on one side of the second docking unit 40, and a second snap-fit ​​unit 50 is provided on the other side of the second docking unit 40.

[0067] like Figure 3a , Figure 3bAs shown, the main body unit 10 includes a main body element 11, a first docking element 12, at least one first snap-fit ​​element 13, a second docking element 14, and at least one second snap-fit ​​element 15. Specifically, a first docking unit 20 is provided on one side of the main body element 11, and a second docking unit 40 is provided at the rear end of the main body element 11, and both are connected to the first docking unit 20 and the second docking unit 40, respectively. The first docking element 12 is located on the other side of the main body element 11 and is connected to the corresponding left and right adjacent first docking unit 20 of another novel rubber sheet structure. The first snap-fit ​​element 13 is located at the top of the first docking element 12 and is snapped to the corresponding left and right adjacent first snap-fit ​​unit 30 of another novel rubber sheet structure. The second docking element 14 is located at the front end of the main body element 11 and is connected to the corresponding front and rear adjacent second docking unit 40 of another novel rubber sheet structure. The second snap-fit ​​element 15 is located at the top of the second docking element 14 and is snapped to the corresponding front and rear adjacent second snap-fit ​​unit 50 of another novel rubber sheet structure.

[0068] The cross-section of the main component 11 is rectangular.

[0069] In some of these embodiments, the main component 11 is made of rubber.

[0070] In some of these embodiments, the main component 11 is a rubber sheet.

[0071] The cross-section of the first docking element 12 is an isosceles trapezoid. The hypotenuse (length) of the first docking element 12 increases from one side (the side away from the second docking element 14) to the other side (the side closer to the second docking element 14).

[0072] The dimensions of the first docking element 12 are matched with the dimensions of the main body element 11. Generally, the maximum length of the first docking element 12 is less than the width of the main body element 11, the width of the first docking element 12 is less than the length of the main body element 11, and the height of the first docking element 12 is less than the height of the main body element 11.

[0073] In some of these embodiments, the first docking element 12 is a first docking groove.

[0074] The cross-section of the first snap-fit ​​element 13 is an isosceles trapezoid. The hypotenuse (radial dimension) of the first snap-fit ​​element 13 decreases from its top end (away from the top end of the first mating element 12) to its bottom end (closer to the top end of the first mating element 12).

[0075] The dimensions of the first snap-fit ​​element 13 are matched with the dimensions of the first mating element 12. Generally, the maximum radial dimension of the first snap-fit ​​element 13 is smaller than the minimum length and width of the first mating element 12.

[0076] The dimensions of the first snap-fit ​​element 13 are matched with the dimensions of the main body element 11. Generally, the axial dimension of the first snap-fit ​​element 13 is smaller than the height of the main body element 11.

[0077] The sum of the axial dimension of the first snap-fit ​​element 13 and the height of the first mating element 12 is less than the height of the main body element 11.

[0078] In some embodiments, the number of first snap-fit ​​elements 13 matches the number of first snap-fit ​​units 30. Generally, the number of first snap-fit ​​elements 13 is equal to the number of first snap-fit ​​units 30.

[0079] In some embodiments, there are multiple first snap-fit ​​elements 13. The multiple first snap-fit ​​elements 13 are spaced apart along the length direction of the first mating element 12.

[0080] In some embodiments, a first snap-fit ​​element 13 is provided on one side of the first docking element 12, and a first snap-fit ​​element 13 is provided on the other side of the first docking element 12.

[0081] In some of these embodiments, the first snap-fit ​​element 13 is a first snap-fit ​​slot.

[0082] The cross-section of the second docking element 14 is an isosceles trapezoid. The hypotenuse (length) of the second docking element 14 increases from one side (the side away from the first docking element 12) to the other side (the side closer to the first docking element 12).

[0083] The dimensions of the second docking element 14 are matched with the dimensions of the main element 11. Generally, the maximum length of the second docking element 14 is less than the length of the main element 11, the width of the second docking element 14 is less than the width of the main element 11, and the height of the second docking element 14 is less than the height of the main element 11.

[0084] The dimensions of the second docking element 14 are matched with the dimensions of the first docking element 12. Generally, the length of the second docking element 14 is greater than the length of the first docking element 12, the width of the second docking element 14 is equal to the width of the first docking element 12, and the height of the second docking element 14 is equal to the height of the first docking element 12.

