Anti-skid ceramic tile for bathroom

By incorporating rubber friction blocks and an easily removable connecting plate structure on the tile surface, the issues of slip resistance and cleanability in bathroom tiles are resolved, achieving highly efficient slip resistance and convenient cleaning, reducing usage costs and extending the lifespan of the tiles.

CN224149076UActive Publication Date: 2026-04-21FUJIAN QUANZHOU LUXURY CERAMICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FUJIAN QUANZHOU LUXURY CERAMICS CO LTD
Filing Date
2025-05-21
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing bathroom tiles have reduced surface friction when wet, resulting in poor slip resistance. Furthermore, the nano-level indentations of the anti-slip components easily accumulate water, affecting the suction cup effect and further reducing slip resistance.

Method used

The friction blocks, made of rubber, are bonded to the tile surface and connected by bolts for easy replacement. Staggered drainage channels are provided to drain water, and the self-tapping pins and locking mechanism facilitate the disassembly and cleaning of the connecting plate, ensuring the stability and cleanliness of the friction blocks.

Benefits of technology

It improves the anti-slip properties and ease of cleaning of tiles, reduces usage costs, extends the lifespan of tiles, and enhances bathing safety.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224149076U_ABST
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Abstract

The utility model discloses a bathroom anti-skid ceramic tile which comprises a ceramic tile body, an installation groove is formed in the bottom of the ceramic tile body, and the bottom of the installation groove is attached to ground gravel. A connecting plate is attached to the top of the ceramic tile body, a friction block is attached to the top of the connecting plate, the friction block is made of a rubber material, a bolt is connected to the middle of the friction block in a penetrating mode, and the bottom of the bolt extends into the connecting plate to form a threaded connection mechanism; staggered drainage grooves are formed in the connecting plate, and the connecting plate is made of a plastic plate material; self-tapping pins are fixed to the four ends of the ceramic tile body, and plug pins are slidably connected into the self-tapping pins. According to the anti-skid ceramic tile for the bathroom, the friction blocks are installed, extrusion of water is avoided through the protruding arrangement of the friction blocks, so that the feet can make direct contact with the friction blocks, large friction force can be obtained through the friction blocks, and the anti-skid purpose is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of ceramic tile technology, specifically to a bathroom anti-slip ceramic tile. Background Technology

[0002] Bathroom tiles are a core material in bathroom renovation, and their role is not limited to basic functions, but also covers many aspects such as safety, durability, and aesthetics.

[0003] When bathroom tiles get wet, their surface friction decreases, making the surface slippery and potentially causing people to slip and fall.

[0004] To address the aforementioned shortcomings, a bathroom anti-slip tile with publication number CN218714663U is disclosed. This tile incorporates anti-slip components, allowing the surface protrusions to provide a degree of slip resistance. Furthermore, the anti-slip agent layer dissolved by the agent dissolves small amounts of silica within the tile, creating numerous tiny, invisible nanoscale indentations. These indentations, when wet, act as a physical suction cup for the feet, further enhancing slip resistance. Even after a period of use, as the protrusions wear down, water flows through the gaps between the protrusions and the mounting groove, causing the absorbent resin to expand. This effectively prevents wear from affecting the anti-slip effect, ensuring the tile's anti-slip performance remains effective even after extended use.

[0005] In actual use of the aforementioned tiles, although anti-slip components are used to achieve the anti-slip effect, these components contain nano-level indentations. Water may then enter these indentations, preventing the soles of the feet from acting as suction cups when in contact with them, thus resulting in poor anti-slip performance.

[0006] Therefore, we proposed a type of anti-slip tile for bathrooms that can effectively solve the above problems. Utility Model Content

[0007] The purpose of this utility model is to provide a bathroom anti-slip tile to solve the problem mentioned in the background art that the anti-slip components on the market currently have nano-level indentations, which may allow water to enter the nano-level indentations, thus preventing the soles of the feet from acting as suction cups after contact with the nano-level indentations, resulting in poor anti-slip performance.

[0008] To achieve the above objectives, this utility model provides the following technical solution: a bathroom anti-slip ceramic tile, comprising a ceramic tile body, wherein the bottom of the ceramic tile body is provided with an installation groove, and the bottom of the installation groove is in contact with the ground sand and gravel;

[0009] A connecting plate is attached to the top of the ceramic tile body, and a friction block is attached to the top of the connecting plate. The friction block is made of rubber material, and a bolt is connected through the middle of the friction block. The bottom of the bolt extends into the interior of the connecting plate to form a threaded connection mechanism.

[0010] Preferably, the connecting plate is provided with staggered drainage grooves, and the connecting plate is made of plastic sheet material.

[0011] Preferably, the four ends of the ceramic tile body are fixed with self-tapping pins, and the self-tapping pins are slidably connected with inserts, and the top of the inserts is fixed to the bottom of the connecting plate.

[0012] Preferably, the bottom end of the pin is slidably connected to a locking block, and the outer end of the locking block is semi-circular.

[0013] Preferably, the outer end of the card block extends into the interior of the card slot to form a locking mechanism, and the card slot is formed inside the self-tapping pin.

