Wear-resistant anti-skid plastic floor

By combining splicing part one and splicing part two and designing a locking mechanism, the problems of low installation efficiency and easy dirt accumulation in gaps of plastic flooring are solved, achieving efficient and aesthetically pleasing seamless splicing and extending the service life of the flooring.

CN224579007UActive Publication Date: 2026-07-31JIANGSU DAFU CONSTRUCTION TECHNOLOGY DEVELOPMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGSU DAFU CONSTRUCTION TECHNOLOGY DEVELOPMENT CO LTD
Filing Date
2025-09-05
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing plastic flooring systems suffer from low glue splicing efficiency, and the visible gaps in the interlocking system easily accumulate dirt, leading to floor deformation.

Method used

By using splicing part one and splicing part two together, the splicing is completed and locked by the locking part. Combined with the design of sealing gasket and locking pin, seamless splicing and stable connection are achieved, preventing dust and liquid from seeping in.

Benefits of technology

It improves installation efficiency, optimizes splicing accuracy, reduces gaps, enhances aesthetics, prevents cleaning dead spots, and extends the service life of the floor.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a wear-resistant and anti-slip plastic flooring, belonging to the field of plastic flooring. It includes a first plastic flooring unit, with a second plastic flooring unit disposed on one side of the first plastic flooring unit; and a splicing assembly disposed on the sides of the first and second plastic flooring units. The splicing assembly includes two sets of splicing portions one disposed on opposite sides of the first and second plastic flooring units, achieving initial connection between the plastic flooring units. Each splicing portion one is provided with a locking portion for locking the plastic flooring units after splicing. Two sets of splicing portions two are disposed on opposite sides of the first and second plastic flooring units, cooperating with the splicing portions one. This wear-resistant and anti-slip plastic flooring of this application achieves initial connection through the cooperation of splicing portions one and two, followed by locking by the locking portions, eliminating the need for glue and compaction curing, thus improving installation efficiency. Furthermore, compared to existing locking splicing methods, it has fewer splicing gaps, preventing impurities from seeping in and causing the flooring to deform due to moisture.
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Description

Technical Field

[0001] This utility model relates to the field of plastic flooring technology, and in particular to a wear-resistant and anti-slip plastic flooring. Background Technology

[0002] Plastic flooring is a type of floor decoration material made from polymer materials (such as PVC, PE, PP, etc., with PVC being the most mainstream material) as the core raw material, through processes such as extrusion, calendering, and molding. With its high cost performance, convenient installation, wear resistance, and stain resistance, it is widely used in homes, offices, commercial spaces, medical facilities, and other scenarios. Plastic flooring can be divided into two types: tiles (or floor bricks) and rolls (or linoleum).

[0003] Existing plastic flooring splicing methods mainly revolve around two categories: tile flooring and roll flooring. Among them, the splicing of tile flooring relies on two core technical paths: click-lock splicing and adhesive splicing. Adhesive splicing technology requires the use of special flooring adhesives such as PVC-specific water-based adhesives. The splicing is achieved by bonding and fixing adjacent floorboards to the sides or bottom surfaces. After splicing, it is necessary to use heavy objects to compact the adhesive until it is completely cured. Although this can ensure high bonding strength and can fill gaps by pressing the adhesive down, it suffers from significant problems in installation efficiency due to limitations in curing time and compaction operations. This is especially true in large-area construction scenarios, which can easily lead to extended construction periods and increased labor costs.

[0004] The interlocking technology uses pre-set tenons and grooves along the edges of the floorboards, allowing for secure fastening through mechanical interlocking without the need for glue. This offers advantages such as easy installation, dry-laying without adhesive, and a highly flat surface after installation. However, it has drawbacks. Firstly, the gaps are visible, affecting the overall aesthetics of the floor. Secondly, these visible gaps create cleaning dead zones, allowing dust, liquids, and other impurities to easily seep into them during daily cleaning. Over time, this accumulation is not only difficult to clean but can also cause the floorboard edges to warp due to moisture, shortening the floor's lifespan. Therefore, a wear-resistant, non-slip plastic flooring design is needed.