[0085] In some of these embodiments, the second docking element 14 is a second docking groove.

[0086] The cross-section of the second snap-fit ​​element 15 is an isosceles trapezoid. The hypotenuse (radial dimension) of the second snap-fit ​​element 15 decreases from its top end (away from the top end of the second mating element 14) to its bottom end (closer to the top end of the second mating element 14).

[0087] The dimensions of the second snap-fit ​​element 15 are matched with the dimensions of the second mating element 14. Generally, the maximum radial dimension of the second snap-fit ​​element 15 is smaller than the minimum length and width of the second mating element 14.

[0088] The dimensions of the second snap-fit ​​element 15 are matched with the dimensions of the main body element 11. Generally, the axial dimension of the second snap-fit ​​element 15 is smaller than the height of the main body element 11.

[0089] The dimensions of the second snap-fit ​​element 15 are matched with the dimensions of the first snap-fit ​​element 13. Generally, the radial dimension of the second snap-fit ​​element 15 is equal to the radial dimension of the first snap-fit ​​element 13, and the axial dimension of the second snap-fit ​​element 15 is equal to the axial dimension of the first snap-fit ​​element 13.

[0090] The sum of the axial dimension of the second snap-fit ​​element 15 and the height of the second mating element 14 is less than the height of the main body element 11.

[0091] The number of second snap-fit ​​elements 15 matches the number of first snap-fit ​​elements 13 (second snap-fit ​​units 50). Generally, the number of second snap-fit ​​elements 15 is equal to the number of first snap-fit ​​elements 13 (second snap-fit ​​units 50).

[0092] In some embodiments, there are multiple second snap-fit ​​elements 15. These multiple second snap-fit ​​elements 15 are spaced apart along the length of the second mating element 14.

[0093] In some embodiments, a second snap-fit ​​element 15 is provided on one side of the second docking element 14 and a second snap-fit ​​element 15 is provided on the other side of the second docking element 14.

[0094] In some of these embodiments, the second snap-fit ​​element 15 is a second snap-fit ​​slot.

[0095] Furthermore, the main body unit 10 also includes a first through slot element 16. The first through slot element 16 is disposed through the other side of the main body unit 11 and is connected to the first docking element 12 for the first limiting unit 60 to pass through.

[0096] In some embodiments, the first through-slot element 16 includes a first through-slot and a second through-slot. The first through-slot is disposed on the other side of the main body element 11; the second through-slot is disposed at the bottom end of the first through-slot and is connected to the first through-slot and the first docking element 12, respectively.

[0097] The dimensions of the first through slot are matched with the dimensions of the first mating element 12. Generally, the radial dimension of the first through slot is smaller than the minimum length and width of the first mating element 12.

[0098] The dimensions of the first through slot are matched with the dimensions of the main body element 11. Generally, the axial dimension of the first through slot is smaller than the height of the main body element 11.

[0099] The dimensions of the second through groove match those of the first through groove. Generally, the radial dimension of the second through groove is smaller than that of the first through groove, and the axial dimension of the second through groove is larger than that of the first through groove.

[0100] The dimensions of the second through slot are matched with the dimensions of the main body element 11. Generally, the axial dimension of the second through slot is smaller than the height of the main body element 11.

[0101] Furthermore, the main body unit 10 also includes a second through slot element 17. The second through slot element 17 is disposed through the front end of the main body unit 11 and is connected to the second docking element 14 for the second limiting unit 70 to pass through.

[0102] In some embodiments, the second through-slot element 17 includes a third through-slot and a fourth through-slot. The third through-slot is disposed at the front end of the main body element 11; the fourth through-slot is disposed at the bottom end of the third through-slot and is connected to the third through-slot and the second docking element 14, respectively.

[0103] The dimensions of the third through slot are matched with the dimensions of the second mating element 14. Generally, the radial dimension of the third through slot is smaller than the minimum length and width of the second mating element 14.

[0104] The dimensions of the third through slot are matched with the dimensions of the main body component 11. Generally, the axial dimension of the third through slot is smaller than the height of the main body component 11.

[0105] The dimensions of the third through groove match those of the first through groove. Generally, the radial dimension of the third through groove is equal to the radial dimension of the first through groove, and the axial dimension of the third through groove is equal to the axial dimension of the first through groove.

