Diamond super-wear-resistant anti-skid ceramic tile

By designing the diamond wear-resistant layer and multi-layer anti-slip structure on the surface of the tile, the problem of insufficient wear resistance and anti-slip properties of the tile is solved, efficient drainage and safety improvement are achieved, and the service life and aesthetics of the tile are extended.

CN223241010UActive Publication Date: 2025-08-19FOSHAN NEW HENGLONG POLISHED TILE CO LTD
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Patent Information

Application Number
CN202422582846.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-08-19
Estimated Expiration
2034-10-25

AI Technical Summary

Technical Problem

The existing ceramic tiles are not wear-resistant and anti-slip, especially in humid environments, and the drainage design is not efficient enough, which affects cleaning and safety, and has a low aesthetics and service life.

Method used

A diamond ultra-wear-resistant and anti-slip ceramic tiles are designed, including the tile base layer and the diamond wear-resistant layer. The surface is equipped with anti-slip flanges, anti-slip sheets, U-shaped and V-shaped flow guide grooves, and the bottom is equipped with L-shaped extended end plates and bottom plate convex strips to form a multi-layer anti-slip system and an efficient drainage network.

Benefits of technology

It improves the wear resistance and slip resistance of ceramic tiles, ensures safety in humid environments, rapid drainage, extends service life, and improves the practicality and aesthetics of ceramic tiles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of tiles, and discloses a diamond super wear-resistant anti-skid tile which comprises a tile base layer and a diamond wear-resistant layer, the diamond wear-resistant layer is fixedly arranged at the upper end of the tile base layer, anti-skid flanges are distributed at the front end and the rear end of the top of the diamond wear-resistant layer, and anti-skid pieces are distributed in the middle of the top of the diamond wear-resistant layer. U-shaped flow guide grooves are longitudinally formed in the top of the diamond wear-resistant layer, and V-shaped flow guide grooves are transversely formed in the top of the diamond wear-resistant layer; extending end plates are fixedly arranged at the front end and the left end of the bottom of the ceramic tile base layer, the extending end plates are of L-shaped plate-shaped structures, and bottom plate protruding strips are fixedly distributed at the bottoms of the extending end plates. The diamond super-wear-resistant anti-skid ceramic tile is high in hardness and resistant to wear, the anti-skid effect of the surface of the ceramic tile is enhanced, sideslip during walking is effectively prevented, walking safety can be ensured even in a humid environment through a multi-layer anti-skid system, the risk of slip accidents is greatly reduced, and the practicability of the ceramic tile is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of ceramic tiles, in particular to a diamond super wear-resistant and anti-skid ceramic tile. Background Art

[0002] Ceramic tiles are a type of acid- and alkali-resistant porcelain or stone building or decorative material made from refractory metal oxides and semi-metal oxides through a process of grinding, mixing, pressing, glazing, and sintering. Their raw materials are mostly clay and quartz sand, mixed at high temperatures and compressed, resulting in very high hardness. Ceramic tiles are widely used in our daily lives. With the general improvement of people's living conditions, ceramic tiles have become commonplace in every household. They are easy to use, easy to clean, and beautiful in appearance. However, due to the manufacturing process, the surface of ceramic tiles is smooth, which is not conducive to walking for children or people with disabilities and can easily lead to danger. In interior decoration materials, ceramic tiles that are corrosion-resistant, waterproof, and stain-resistant are generally used for kitchen, bathroom, and balcony floors. Because kitchen, bathroom, and balcony floors are often wet and slippery, non-slip ceramic tiles with high surface friction are often used.

[0003] Currently, existing ceramic tiles have the following problems: insufficient wear resistance and slip resistance, especially in wet environments, making them prone to slipping; inefficient drainage, which makes it difficult to quickly drain accumulated water, affecting cleanliness and safety; and a low aesthetic quality and service life, which do not meet the requirements of sustainable development. Therefore, a corresponding technical solution is needed to address these issues. Utility Model Content

[0004] (1) Technical problems solved

[0005] In response to the shortcomings of the existing technology, the utility model provides a super wear-resistant and anti-slip diamond tile, which solves the technical problems of insufficient wear resistance and anti-slip properties of tiles, inefficient drainage design, which makes it difficult to quickly drain accumulated water, affecting cleanliness and safety, and low aesthetics and service life.