[0005] It should be noted that the information disclosed in this background section is only for understanding the background technology of this application concept, and therefore may include information that does not constitute prior art. Utility Model Content

[0006] This utility model provides a wear-resistant and non-slip plastic flooring to solve the problems of low glue splicing efficiency of plastic flooring, visible gaps in the interlocking splicing, easy accumulation of dirt and deformation of the flooring.

[0007] This utility model embodiment adopts the following technical solution: a wear-resistant and anti-slip plastic floor. It mainly includes a plastic floor one, with a plastic floor two disposed on one side of the plastic floor one; and a splicing assembly disposed on the sides of the plastic floor one and the plastic floor two. The splicing assembly includes two sets of splicing portions one disposed on opposite sides of the plastic floor one and the plastic floor two, achieving a preliminary connection between the plastic floorboards. Each splicing portion one is provided with a locking portion for locking the plastic floorboards after splicing. Two sets of splicing portions two are disposed on opposite sides of the plastic floor one and the plastic floor two, cooperating with the splicing portions one.

[0008] Furthermore, the splicing part one includes a mating block one fixed to the opposite sides of the plastic flooring one and the plastic flooring two. The mating block one is flush with the upper surface of the plastic flooring. The bottom surface of the mating block one extends downward with an extension part one. The two ends of the extension part one are spaced apart from the two ends of the mating block one. One side of the extension part one is attached to the side of the plastic flooring one and the plastic flooring two. The mating block one and the extension part one form a mating part one.

[0009] Furthermore, the locking part includes a fixing part fixed to the bottom surface of the docking block and located at the distance between the two ends of the extension part and the two ends of the docking block. The fixing part is composed of two sets of concave blocks connected together. A rotating shaft is provided between the two sets of concave blocks via a bearing. A limit rod is connected to the rotating shaft via a torsion spring. The limit rod is inverted L-shape. The vertical section of the limit rod is connected to the rotating shaft. The top surface of the horizontal end of the limit rod is lower than the top surface of the concave block. The horizontal end of the limit rod is parallel to the concave block. An anti-slip surface is provided on the bottom surface of the horizontal end of the limit rod. A locking pin extends downward integrally from the bottom surface of the horizontal end of the limit rod. The locking pin has a triangular structure.

[0010] Furthermore, the splicing part two includes a mating block two fixed to the plastic flooring one and the plastic flooring two opposite sides. The mating block two has a similar structure to the mating block one. The mating block two has an extension part two. The bottom surface of the mating block two is flush with the bottom surface of the plastic flooring. The mating block two and the mating block one are symmetrically arranged. The mating block two and the extension part two form a mating part two.

[0011] Furthermore, a T-shaped block is fixed to the bottom surface of the fixing part, and a T-shaped groove is provided on the upper surface of the second connecting block to slide and adapt to the T-shaped block. The second plastic floor is adapted to slide and pre-position with the T-shaped block of the first plastic floor having the first connecting part through the T-shaped groove of the second connecting part.

[0012] Furthermore, a handle is fixed to the bottom surface of the vertical end of the limiting rod to drive the limiting rod to rotate along the rotating shaft.

[0013] Furthermore, the two sides of the extension part two are fixed with positioning shafts that engage with the locking pin block and the inner wall of the fixing part in the default state by right-angle rods. The positioning shafts have limiting rings near both ends, and the limiting rings are adapted to fit against the two sides of the locking pin block respectively.

[0014] Furthermore, a sealing gasket is provided at the contact position between the mating part one of the plastic flooring and the mating part two of the plastic flooring.