[0106] The dimensions of the fourth through groove match those of the third through groove. Generally, the radial dimension of the fourth through groove is smaller than that of the third through groove, and the axial dimension of the fourth through groove is larger than that of the third through groove.

[0107] The dimensions of the fourth through slot are matched with the dimensions of the main body element 11. Generally, the axial dimension of the fourth through slot is smaller than the height of the main body element 11.

[0108] The dimensions of the fourth through slot match those of the second through slot. Generally, the radial dimension of the fourth through slot is equal to the radial dimension of the second through slot, and the axial dimension of the fourth through slot is equal to the axial dimension of the second through slot.

[0109] like Figure 4As shown, the first docking unit 20 includes a third docking element 21 and a first connecting element 22. The third docking element 21 is disposed on the side of the main body unit 10 and is connected to the corresponding adjacent main body unit 10 of another novel rubber plate structure. The first connecting element 22 is disposed on the top of the third docking element 21 and is detachably connected to the corresponding adjacent first limiting unit 60 of another novel rubber plate structure.

[0110] Specifically, the third docking element 21 is disposed on one side of the main body element 11 and is connected to the first docking element 12 of the corresponding left and right adjacent novel rubber plate structure; the first connecting element 22 is connected to the first through groove element 16 of the corresponding left and right adjacent novel rubber plate structure.

[0111] More specifically, the first connecting element 22 is connected to the second through groove of another novel rubber sheet structure that is adjacent to it on the left and right.

[0112] The cross-section of the third docking element 21 is an isosceles trapezoid. The hypotenuse (length) of the third docking element 21 increases from one side (the side closer to the main body element 11) to the other side (the side farther away from the main body element 11).

[0113] The dimensions of the third docking element 21 are matched with the dimensions of the main body element 11. Generally, the maximum length of the third docking element 21 is less than the width of the main body element 11, the width of the third docking element 21 is less than the length of the main body element 11, and the height of the third docking element 21 is less than the height of the main body element 11.

[0114] The dimensions of the third docking element 21 are matched with the dimensions of the first docking element 12. Generally, the length of the third docking element 21 is equal to the length of the first docking element 12, the width of the third docking element 21 is equal to the width of the first docking element 12, and the height of the third docking element 21 is equal to the height of the first docking element 12.

[0115] In some embodiments, the third mating element 21 is fixedly connected to the main element 11, including but not limited to vulcanization bonding.

[0116] In some of these embodiments, the third docking element 21 is made of rubber.

[0117] In some of these embodiments, the third docking element 21 is the first docking plate.

[0118] The cross-section of the first connecting element 22 is circular.

[0119] The dimensions of the first connecting element 22 are matched with the dimensions of the third docking element 21. Generally, the radial dimension of the first connecting element 22 is smaller than the minimum length and width of the third docking element 21, and the axial dimension of the first connecting element 22 is smaller than the height of the third docking element 21.

[0120] The dimensions of the first connecting element 22 are matched with the dimensions of the first through slot element 16. Generally, the radial dimension of the first connecting element 22 is equal to the radial dimension of the second through slot.

[0121] In some of these embodiments, the first connecting element 22 is a first threaded hole.

[0122] like Figure 5 As shown, the first snap-fit ​​unit 30 includes a third snap-fit ​​element 31. The third snap-fit ​​element 31 is disposed at the top of the first docking unit 20 and snaps into the corresponding left and right adjacent main body unit 10 of another novel rubber plate structure.

[0123] Specifically, the third snap-fit ​​element 31 is disposed at the top of the third mating element 21 and snaps with the first snap-fit ​​element 13 of another novel rubber plate structure that is adjacent to it on the left and right.

[0124] The cross-section of the third snap-fit ​​element 31 is an isosceles trapezoid. The hypotenuse (radial dimension) of the third snap-fit ​​element 31 decreases from its top end (away from the top end of the third mating element 21) to its bottom end (closer to the top end of the third mating element 21).

[0125] The dimensions of the third snap-fit ​​element 31 are matched with the dimensions of the third mating element 21. Generally, the maximum radial dimension of the third snap-fit ​​element 31 is smaller than the minimum length and width of the third mating element 21.

[0126] The dimensions of the third snap-fit ​​element 31 are matched with the dimensions of the first snap-fit ​​element 13. Generally, the radial dimension of the third snap-fit ​​element 31 is equal to the radial dimension of the first snap-fit ​​element 13, and the axial dimension of the third snap-fit ​​element 31 is equal to the axial dimension of the first snap-fit ​​element 13.

