Ceramic tile with anti-static effect
By adhering conductive edge strips to the side walls of the tiles and setting up a conductive structure on the bottom, an overall conductive network is formed, which solves the problem of poor contact of the conductive layer, achieves stable conductivity of the anti-static tiles and improves the bearing capacity of the floor.
Patent Information
- Application Number
- CN202422914965.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-28
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-11-28
AI Technical Summary
Existing anti-static tiles are prone to poor contact at the connection between the conductive layer and the wire, resulting in anti-static failure.
Conductive edge strips are adhered to the four side walls of the tile body, and the tile body is fixed to the ground through a conductive adhesive layer. A conductive structure is set at the bottom, and the conductive adhesive layer and the conductive structure are used to form an overall conductive network. The conductive plate and foamed cement are combined to improve the connection stability.
It ensures that static electricity can be effectively discharged, avoiding anti-static failure caused by local poor contact, and at the same time improves the load-bearing capacity and anti-slip performance of the floor.
Smart Images

Figure CN223482168U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of antistatic ceramic tile technology, specifically to a ceramic tile with antistatic effect. Background Technology
[0002] Antistatic ceramic tiles are a new type of antistatic material that overcomes the problems of current antistatic materials such as melamine, PVC antistatic flooring, and antistatic rubber sheets, which are prone to aging, lack of wear resistance, easy contamination, and have poor durability and fire resistance. Overcoming the shortcomings of these antistatic materials while incorporating the advantages of ceramic tiles, they are aesthetically pleasing, durable, fireproof, slip-resistant, pressure-resistant, wear-resistant, corrosion-resistant, stain-resistant, waterproof, impermeable, have low radiation, are environmentally friendly, hygienic, and easy to install. They are a functional antistatic ceramic tile with permanent antistatic properties and a high-end artistic decorative effect.
[0003] Antistatic ceramic tiles achieve their properties primarily through two methods: first, by adding conductive materials to the glaze, making the entire tile surface conductive; second, by placing a conductive layer on the back of the tile, connected to the ground via an electrical wire, thus dissipating static electricity. However, existing antistatic ceramic tiles, when having a conductive layer on the back, cannot guarantee consistently good contact between the conductive layer and the electrical wire on every tile. When poor contact occurs, the antistatic effect of that tile fails. Therefore, a new type of ceramic tile with antistatic properties has been proposed. Utility Model Content
[0004] The purpose of this invention is to provide a ceramic tile with anti-static properties to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a ceramic tile with anti-static effect, comprising a ceramic tile body, conductive edge strips respectively adhered to the four side walls of the ceramic tile body, the bottom of the ceramic tile body being adhered to the ground by a conductive adhesive layer, and a conductive structure also being provided at the bottom of the ceramic tile body, the ceramic tile body and the conductive structure being fixedly connected by a conductive adhesive layer.
[0006] As a further preferred embodiment of this technical solution, the ceramic tile body is composed of a ceramic tile layer and a conductive plate, with the ceramic tile layer located above the conductive plate.
[0007] As a further preferred embodiment of this technical solution, the conductive plate is composed of an upper steel plate, foamed cement, and a lower steel plate, with the foamed cement filling the space between the upper and lower steel plates.
[0008] As a further preferred embodiment of this technical solution, the conductive structure is composed of transverse conductive copper foil and longitudinal conductive copper foil, wherein the transverse conductive copper foil is arranged perpendicularly to the longitudinal conductive copper foil, and the plurality of transverse conductive copper foils and the plurality of longitudinal conductive copper foils are distributed in a grid pattern.
[0009] As a further preferred embodiment of this technical solution, the ceramic tile body is located above the intersection of the transverse conductive copper foil and the longitudinal conductive copper foil.
[0010] As a further preferred embodiment of this technical solution, the upper end of the tile layer is provided with anti-slip wax, which is fixed to the upper surface of the tile layer by brushing.
[0011] As a further preferred embodiment of this technical solution, the gap between two adjacent tile bodies is filled with conductive adhesive.
[0012] This utility model provides a ceramic tile with anti-static effect, which has the following beneficial effects:
[0013] This invention, through the arrangement of a tile layer, a conductive plate, a conductive adhesive layer, and a conductive structure, ensures that static electricity on the tile layer is transmitted to the conductive structure via the conductive plate and conductive adhesive layer, and then discharged through the conductive structure. The foamed cement filling the conductive plate greatly improves the load-bearing capacity of the floor. The conductive strips arranged around the tile body electrically connect the upper and lower steel plates in the conductive plate. At the same time, the conductive plates of two adjacent tile bodies can be connected together to form an integrated conductive mesh, preventing poor contact between the conductive plate and the conductive structure in a localized area, which could lead to anti-static failure at that location. Attached Figure Description
[0014] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0015] Figure 2 This is a split diagram of a portion of the structure of this utility model;
[0016] Figure 3 This is a schematic diagram showing the disassembled body of the ceramic tile in this utility model;
[0017] Figure 4 This is a schematic diagram of the conductive structure in this utility model;
[0018] In the diagram: 1. Tile body; 2. Conductive structure; 3. Tile layer; 4. Upper steel plate; 5. Foamed cement; 6. Lower steel plate; 7. Conductive adhesive layer; 8. Conductive edge strip; 9. Horizontal conductive copper foil; 10. Vertical conductive copper foil; 11. Conductive plate. Detailed Implementation
[0019] The technical solutions in the embodiments of the present invention will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present invention.