[0015] Furthermore, the bottom of both plastic flooring one and plastic flooring two has a concave structure, and the upper surface of both plastic flooring one and plastic flooring two is integrally provided with multiple sets of equally spaced anti-slip parts. Both plastic flooring one and plastic flooring two have through holes between adjacent anti-slip parts, and the upper surface of both plastic flooring one and plastic flooring two has a PVC-based wear-resistant layer.

[0016] The above-mentioned technical solutions adopted in the embodiments of this utility model can achieve the following beneficial effects:

[0017] A wear-resistant, non-slip plastic flooring system utilizes the cooperation of splicing part one and splicing part two to achieve initial connection between floorboards, and then locks in place using the locking part on splicing part one. Unlike existing glue splicing technologies, it does not rely on special flooring adhesive and heavy objects for compaction and curing, thus shortening installation time and improving installation efficiency. At the same time, compared with existing interlocking splicing technologies, the cooperation of splicing part one and splicing part two optimizes splicing precision. Combined with the stable locking of the locking part, it can reduce visible gaps after splicing, improving the overall aesthetics of the floor and preventing gaps from forming cleaning dead corners. This prevents dust and liquid impurities from seeping in and causing the floorboard edges to become damp and deformed, helping to extend the service life of the flooring and effectively solving the defects of existing tile flooring splicing technologies. Attached Figure Description

[0018] The accompanying drawings, which are provided to further illustrate the present invention and constitute a part of the present invention, illustrate exemplary embodiments of the present invention and are used to explain the present invention, but do not constitute an undue limitation of the present invention.

[0019] In the attached diagram:

[0020] Figure 1 This is an overall schematic diagram of a wear-resistant and anti-slip plastic flooring according to this application;

[0021] Figure 2 for Figure 1 Exploded view;

[0022] Figure 3 for Figure 2 Enlarged view of point A;

[0023] Figure 4 for Figure 2 Enlarged view of point B

[0024] Figure label:

[0025] 1. Plastic flooring unit one; 11. Through hole; 12. Anti-slip part; 13. Hollow frame; 3. Plastic flooring unit two; 2. Splicing assembly; 21. Connecting block one; 211. Extension part one; 22. Fixing part; 23. Rotating shaft; 24. Limiting rod; 25. Anti-slip surface; 26. Locking pin; 27. Handle; 28. T-block; 29. ​​Connecting block two; 291. Extension part two; 210. T-slot; 212. Positioning shaft; 213. Right angle rod. Detailed Implementation

[0026] To further illustrate the technical means and effects adopted by this utility model in order to achieve the intended utility model purpose, the following detailed description of the specific implementation methods, structure, features and effects of this utility model is provided in conjunction with the accompanying drawings and preferred embodiments.

[0027] The technical solutions provided by the various embodiments of this utility model are described in detail below with reference to the accompanying drawings.

[0028] Reference Figures 1-4 As shown in the figure, the present invention provides a wear-resistant and anti-slip plastic floor, including a plastic floor 1 and a plastic floor 2 3. The plastic floor 1 and the plastic floor 2 3 have similar structures. The bottom of the plastic floor 1 and the plastic floor 2 3 has a concave structure. Multiple sets of anti-slip parts 12 are integrally provided on the upper surface of the plastic floor 1 and the plastic floor 2 3, which are arranged at equal intervals. The anti-slip parts 12 can greatly increase the friction between the sole of the foot and the floor, reducing the risk of slipping. Furthermore, the plastic floor 1 and the plastic floor 2 3 are provided with penetrating holes 11 between adjacent anti-slip parts 12. The penetrating holes 11 can not only reduce the overall weight of the floor, but also facilitate the dissipation of ground moisture, preventing the floor from becoming moldy and deformed due to dampness.

[0029] Furthermore, both plastic flooring 1 and plastic flooring 2 have a PVC-based wear-resistant layer on their upper surfaces. This PVC-based wear-resistant layer is used to avoid long-term friction from shoe soles and crushing by heavy objects, which can effectively extend the service life of the flooring. In addition, a hollow frame 13 is integrated into the concave structure at the bottom of both plastic flooring 1 and plastic flooring 2. This hollow frame 13 structure is used to ensure the structural strength of the flooring and further reduce its weight.