[0127] In some embodiments, the third snap-fit ​​element 31 is fixedly connected to the third mating element 21, including but not limited to vulcanization bonding.

[0128] In some of these embodiments, the third snap-fit ​​element 31 is made of rubber.

[0129] In some embodiments, the third snap-fit ​​element 31 is the first snap-fit ​​block.

[0130] like Figure 6As shown, the second docking unit 40 includes a fourth docking element 41 and a second connecting element 42. The fourth docking element 41 is disposed at the end of the main body unit 10 and is connected to the corresponding adjacent main body unit 10 of another novel rubber plate structure. The second connecting element 42 is disposed at the top of the fourth docking element 41 and is detachably connected to the corresponding adjacent second limiting unit 70 of another novel rubber plate structure.

[0131] Specifically, the fourth docking element 41 is disposed at the rear end of the main body element 11 and is connected to the second docking element 14 of another novel rubber plate structure that is adjacent to it in front and behind; the second connecting element 42 is connected to the second through groove element 17 of another novel rubber plate structure that is adjacent to it in front and behind.

[0132] More specifically, the second connecting element 42 is connected to the fourth through groove of another novel rubber sheet structure that is adjacent to it on the left and right.

[0133] The cross-section of the fourth docking element 41 is an isosceles trapezoid. The hypotenuse (length) of the fourth docking element 41 increases from its front end (closer to the rear end of the main element 11) to its rear end (far from the rear end of the main element 11).

[0134] The dimensions of the fourth docking element 41 match the dimensions of the main body element 11. Generally, the maximum length of the fourth docking element 41 is less than the length of the main body element 11, the width of the fourth docking element 41 is less than the width of the main body element 11, and the height of the fourth docking element 41 is less than the height of the main body element 11.

[0135] The dimensions of the fourth docking element 41 match those of the second docking element 14. Generally, the length of the fourth docking element 41 is equal to the length of the second docking element 14, the width of the fourth docking element 41 is equal to the width of the second docking element 14, and the height of the fourth docking element 41 is equal to the height of the second docking element 14.

[0136] The dimensions of the fourth docking element 41 are matched with those of the third docking element 21. Generally, the length of the fourth docking element 41 is greater than the length of the third docking element 21, the width of the fourth docking element 41 is equal to the width of the third docking element 21, and the height of the fourth docking element 41 is equal to the height of the third docking element 21.

[0137] In some embodiments, the fourth mating element 41 is fixedly connected to the main element 11, including but not limited to vulcanization bonding.

[0138] In some of these embodiments, the fourth docking element 41 is made of rubber.

[0139] In some of these embodiments, the fourth docking element 41 is a second docking plate.

[0140] The cross-section of the second connecting element 42 is circular.

[0141] The dimensions of the second connecting element 42 are matched with the dimensions of the fourth docking element 41. Generally, the radial dimension of the second connecting element 42 is smaller than the minimum length and width of the fourth docking element 41, and the axial dimension of the second connecting element 42 is smaller than the height of the fourth docking element 41.

[0142] The dimensions of the second connecting element 42 match the dimensions of the second through slot element 17. Generally, the radial dimension of the second connecting element 42 is equal to the radial dimension of the fourth through slot.

[0143] The dimensions of the second connecting element 42 are matched with the dimensions of the first connecting element 22. Generally, the radial dimension of the second connecting element 42 is equal to the radial dimension of the first connecting element 22, and the axial dimension of the second connecting element 42 is equal to the axial dimension of the first connecting element 22.

[0144] In some of these embodiments, the second connecting element 42 is a second threaded hole.

[0145] like Figure 7 As shown, the second snap-fit ​​unit 50 includes a fourth snap-fit ​​element 51. The fourth snap-fit ​​element 51 is disposed at the top of the second docking unit 40 and snaps into the corresponding adjacent main body unit 10 of another novel rubber sheet structure.

[0146] Specifically, the fourth snap-fit ​​element 51 is disposed at the top of the fourth mating element 41 and snaps with the corresponding second snap-fit ​​element 15 of another novel rubber plate structure that is adjacent to it.

[0147] The cross-section of the fourth snap-fit ​​element 51 is an isosceles trapezoid. The hypotenuse (radial dimension) of the fourth snap-fit ​​element 51 decreases from its top end (away from the top end of the fourth mating element 41) to its bottom end (closer to the top end of the fourth mating element 41).