[0006] (2) Technical solution

[0007] To achieve the above objectives, the present invention is implemented through the following technical solutions: a diamond super wear-resistant and anti-slip ceramic tile, comprising a ceramic tile base and a diamond wear-resistant layer, the diamond wear-resistant layer is fixedly arranged at the upper end of the ceramic tile base, the top front and rear ends of the diamond wear-resistant layer are provided with anti-slip flanges, the top middle of the diamond wear-resistant layer is provided with an anti-slip sheet, the top of the diamond wear-resistant layer is longitudinally provided with a U-shaped guide groove, the top of the diamond wear-resistant layer is transversely provided with a V-shaped guide groove; the bottom front end and the left end of the ceramic tile base are fixedly provided with an extended end plate, the extended end plate is an L-shaped plate structure, and the bottom of the extended end plate is fixedly provided with a bottom plate convex strip.

[0008] Preferably, a convex strip is fixedly provided at the front end of the tile base layer, and a groove is provided at the left end of the tile base layer; the convex strip and the groove are used to tighten the two tiles when they are installed relative to each other to prevent them from falling off easily after long-term use.

[0009] Preferably, serrated plates are fixedly distributed on both sides of the bottom plate convex strips; the serrated plates are used to increase the friction between the tiles and the ground or wall, effectively preventing the tiles from being displaced or falling off due to external forces, and improving the stability of the overall structure.

[0010] Preferably, edge bumps are distributed on the top of the anti-slip sheet, and polygonal anti-slip protrusion structures and triangular anti-slip protrusion structures are distributed in an array on the top of the anti-slip sheet, the polygonal anti-slip protrusion structure is located in the middle of the edge bumps, and the triangular anti-slip protrusion structure is located in the middle of the polygonal anti-slip protrusion structure; the edge bumps, polygonal anti-slip protrusion structure and triangular anti-slip protrusion structure are used to form a multi-level anti-slip system, which can ensure walking safety even in a wet environment, greatly reduce the risk of slipping accidents, and improve the practicality of tiles.

[0011] Preferably, there are bumps distributed on the top of the anti-slip flange, and the bumps are hemispherical in structure; the hemispherical bumps can make pedestrians more comfortable when walking on the tile, improve the anti-slip effect of the tile, and avoid slipping.

[0012] Preferably, recessed holes are provided on the top of the extended end plate, and the recessed holes are arc-shaped chamfered structures; the recessed holes with arc-shaped chamfered structures make the tiles more stable after installation, avoid warping, and facilitate installation using fixings or adhesives, thereby ensuring the flatness and firmness of the tile laying.

[0013] Preferably, an S-shaped collecting trough 1 is provided at both ends of the bottom of the extended end plate, and a V-shaped collecting trough 2 is provided at the bottom corner end of the extended end plate; the S-shaped collecting trough 1 and the V-shaped collecting trough 2 are both used to stably pave the ground in different forms, reduce the probability of hollowing, are safe and reliable, and have a long service life.

[0014] Preferably, the ratio of the tile base layer to the diamond wear-resistant layer is 3:1, and the thickness of the diamond wear-resistant layer is 3.5-5mm; the ratio of 3:1 not only ensures the durability of the tile, but also takes into account the rational use of materials, reflecting the design concept of environmental protection and energy saving.

[0015] (3) Beneficial effects

[0016] The diamond super wear-resistant and anti-skid ceramic tile has achieved unprecedented wear resistance by introducing a diamond wear-resistant layer as a key component of the tile surface. It is not only hard and wear-resistant, but the anti-skid flange and anti-skid sheet structure further enhance the anti-skid effect of the tile surface, effectively preventing side slipping when walking. The edge bumps, polygonal anti-skid raised structure and triangular anti-skid raised structure on the anti-skid sheet form a multi-layered anti-skid system, ensuring walking safety even in wet conditions, greatly reducing the risk of slipping accidents, improving the practicality of the tile, and reflecting deep concern for user safety.