[0030] Reference Figures 2-4As shown, splicing components 2 are provided on the sides of both plastic flooring 1 and plastic flooring 3. Each splicing component 2 includes two sets of splicing parts 1 fixed to opposite sides of plastic flooring 1 and plastic flooring 3. Each splicing part 1 includes a mating block 21 fixed to opposite sides of plastic flooring 1 and plastic flooring 3. The mating block 21 is flush with the upper surface of the plastic flooring, ensuring the flatness of the floor surface. Furthermore, an extension 211 extends downward from the bottom surface of the mating block 21. The two ends of the extension 211 are spaced from the two ends of the mating block 21. One side of the extension 211 fits against the side of plastic flooring 1 and plastic flooring 3, forming a mating part 1.

[0031] A locking part is provided at the distance between the two ends of the extension 211 and the two ends of the docking block 21. The locking part includes a fixing part 22 fixed to the bottom surface of the docking block 21 and located at the distance between the two ends of the extension 211 and the two ends of the docking block 21. The fixing part 22 is composed of two sets of concave blocks connected together, and a rotating shaft 23 is provided between the two sets of concave blocks. A limit rod 24 is connected to the rotating shaft 23 by a torsion spring so that the limit rod 24 can maintain a specific state when it is not subjected to external force. The limit rod 24 is inverted L-shaped, wherein the vertical section of the limit rod 24 is connected to the rotating shaft 23, the top surface of the horizontal end of the limit rod 24 is lower than the top surface of the concave block, and under the action of the torsion spring, the horizontal end of the limit rod 24 is parallel to the concave block. At the same time, an anti-slip surface 25 is provided on the bottom surface of the horizontal end of the limit rod 24, and a locking pin 26 extends downward integrally from the bottom surface of the horizontal end of the limit rod 24. The locking pin 26 has a triangular structure.

[0032] Two sets of splicing parts are provided on the opposite two sides of plastic flooring 1 and plastic flooring 3. The splicing parts include two connecting blocks 29 fixed on the opposite two sides of plastic flooring 1 and plastic flooring 3. The connecting blocks 29 are similar in structure to connecting blocks 1 21 and have extensions 291. The bottom surface of connecting blocks 29 is flush with the bottom surface of the plastic flooring, which ensures the fit between the bottom of the flooring and the ground, making the flooring more stable after installation. The connecting blocks 29 and connecting blocks 1 21 are symmetrically arranged so that the flooring can maintain consistent stability and aesthetics during splicing. Connecting blocks 29 and extensions 291 form a mating part 2.

[0033] A T-shaped block 28 is fixed on the bottom surface of the fixing part 22, and a T-shaped groove 210 that is adapted to slide with the T-shaped block 28 is provided on the upper surface of the connecting block 29. The plastic floor 2 3 is suitable for sliding and pre-positioning with the T-shaped block 28 of the plastic floor 1 having the connecting part 1 through the T-shaped groove 210 of the connecting part 2. In actual installation, the construction personnel can easily slide the T-shaped block 28 into the T-shaped groove 210 to complete the initial pre-positioning, thereby improving the installation speed.

[0034] A handle 27 is fixed to the bottom surface of the vertical end of the limiting rod 24, which drives the limiting rod 24 to rotate along the rotating shaft 23. The construction personnel can easily rotate the limiting rod 24 by holding the handle 27, which is very convenient. On both sides of the extension part 291, a positioning shaft 212 is fixed between the locking pin 26 and the inner wall of the fixing part 22 in the default state by a right angle rod 213. The positioning shaft 212 has a limiting ring (not shown in the figure) near both ends. The limiting ring is suitable for fitting against the two sides of the locking pin 26. When the locking pin 26 is engaged with the positioning shaft 212, the limiting ring can limit the locking pin 26 from both sides to prevent it from moving left and right, which further enhances the stability of the two floorboards after splicing and ensures that the floor will not easily loosen during use.