[0148] The dimensions of the fourth snap-fit ​​element 51 are matched with the dimensions of the fourth mating element 41. Generally, the maximum radial dimension of the fourth snap-fit ​​element 51 is smaller than the minimum length and width of the fourth mating element 41.

[0149] The dimensions of the fourth snap-fit ​​element 51 are matched with the dimensions of the second snap-fit ​​element 15. Generally, the radial dimension of the fourth snap-fit ​​element 51 is equal to the radial dimension of the second snap-fit ​​element 15, and the axial dimension of the fourth snap-fit ​​element 51 is equal to the axial dimension of the second snap-fit ​​element 15.

[0150] The dimensions of the fourth snap-fit ​​element 51 are matched with those of the third snap-fit ​​element 31. Generally, the radial dimension of the fourth snap-fit ​​element 51 is equal to the radial dimension of the third snap-fit ​​element 31, and the axial dimension of the fourth snap-fit ​​element 51 is equal to the axial dimension of the third snap-fit ​​element 31.

[0151] In some embodiments, the fourth snap-fit ​​element 51 is fixedly connected to the fourth mating element 41, including but not limited to vulcanization bonding.

[0152] In some of these embodiments, the fourth snap-fit ​​element 51 is made of rubber.

[0153] In some of these embodiments, the fourth snap-fit ​​element 51 is the second snap-fit ​​block.

[0154] like Figure 8 As shown, the first limiting unit 60 includes a first limiting element 61. The first limiting element 61 is detachably connected to the main body unit 10 and the first docking unit 20 of another novel rubber plate structure that is adjacent to it on the left and right.

[0155] Specifically, the first limiting element 61 passes through the first through groove element 16 and is threadedly connected to the first connecting element 22 of another novel rubber sheet structure on the left and right adjacent sides.

[0156] Specifically, the first limiting element 61 passes through the first through slot and the second through slot.

[0157] In some embodiments, the first limiting element 61 includes a first limiting plate, a first screw, and a first groove. The first limiting plate is disposed in the first through groove; the first screw is disposed at the bottom end of the first limiting plate and passes through the second through groove to be threadedly connected to the first connecting element 22 of another novel rubber sheet structure on the left and right adjacent sides; the first groove is disposed at the top end of the first limiting plate for inserting a hexagonal wrench.

[0158] The dimensions of the first limiting plate are matched with the dimensions of the first through slot element 16. Generally, the radial dimension of the first limiting plate is equal to the radial dimension of the first through slot, and the axial dimension of the first limiting plate is equal to the axial dimension of the first through slot.

[0159] The dimensions of the first screw are matched with the dimensions of the first limiting plate. Generally, the radial dimension of the first screw is smaller than the radial dimension of the first limiting plate, and the axial dimension of the first screw is larger than the axial dimension of the first limiting plate.

[0160] The dimensions of the first screw are matched with the dimensions of the second through slot. Generally, the radial dimension of the first screw is equal to the radial dimension of the second through slot, and the axial dimension of the first screw is greater than the axial dimension of the second through slot.

[0161] The dimensions of the first screw are matched with the dimensions of the first connecting element 22. Generally, the radial dimension of the first screw is equal to the radial dimension of the first connecting element 22, and the axial dimension of the first screw is greater than the axial dimension of the first connecting element 22.

[0162] The dimensions of the first groove are matched with the dimensions of the first limiting plate. Generally, the radial dimension of the first groove is smaller than the radial dimension of the first limiting plate, and the axial dimension of the first groove is smaller than the axial dimension of the first limiting plate.

[0163] In some of these embodiments, the first defining element 61 is made of metal.

[0164] like Figure 9 As shown, the second limiting unit 70 includes a second limiting element 71. The second limiting element 71 is detachably connected to the main unit 10 and the corresponding adjacent second docking unit 40 of another novel rubber plate structure.

[0165] Specifically, the second limiting element 71 passes through the second through groove element 17 and is threadedly connected to the second connecting element 42 of another novel rubber sheet structure that is adjacent to it on the front and back.

[0166] Specifically, the second limiting element 71 passes through the third through slot and the fourth through slot.