[0017] The U-shaped and V-shaped drainage grooves on the surface of the tiles are crisscrossed to form an efficient drainage network that can quickly guide water away, avoid water accumulation, keep the floor dry, and reduce the risk of slips caused by water stains. It not only helps to quickly drain accumulated water, but also reduces water erosion on the edges of the tiles, extending the service life of the tiles. At the same time, it is easy to clean and maintain, and can easily remove stains and moisture, keeping the tiles beautiful and hygienic.

[0018] By setting an L-shaped extended end plate at the bottom of the tile base, additional installation convenience is provided, the connection stability between tiles is enhanced, and the stability of the overall structure is improved;

[0019] It not only focuses on functionality, but also takes aesthetics into consideration. It not only enhances the practicality of tiles, but also gives them a unique visual beauty. It can be well integrated into various decoration styles and enhance the overall beauty of the space. Whether it is home, commercial or public facilities, it can show both safe and beautiful characteristics. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic diagram of the overall structure of the utility model from the upper right perspective;

[0021] Figure 2 This is a schematic diagram of the overall structure of the utility model from the upper left perspective;

[0022] Figure 3 This is a schematic diagram of the overall structure of the utility model from the lower right perspective;

[0023] Figure 4 This is a schematic diagram of the bottom plate convex strip structure of the utility model;

[0024] Figure 5 This is a schematic diagram of the top structure of the utility model;

[0025] Figure 6 For the utility model Figure 5 Enlarged structural diagram at point A in the middle.

[0026] In the figure, the ceramic tile base layer 1, the convex strips 11, the grooves 12, the bottom plate convex strips 13, the serrated plate 131, the diamond wear-resistant layer 2, the anti-slip sheet 21, the edge protrusions 211, the polygonal anti-slip protrusion structure 212, the triangular anti-slip protrusion structure 213, the anti-slip flange 22, the protrusion 221, the U-shaped guide groove 23, the V-shaped guide groove 24, the extended end plate 3, the concave hole 31, the collecting groove 1 32, and the collecting groove 2 33. DETAILED DESCRIPTION

[0027] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0028] See also Figures 1-6 The embodiment of the utility model provides a technical solution: a diamond super wear-resistant and anti-slip tile, comprising a tile base 1 and a diamond wear-resistant layer 2, the diamond wear-resistant layer 2 is fixedly arranged on the upper end of the tile base 1, the front and rear ends of the top of the diamond wear-resistant layer 2 are distributed with anti-slip flanges 22, the middle of the top of the diamond wear-resistant layer 2 is distributed with an anti-slip sheet 21, the top of the diamond wear-resistant layer 2 is longitudinally provided with a U-shaped guide groove 23, and the top of the diamond wear-resistant layer 2 is transversely provided with a V-shaped guide groove 24;

[0029] An extended end plate 3 is fixedly provided at the front end and the left end of the bottom of the tile base layer 1. The extended end plate 3 is an L-shaped plate structure. A bottom plate convex strip 13 is fixedly distributed at the bottom of the extended end plate 3.

[0030] As a further improvement, a convex strip 11 is fixedly provided at the front end of the tile base 1, and a groove 12 is provided at the left end of the tile base 1;

[0031] The ridges 11 and the grooves 12 are used to secure two tiles together during installation to prevent them from falling off after long-term use.

[0032] As a further improvement, serrated plates 131 are fixedly distributed on both sides of the bottom plate convex strip 13;

[0033] The serrated plate 131 is used to increase the friction between the tiles and the floor or wall, effectively preventing the tiles from being displaced or falling off due to external forces, temperature changes or pressure from heavy objects, thereby improving the stability of the overall structure.

[0034] As a further improvement, the top of the anti-slip sheet 21 is distributed with edge protrusions 211, and the top of the anti-slip sheet 21 is distributed with polygonal anti-slip protrusion structures 212 and triangular anti-slip protrusion structures 213 in an array. The polygonal anti-slip protrusion structure 212 is located in the middle of the edge protrusions 211, and the triangular anti-slip protrusion structure 213 is located in the middle of the polygonal anti-slip protrusion structure 212.

[0035] The edge protrusions 211, the polygonal anti-skid protrusion structure 212 and the triangular anti-skid protrusion structure 213 are used to form a multi-level anti-skid system, which can ensure walking safety even in a wet environment, greatly reduce the risk of slipping accidents, and improve the practicality of the tiles.