[0035] In this application, when the initial splicing of plastic flooring 1 and plastic flooring 3 is achieved by splicing component 2, that is, when the initial positioning is completed by the T-groove 210 of splicing part 2 and the T-block 28 of splicing part 1, a sealing gasket is provided at the contact position of the mating part 1 of plastic flooring 1 and the mating part 2 of plastic flooring 3 to enhance the sealing performance of the splicing gap, prevent water, dust and other impurities from seeping in from the splicing gap, protect the internal structure of the flooring, and at the same time improve the overall waterproof and dustproof effect of the flooring.

[0036] Working principle: When splicing wear-resistant and anti-slip plastic flooring, first hold the handle 27 to rotate the limiting rod 24 along the pivot 23, causing the limiting rod 24, whose horizontal end is parallel to the concave block, to rotate slightly upward. Then, the splicing component 2 is used to achieve the initial connection between plastic flooring 1 and plastic flooring 3. With the T-groove 210 of splicing part 2 and the T-block 28 of splicing part 1, the construction worker can easily slide the T-block 28 into the T-groove 210 to complete the initial positioning. During this process, the mating part 1 of plastic flooring 1 and the mating part 2 of plastic flooring 3 will be in close contact (see reference). Figure 1 This design ensures that there are no gaps at the joint between plastic flooring 1 and plastic flooring 2, and that the entire joint is flush with the end face of the plastic flooring, guaranteeing the flatness of the flooring surface and laying the foundation for a more stable connection later.

[0037] After the initial positioning is completed, the construction personnel rotate the handle 27 in the opposite direction again, causing the limiting rod 24 to rotate in the opposite direction along the rotating shaft 23. Since the limiting rod 24 is connected to the rotating shaft 23 through a torsion spring, the torsion spring will provide corresponding elastic force. During the rotation, the limiting rod 24, which was originally tilted, rotates. As the limiting rod 24 rotates, the locking pin 26, which has a triangular structure, will gradually approach the positioning shaft 212 on both sides of the extension part 291. Finally, when the locking pin 26 is engaged with the positioning shaft 212, the limiting rings at both ends of the positioning shaft 212 will respectively fit against the two sides of the locking pin 26, limiting the locking pin 26 from both sides and preventing it from moving left and right. At the same time, under the elastic force of the torsion spring, the limiting rod 24 will further promote the locking pin 26 to be tightly engaged with the positioning shaft 212. In this way, the plastic floor 1 and the plastic floor 23 are stably connected through the locking part.

[0038] During subsequent use, the anti-slip part 12 on the upper surface of the plastic floor increases the friction between the soles of the feet and the floor when construction workers walk on it, reducing the risk of slipping and ensuring construction safety; the through holes 11 continue to reduce the weight of the floor and facilitate the dissipation of moisture, preventing the floor from putting too much burden on the installation due to its own weight, and also preventing moisture from accumulating at the bottom of the floor. The PVC-based wear-resistant layer continuously protects the upper surface of the floor, preventing wear and tear caused by tool collisions, personnel stepping on it, etc. during construction; the hollow frame 13 at the bottom also continues to ensure the structural strength of the floor, making the floor less prone to deformation when subjected to external construction forces, and ensuring the structural stability of the floor during the entire locking operation.

[0039] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some modifications or alterations to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the scope of the present utility model shall still fall within the scope of the present utility model.