[0167] In some embodiments, the second limiting element 71 includes a second limiting plate, a second screw, and a second groove. The second limiting plate is disposed in a third through groove; the second screw is disposed at the bottom end of the second limiting plate and passes through a fourth through groove to be threadedly connected to a corresponding adjacent second connecting element 42 of another novel rubber sheet structure; the second groove is disposed at the top end of the second limiting plate for inserting a hexagonal wrench.

[0168] The dimensions of the second limiting plate are matched with the dimensions of the third through slot element. Generally, the radial dimension of the second limiting plate is equal to the radial dimension of the third through slot, and the axial dimension of the second limiting plate is equal to the axial dimension of the third through slot.

[0169] The dimensions of the second limiting plate match the dimensions of the first limiting element 61. Generally, the radial dimension of the second limiting plate is equal to the radial dimension of the first limiting plate, and the axial dimension of the second limiting plate is equal to the axial dimension of the first limiting plate.

[0170] The dimensions of the second screw are matched with the dimensions of the second limiting plate. Generally, the radial dimension of the second screw is smaller than the radial dimension of the second limiting plate, and the axial dimension of the second screw is larger than the axial dimension of the second limiting plate.

[0171] The dimensions of the second screw are matched with the dimensions of the fourth through slot. Generally, the radial dimension of the second screw is equal to the radial dimension of the fourth through slot, and the axial dimension of the second screw is greater than the axial dimension of the fourth through slot.

[0172] The dimensions of the second screw are matched with the dimensions of the second connecting element 42. Generally, the radial dimension of the second screw is equal to the radial dimension of the second connecting element 42, and the axial dimension of the second screw is greater than the axial dimension of the second connecting element 42.

[0173] The dimensions of the second screw match the dimensions of the first limiting element 61. Generally, the radial dimension of the second screw is equal to the radial dimension of the first screw, and the axial dimension of the second screw is equal to the axial dimension of the first screw.

[0174] The dimensions of the second groove match the dimensions of the second defining plate. Generally, the radial dimension of the second groove is smaller than the radial dimension of the second defining plate, and the axial dimension of the second groove is smaller than the axial dimension of the second defining plate.

[0175] The dimensions of the second groove match the dimensions of the first defining element 61. Generally, the radial dimension of the second groove is equal to the radial dimension of the first groove, and the axial dimension of the second groove is equal to the axial dimension of the first groove.

[0176] In some of these embodiments, the second defining element 71 is made of metal.

[0177] The method of using this utility model is as follows:

[0178] (I) Install two adjacent new rubber sheet structures on the left and right sides

[0179] A third docking element 21 of a novel rubber sheet structure is connected to a first docking element 12 of another novel rubber sheet structure.

[0180] Press the main component 11 of another novel rubber sheet structure to engage the third snap-fit ​​component 31 of the novel rubber sheet structure with the first snap-fit ​​component 13 of the novel rubber sheet structure, so that the first through groove component 16 of the novel rubber sheet structure is connected to the first connecting component 22 of the novel rubber sheet structure.

[0181] (II) The structure of two adjacent new rubber plates before and after installation

[0182] A fourth docking element 41 of a novel rubber sheet structure is connected to a second docking element 14 of another novel rubber sheet structure.

[0183] Press the main component 11 of another novel rubber sheet structure to engage the fourth snap-fit ​​component 51 of the novel rubber sheet structure with the second snap-fit ​​component 15 of the novel rubber sheet structure, so that the second through groove component 17 of the novel rubber sheet structure is connected to the second connecting component 42 of the novel rubber sheet structure.

[0184] (III) Limiting the installation of two adjacent new rubber sheet structures on the left and right sides

[0185] The first limiting unit 60 is threaded through the first through groove element 16 of another novel rubber sheet structure and threaded to the first connecting element 22 of a novel rubber sheet structure until it is tightened.

[0186] (iv) Limiting the structure of two adjacent new rubber sheets before and after installation

[0187] The second limiting unit 70 is threaded through the second through groove element 17 of another novel rubber sheet structure and threaded to the second connecting element 42 of a novel rubber sheet structure until it is tightened.

[0188] The advantages of this invention lie in the tight engagement of the first and second docking units, and the first and second snap-fit ​​units, effectively offsetting the memory stress generated by the winding of the main unit. This close cooperation greatly limits the displacement at both ends of the main unit, ensuring a stable fit against the mounting surface and preventing loosening or warping. This guarantees the stability and sealing of the main unit after installation, ensuring its normal performance. Furthermore, the cooperative use of the first and second limiting units allows for precise separation of the damaged portion of the main unit when a partial replacement is needed. For example, the first limiting unit restricts adjacent units on the left and right, and the second limiting unit restricts adjacent units on the front and rear. This modular design greatly simplifies the partial disassembly process, reduces replacement costs, improves maintenance efficiency, and makes the maintenance of the main unit more convenient.