[0036] As a further improvement, a bump 221 is distributed on the top of the anti-slip flange 22, and the bump 221 is a hemispherical structure;

[0037] The hemispherical protrusions 221 can make pedestrians more comfortable when walking on the tiles, thereby improving the anti-skid effect of the tiles and avoiding the phenomenon of slipping.

[0038] As a further improvement, recessed holes 31 are provided on the top of the extended end plate 3, and the recessed holes 31 are arc-shaped chamfered structures;

[0039] The concave hole 31 with an arc-shaped chamfered structure makes the tiles more stable after installation, avoids warping, and facilitates installation using fixings or adhesives, thereby ensuring the flatness and firmness of the tile laying.

[0040] As a further improvement, two ends of the bottom of the extended end plate 3 are provided with S-shaped collecting grooves 32, and a V-shaped collecting groove 33 is provided at the bottom corner of the extended end plate 3.

[0041] The first collecting trough 32 with an S-shaped structure and the second collecting trough 33 with a V-shaped structure are both used for paving the ground stably in different forms, reducing the probability of hollowing, being safe, reliable and having a long service life.

[0042] Specifically, the ratio of the tile base layer 1 to the diamond wear-resistant layer 2 is 3:1, and the thickness of the diamond wear-resistant layer 2 is 3.5-5 mm;

[0043] The 3:1 ratio not only ensures the durability of the tiles, but also takes into account the rational use of materials, reflecting the design concept of environmental protection and energy saving.

[0044] By introducing the diamond wear-resistant layer 2 as a key component of the tile surface, unprecedented wear resistance is achieved. Not only is it hard and wear-resistant, but the anti-slip flange 22 and anti-slip sheet 21 further enhance the anti-slip effect of the tile surface, effectively preventing side slipping when walking. The edge bumps 211, polygonal anti-slip convex structure 212, and triangular anti-slip convex structure 213 on the anti-slip sheet form a multi-layered anti-slip system, ensuring walking safety even in wet environments, greatly reducing the risk of slipping accidents, improving the practicality of the tile, and reflecting deep concern for user safety.

[0045] The U-shaped guide grooves 23 and V-shaped guide grooves 24 on the surface of the tile are designed in a crisscross pattern, forming an efficient drainage network that can quickly guide water away, avoid water accumulation, keep the floor dry, and reduce the risk of slipping due to water stains. It not only helps to quickly drain accumulated water, but also reduces water erosion on the edges of the tiles, extending the service life of the tiles. At the same time, it is easy to clean and maintain, and can easily remove stains and moisture, keeping the tiles beautiful and hygienic.

[0046] By providing an L-shaped extension end plate 3 at the bottom of the tile base 1, additional installation convenience is provided, the connection stability between the tiles is enhanced, and the stability of the overall structure is improved;

[0047] It not only focuses on functionality, but also takes aesthetics into consideration. It not only enhances the practicality of tiles, but also gives them a unique visual beauty. It can be well integrated into various decoration styles and enhance the overall beauty of the space. Whether it is home, commercial or public facilities, it can show both safe and beautiful characteristics.

[0048] The utility model comprises a ceramic tile base layer 1, convex strips 11, grooves 12, bottom plate convex strips 13, serrated plates 131, diamond wear-resistant layer 2, anti-slip sheets 21, edge convex particles 211, polygonal anti-slip convex structures 212, triangular anti-slip convex structures 213, anti-slip flanges 22, protrusions 221, U-shaped guide grooves 23, V-shaped guide grooves 24, extended end plates 3, recessed holes 31, collecting grooves 1 32, and collecting grooves 2 33. The components are all universal standard parts or components known to those skilled in the art, and their structures and principles can be known to those skilled in the art through technical manuals or conventional experimental methods. The problems solved by the utility model are that ceramic tiles are not wear-resistant and anti-slip, and the drainage design is not efficient enough, which makes it difficult to quickly remove accumulated water, affecting cleaning and safety, and having low aesthetics and service life. The utility model solves the problem ... which affects cleaning and safety, and has low aesthetics and service life. The utility model solves the problem that ceramic tiles are not wear-resistant and anti-slip, and the drainage design is not efficient enough, which makes it difficult to quickly remove accumulated water, and affects cleaning and safety, and has low aesthetics and service life. The utility model solves the problem that ceramic tiles are not wear-resistant and anti-slip, and the utility model The combination of these two structures achieves unprecedented wear resistance. Not only is it hard and wear-resistant, but the design of the anti-slip flange 22 and the anti-slip sheet 21 structure further enhances the anti-slip effect of the tile surface, effectively preventing side slipping during walking. The edge protrusions 211, the polygonal anti-slip raised structure 212 and the triangular anti-slip raised structure 213 on the anti-slip sheet form a multi-level anti-slip system, which can ensure walking safety even in a wet environment, greatly reducing the risk of slipping accidents, improving the practicality of tiles, and reflecting the deep concern for user safety. It not only focuses on function but also takes aesthetics into consideration, which not only enhances the practicality of tiles, but also gives them a unique visual beauty. It can be well integrated into various decoration styles and enhance the overall beauty of the space. Whether it is home, commercial or public facilities, it can show both safe and beautiful characteristics.