[0014] Preferably, the outer arc-shaped position of the card block is in contact with the edge of the inner opening of the card slot, and the card block and the card slot form a fitting mechanism.

[0015] Preferably, the inner end of the locking block is connected to a spring, and the inner end of the spring is connected inside the pin to form a limiting mechanism.

[0016] Compared with the prior art, the beneficial effects of this utility model are: the bathroom anti-slip tile has better anti-slip properties and is easy to clean. The use of friction blocks can increase the friction with the feet, thus providing better anti-slip properties. Furthermore, the movement of the locking blocks allows the connecting plate to be disassembled, facilitating cleaning of the connecting plate. The specific details are as follows:

[0017] (1) A friction block is provided. The friction block is protruding to avoid water squeezing, so that the foot can directly contact the friction block. The friction block can then obtain a large friction force to improve the anti-slip effect.

[0018] (2) A locking block is provided. When the connecting plate contains dirt, the moving of the locking block makes it easy to disassemble the connecting plate, thereby facilitating the cleaning of the dirt adsorbed in the connecting plate and improving the convenience of cleaning.

[0019] (3) Self-tapping pins are provided. Self-tapping pins are fixed at the four ends of the tile body. The self-tapping pins are slidably connected to the pins. The top of the pins is fixed to the bottom of the connecting plate. The self-tapping pins can reduce the friction on the tile body, thereby improving the stability of the connection.

[0020] (4) A spring is provided, and the inner end of the block is connected to the spring. The inner end of the spring is connected to the inside of the pin to form a limiting mechanism. The block can be limited by the spring, thereby improving the stability of the block.

[0021] (5) Bolts are provided, and bolts are connected through the middle of the friction block. The bottom of the bolts extends into the interior of the connecting plate to form a threaded connection mechanism. The friction block can be replaced individually by bolts, thereby reducing the cost of use. Attached Figure Description

[0022] Figure 1 This is a front view structural diagram of the present invention;

[0023] Figure 2 This is a schematic diagram of the connection structure between the ceramic tile body and the mounting groove of this utility model;

[0024] Figure 3 This is a schematic diagram of the structure of the friction block after separation according to this utility model;

[0025] Figure 4 This is a schematic diagram of the structure of the connecting plate after it has been moved according to this utility model.

[0026] Figure 5 This is a schematic diagram of the connection structure between the connecting plate and the tile body of this utility model;

[0027] Figure 6 This utility model Figure 5 Enlarged structural diagram at point A in the middle.

[0028] In the diagram: 1. Tile body; 2. Mounting groove; 3. Connecting plate; 4. Friction block; 5. Bolt; 6. Pin; 7. Self-tapping pin; 8. Locking block; 9. Locking groove; 10. Spring. Detailed Implementation

[0029] 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.

[0030] Example 1: A bathroom anti-slip tile solves the problem that existing anti-slip components have nano-level indentations, which may allow water to enter and prevent the soles of the feet from acting as suction cups, resulting in poor anti-slip performance. The anti-slip performance is improved by using friction blocks 4. The following is disclosed:

[0031] The bottom of the tile body 1 is provided with an installation groove 2, and the bottom of the installation groove 2 is in contact with the ground sand and gravel; the top of the tile body 1 is attached with a connecting plate 3, and the top of the connecting plate 3 is attached with a friction block 4, which is made of rubber material; the connecting plate 3 is provided with staggered drainage grooves, and the connecting plate 3 is made of plastic material.

[0032] refer to Figures 1 to 6 The installation groove 2 allows it to fit with the sand and gravel laid on the ground, enabling the tile body 1 to obtain greater friction with the ground, thus facilitating the stability of the tile body 1 installation. During showering, water will fall into the interior of the connecting plate 3 and flow out through the groove inside the connecting plate 3, thereby preventing water from being squeezed. This allows the friction block 4 to remain continuously exposed outside the water, and the user's feet will directly contact the friction block 4, thus obtaining greater friction through the friction block 4, thereby improving the safety of showering and preventing falls.

[0033] Example 2: A bathroom anti-slip tile solves the problem in Example 1 where the anti-slip performance of the friction block 4 decreases after wear. The friction block 4 can be replaced individually using bolts 5, thus preventing a decrease in anti-slip performance. The following is disclosed:

[0034] A bolt 5 is connected through the middle of the friction block 4, and the bottom of the bolt 5 extends into the interior of the connecting plate 3 to form a threaded connection mechanism.

[0035] refer to Figure 1 , Figures 3 to 6 After the friction block 4 wears out, the bolt 5 can be rotated to disengage from the inside of the connecting plate 3, thus allowing the friction block 4 to be disassembled and replaced separately. This avoids the decrease in anti-slip performance caused by severe wear of the friction block 4. Furthermore, replacing the friction block 4 can reduce the cost of using the tile body 1 and extend its service life.