[0189] The above description is only a preferred embodiment of the present utility model and does not limit the implementation method and protection scope of the present utility model. Those skilled in the art should realize that all solutions obtained by equivalent substitutions and obvious changes made based on the description and illustrations of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A novel rubber sheet structure, characterized in that, include: Main unit; The first docking unit is disposed on the side of the main body unit and is docked with another main body unit of a novel rubber plate structure that is adjacent to it on the left and right sides. At least one first snap-fit ​​unit is disposed at the top of the first docking unit and snaps into the main body unit of another novel rubber plate structure on the left and right adjacent sides. The second docking unit is disposed at the end of the main body unit and is connected to another main body unit with a novel rubber plate structure that is adjacent to it on the front and back. At least one second snap-fit ​​unit is disposed at the top of the second docking unit and snaps into the main body unit of another novel rubber plate structure that is adjacent to it in front and behind. The first limiting unit is detachably connected to the main unit and the first docking unit of another novel rubber plate structure on the left and right sides respectively. The second limiting unit is detachably connected to the main unit and the corresponding adjacent second docking unit of another novel rubber plate structure.

2. The novel rubber sheet structure according to claim 1, characterized in that, The main body unit includes: The main component has a first docking unit on one side and a second docking unit on the rear end, and is connected to the first docking unit and the second docking unit respectively. The first docking element is disposed on the other side of the main body element and is connected to the first docking unit of another novel rubber plate structure that is adjacent to it on the left and right sides. At least one first snap-fit ​​element is disposed at the top of the first mating element and snaps into the first snap-fit ​​unit of another novel rubber plate structure on the left and right adjacent sides. The second docking element is disposed at the front end of the main body element and is connected to the second docking unit of another novel rubber plate structure that is adjacent to it on the front and back. At least one second snap-fit ​​element is disposed at the top of the second mating element and snaps into the corresponding second snap-fit ​​unit of another novel rubber plate structure.

3. The novel rubber sheet structure according to claim 2, characterized in that, The main body unit also includes: A first through-slot element is disposed through the other side of the main body element and is connected to the first docking element for the first limiting unit to pass through.

4. The novel rubber sheet structure according to claim 2, characterized in that, The main body unit also includes: The second through-slot element extends through the front end of the main body element and is connected to the second docking element, allowing the second limiting unit to pass through.

5. The novel rubber sheet structure according to claim 1, characterized in that, The first docking unit includes: The third docking element is disposed on the side of the main body unit and is docked with the corresponding left and right adjacent main body unit of another novel rubber plate structure; A first connecting element is disposed at the top of the third docking element and is detachably connected to the first limiting unit of another novel rubber plate structure on the left and right adjacent sides.

6. The novel rubber sheet structure according to claim 1, characterized in that, The first card-connecting unit includes: The third snap-fit ​​element is disposed at the top of the first docking unit and snaps into the main body unit of the corresponding left and right adjacent novel rubber plate structure.

7. The novel rubber sheet structure according to claim 1, characterized in that, The second docking unit includes: A fourth docking element is disposed at the end of the main body unit and is docked with another main body unit with a novel rubber plate structure that is adjacent to it on the front and back. The second connecting element is disposed at the top of the fourth docking element and is detachably connected to the second limiting unit of another novel rubber plate structure that is adjacent to it on the front and back.

8. The novel rubber sheet structure according to claim 1, characterized in that, The second snap-fit ​​unit includes: A fourth snap-fit ​​element is disposed at the top of the second docking unit and snaps into the main body unit of another novel rubber plate structure that is adjacent to it on the front and back.

9. The novel rubber sheet structure according to claim 1, characterized in that, The first limiting unit includes: The first limiting element is detachably connected to the main body unit and the first docking unit of another novel rubber plate structure on the left and right sides.

10. The novel rubber sheet structure according to claim 1, characterized in that, The second defining unit includes: The second limiting element is detachably connected to the main body unit and the second docking unit of another novel rubber plate structure that is adjacent to it on the front and back.