[0049] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It is obvious to those skilled in the art that the present invention is not limited to the details of the above exemplary embodiments and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, from all perspectives, the embodiments should be regarded as illustrative and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description, and it is intended that all changes that fall within the meaning and range of equivalents of the claims be included in the present invention. Any reference signs in the claims should not be construed as limiting the claim to which they relate.

[0050] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A diamond super wear-resistant and anti-skid ceramic tile, comprising a ceramic tile base layer (1) and a diamond wear-resistant layer (2), characterized in that: The diamond wear-resistant layer (2) is fixedly arranged on the upper end of the tile base layer (1); anti-slip flanges (22) are distributed at the front and rear ends of the top of the diamond wear-resistant layer (2); an anti-slip sheet (21) is distributed at the middle of the top of the diamond wear-resistant layer (2); a U-shaped guide groove (23) is longitudinally opened on the top of the diamond wear-resistant layer (2); and a V-shaped guide groove (24) is horizontally opened on the top of the diamond wear-resistant layer (2); The front end and the left end of the bottom of the tile base layer (1) are both fixedly provided with an extended end plate (3), the extended end plate (3) is an L-shaped plate structure, and the bottom of the extended end plate (3) is fixedly provided with a bottom plate convex strip (13).

2. The super wear-resistant and anti-slip ceramic tile according to claim 1, characterized in that: A convex strip (11) is fixedly provided at the front end of the tile base layer (1), and a groove (12) is provided at the left end of the tile base layer (1).

3. The super wear-resistant and anti-slip ceramic tile according to claim 1, characterized in that: Sawtooth plates (131) are fixedly distributed on both sides of the bottom plate convex strip (13).

4. The super wear-resistant and anti-slip ceramic tile according to claim 1, characterized in that: The top of the anti-slip sheet (21) is provided with edge convex particles (211), and the top of the anti-slip sheet (21) is provided with polygonal anti-slip convex structures (212) and triangular anti-slip convex structures (213) in an array pattern, wherein the polygonal anti-slip convex structure (212) is located in the middle of the edge convex particles (211), and the triangular anti-slip convex structure (213) is located in the middle of the polygonal anti-slip convex structure (212).

5. The super wear-resistant and anti-slip ceramic tile according to claim 4, characterized in that: The top of the anti-slip flange (22) is provided with a bump (221), and the bump (221) is a hemispherical structure.

6. The super wear-resistant and anti-slip ceramic tile according to claim 1, characterized in that: Concave holes (31) are distributed on the top of the extended end plate (3), and the concave holes (31) are arc-shaped chamfered structures.

7. The super wear-resistant and anti-skid ceramic tile according to claim 6, characterized in that: A first collecting groove (32) with an S-shaped structure is provided at both ends of the bottom of the extended end plate (3), and a second collecting groove (33) with a V-shaped structure is provided at the bottom corner end of the extended end plate (3).

8. The super wear-resistant and anti-skid ceramic tile according to claim 1, characterized in that: The ratio of the tile base layer (1) to the diamond wear-resistant layer (2) is 3:1, and the thickness of the diamond wear-resistant layer (2) is 3.5-5 mm.