[0036] Example 3: A bathroom anti-slip tile solves the problem of the connecting plate 3 in Example 1 being difficult to clean due to dirt adsorption. By moving the locking block 8, the connecting plate 3 can be disassembled, thus facilitating subsequent cleaning. The following is disclosed:

[0037] The four ends of the tile body 1 are fixed with self-tapping pins 7, and the self-tapping pins 7 are slidably connected with pins 6 inside. The top of the pins 6 is fixed to the bottom of the connecting plate 3. The bottom end of the pins 6 is slidably connected with a locking block 8, and the outer end of the locking block 8 is semi-circular. The outer end of the locking block 8 extends into the inside of the slot 9 to form a locking mechanism. The slot 9 is opened inside the self-tapping pins 7. The arc-shaped position of the outer end of the locking block 8 fits against the edge of the inner opening of the slot 9. The locking block 8 and the slot 9 form a fitting mechanism. The inner end of the locking block 8 is connected with a spring 10, and the inner end of the spring 10 is connected to the inside of the pins 6 to form a limiting mechanism.

[0038] refer to Figures 4 to 6 The self-tapping pin 7 is fixed inside the tile body 1 to prevent wear on the tile body 1. When dirt is adsorbed inside the connecting plate 3, pulling the connecting plate 3 causes the pin 6 to move, allowing the pin 6 to slide inside the self-tapping pin 7. The movement of the pin 6 causes the locking block 8 to move, which in turn presses against the slot 9, causing the locking block 8 to slide into the pin 6. The movement of the locking block 8 also presses against the spring 10, causing the spring 10 to compress and disengage from the slot 9. This separates the connecting plate 3 from the tile body 1, making it easier to clean the dirt adsorbed inside the connecting plate 3. After cleaning, the above operation is reversed, and the spring 10 pushes the locking block 8 into the slot 9 to form a locking mechanism, thereby improving the stability of the installation of the connecting plate 3 and the tile body 1.

[0039] Working principle: When using this type of bathroom anti-slip tile, first, refer to... Figures 1 to 6 The installation groove 2 can be attached to the sand and gravel laid on the ground, so that the tile body 1 can obtain greater friction with the ground. When showering, water will fall into the interior of the connecting plate 3 and flow out through the groove in the connecting plate 3, thus avoiding water squeezing. The user's feet will directly contact the friction block 4, thus obtaining greater friction through the friction block 4, thereby improving the safety of showering and preventing falls.

[0040] refer to Figure 1 , Figures 3 to 6 After the friction block 4 wears out, the bolt 5 can be rotated to disengage from the inside of the connecting plate 3, thus avoiding the decrease in anti-slip performance caused by severe wear of the friction block 4. Furthermore, replacing the friction block 4 can reduce the cost of using the tile body 1.

[0041] refer to Figures 4 to 6 The self-tapping pin 7 is fixed inside the tile body 1 to prevent wear on the tile body 1. When dirt is adsorbed inside the connecting plate 3, the connecting plate 3 can drive the pin 6 to move. The movement of the pin 6 will drive the locking block 8 to move, which will press the locking groove 9. The movement of the locking block 8 will press the spring 10, thus causing the locking block 8 to disengage from the locking groove 9. This makes it easier to clean the dirt adsorbed inside the connecting plate 3. After cleaning, the above operation is reversed, and the spring 10 pushes the locking block 8 into the locking groove 9 to form a locking mechanism, thereby improving the stability of the installation of the connecting plate 3 and the tile body 1.

[0042] The contents not described in detail in this specification are existing technologies known to those skilled in the art.

[0043] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A bathroom anti-slip tile, comprising a tile body (1), wherein the bottom of the tile body (1) is provided with an installation groove (2), and the bottom of the installation groove (2) is in contact with the ground sand and gravel; characterized in that A connecting plate (3) is attached to the top of the ceramic tile body (1), and a friction block (4) is attached to the top of the connecting plate (3). The friction block (4) is made of rubber material, and a bolt (5) is connected through the middle of the friction block (4). The bottom of the bolt (5) extends into the interior of the connecting plate (3) to form a threaded connection mechanism.

2. A bathroom slip-resistant tile according to claim 1, wherein: The connecting plate (3) is provided with staggered drainage grooves, and the connecting plate (3) is made of plastic sheet material.

3. The bathroom slip-resistant tile of claim 1, wherein: The four ends of the tile body (1) are fixed with self-tapping pins (7), and the self-tapping pins (7) are slidably connected with pins (6), and the top of the pins (6) is fixed to the bottom of the connecting plate (3).

4. A slip-resistant tile for a bathroom according to claim 3, wherein: The bottom end of the pin (6) is slidably connected to a locking block (8), and the outer end of the locking block (8) is set in a semi-circular shape.

5. A bathroom slip-resistant tile according to claim 4, wherein: The outer end of the card block (8) extends into the interior of the card slot (9) to form a locking mechanism, and the card slot (9) is opened inside the self-tapping pin (7).

6. A bathroom slip-resistant tile according to claim 5, wherein: The outer arc-shaped position of the card block (8) fits against the inner opening edge of the card slot (9), and the card block (8) and the card slot (9) form a fitting mechanism.

7. A bathroom slip-resistant tile according to claim 4, wherein: The inner end of the locking block (8) is connected to a spring (10), and the inner end of the spring (10) is connected inside the pin (6) to form a limiting mechanism.