Claims

1. A wear-resistant, non-slip plastic floor, characterized in that: include Plastic flooring one (1), and plastic flooring two (3) is provided on one side of the plastic flooring one (1); The splicing component (2) is disposed on the side of the first plastic floor (1) and the second plastic floor (3). The splicing component (2) includes two sets of splicing parts 1 disposed on opposite sides of the first plastic floor (1) and the second plastic floor (3) and realizing the initial connection between the plastic floorings. The splicing parts 1 are provided with locking parts for locking the plastic floorings after splicing. The first plastic floor (1) and the second plastic floor (3) are provided on opposite sides of the other two sides with two sets of splicing parts 2 that cooperate with the splicing parts 1. The splicing part one includes a mating block one (21) fixed on the opposite sides of the plastic flooring one (1) and the plastic flooring two (3). The mating block one (21) is flush with the upper surface of the plastic flooring. The bottom surface of the mating block one (21) extends downward with an extension part one (211). The two ends of the extension part one (211) are spaced from the two ends of the mating block one (21). One side of the extension part one (211) is attached to the side of the plastic flooring one (1) and the plastic flooring two (3). The mating block one (21) and the extension part one (211) form a mating part one. The locking part includes a fixing part (22) fixed on the bottom surface of the first docking block (21) and at the distance between the two ends of the first extension part (211) and the two ends of the first docking block (21). The fixing part (22) is composed of two sets of concave blocks connected together. A rotating shaft (23) is provided between the two sets of concave blocks. A limit rod (24) is connected to the rotating shaft (23) by a torsion spring. The limit rod (24) is inverted L-shaped. The vertical section of the limit rod (24) is connected to the rotating shaft (23). The top surface of the horizontal end of the limit rod (24) is lower than the top surface of the concave block. The horizontal end of the limit rod (24) is parallel to the concave block. An anti-slip surface (25) is provided on the bottom surface of the horizontal end of the limit rod (24). A locking pin (26) extends downward integrally from the bottom surface of the horizontal end of the limit rod (24). The locking pin (26) has a triangular structure. The second splicing part includes two connecting blocks (29) fixed on the opposite sides of the first plastic floor (1) and the second plastic floor (3). The second connecting block (29) is similar in structure to the first connecting block (21). The second connecting block (29) has an extension (291). The bottom surface of the second connecting block (29) is flush with the bottom surface of the plastic floor. The second connecting block (29) and the first connecting block (21) are symmetrically arranged. The second connecting block (29) and the extension (291) together form the second mating part.

2. The wear-resistant and anti-skid plastic floor according to claim 1, characterized in that: The bottom surface of the fixing part (22) is fixed with a T-shaped block (28), and the upper surface of the second docking block (29) is provided with a T-shaped groove (210) that is slidably adapted to the T-shaped block (28). The second plastic floor (3) is adapted to be slidably pre-positioned with the T-shaped block (28) of the first plastic floor (1) having the first docking part through the T-shaped groove (210) of the second docking part.

3. The wear-resistant and anti-skid plastic floor according to claim 2, characterized in that: The bottom surface of the vertical end of the limiting rod (24) is fixed with a handle (27) that drives the limiting rod (24) to rotate along the rotating shaft (23).

4. The wear-resistant and anti-skid plastic floor according to claim 3, characterized in that: The two sides of the extension part 2 (291) are fixed with a positioning shaft (212) that engages with the locking pin block (26) and the inner wall of the fixing part (22) in the default state by a right angle rod (213). The positioning shaft (212) has a limiting ring near both ends, which is adapted to be attached to the two sides of the locking pin block (26) respectively.

5. The wear-resistant and anti-skid plastic floor according to claim 4, characterized in that: A sealing gasket is provided at the contact position between the mating part one of the plastic flooring one (1) and the mating part two of the plastic flooring two (3).

6. The wear-resistant and anti-skid plastic floor according to claim 1, characterized in that: The bottom of the first plastic floor (1) and the second plastic floor (3) are concave. The upper surface of the first plastic floor (1) and the second plastic floor (3) is integrally provided with multiple sets of equally spaced anti-slip parts (12). The first plastic floor (1) and the second plastic floor (3) are provided with through holes (11) between adjacent anti-slip parts (12). The upper surface of the first plastic floor (1) and the second plastic floor (3) has a PVC-based wear-resistant layer.