[0020] The utility model provides a technical solution: Figures 1 to 4As shown, in this embodiment, a ceramic tile with antistatic effect includes a ceramic tile body 1. Conductive edge strips 8 are respectively adhered to the four side walls of the ceramic tile body 1. The bottom of the ceramic tile body 1 is adhered to the ground by a conductive adhesive layer 7. A conductive structure 2 is also provided at the bottom of the ceramic tile body 1. The ceramic tile body 1 and the conductive structure 2 are fixedly connected by the conductive adhesive layer 7. The ceramic tile body 1 is composed of a ceramic tile layer 3 and a conductive plate 11, with the ceramic tile layer 3 located above the conductive plate 11.
[0021] The conductive strip 8 can electrically connect the upper steel plate 4 and the lower steel plate 6 in the conductive plate 11. At the same time, the conductive plates 11 of two adjacent ceramic tile bodies 1 can be connected together to form an integral conductive mesh, avoiding poor contact between the conductive plate 11 of a local ceramic tile body 1 and the conductive structure 2, which would cause the anti-static function to fail at that location.
[0022] The conductive plate 11 is composed of an upper steel plate 4, foamed cement 5 and a lower steel plate 6, with the foamed cement 5 filling the space between the upper steel plate 4 and the lower steel plate 6.
[0023] The filling of foamed cement 5 directly affects the strength of the floor and can greatly improve the load-bearing capacity of the floor.
[0024] The conductive structure 2 consists of a horizontal conductive copper foil 9 and a vertical conductive copper foil 10. The horizontal conductive copper foil 9 is arranged perpendicularly to the vertical conductive copper foil 10. The multiple horizontal conductive copper foils 9 and the multiple vertical conductive copper foils 10 are distributed in a grid pattern. The ceramic tile body 1 is located above the intersection of the horizontal conductive copper foil 9 and the vertical conductive copper foil 10.
[0025] The set grid-like conductive structure 2 can ensure that static electricity on all the ceramic tile body 1 can be discharged through the conductive structure 2.
[0026] The upper part of the tile layer 3 is provided with anti-slip wax, which is fixed to the upper surface of the tile layer 3 by brushing.
[0027] The anti-slip wax applied can improve the anti-slip effect of the tile body 1, preventing people from slipping and falling.
[0028] The gap between two adjacent tile bodies 1 is filled with conductive adhesive.
[0029] This configuration can improve the strength of the connection between the tile bodies 1, and at the same time make the conductive mesh formed by the conductive plates 11 of multiple tile bodies 1 tighter.
[0030] This utility model provides a ceramic tile with anti-static effect, and its working principle is as follows:
[0031] By using the tile layer 3, conductive plate 11, conductive adhesive layer 7, and conductive structure 2, static electricity on the tile layer 3 can be transferred to the conductive structure 2 through the conductive plate 11 and conductive adhesive layer 7, and then discharged through the conductive structure 2. The foamed cement 5 filled inside the conductive plate 11 can greatly improve the load-bearing capacity of the floor. By setting conductive edge strips 8 around the tile body 1, the upper steel plate 4 and lower steel plate 6 in the conductive plate 11 can be electrically connected. At the same time, the conductive plates 11 of two adjacent tile bodies 1 can be connected together to form an integral conductive network, avoiding poor contact between the conductive plate 11 and the conductive structure 2 in some areas of the tile body 1, which would cause the anti-static function to fail at that location.
[0032] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A ceramic tile with antistatic effect, comprising a tile body (1), characterized in that: Conductive edge strips (8) are respectively attached to the four side walls of the tile body (1). The bottom of the tile body (1) is attached to the ground by a conductive adhesive layer (7). A conductive structure (2) is also provided at the bottom of the tile body (1). The tile body (1) and the conductive structure (2) are fixedly connected by the conductive adhesive layer (7).
2. The ceramic tile with antistatic effect according to claim 1, characterized in that: The ceramic tile body (1) is composed of a ceramic tile layer (3) and a conductive plate (11), with the ceramic tile layer (3) located above the conductive plate (11).
3. A ceramic tile with antistatic effect according to claim 2, characterized in that: The conductive plate (11) is composed of an upper steel plate (4), foamed cement (5) and a lower steel plate (6), with the foamed cement (5) filling between the upper steel plate (4) and the lower steel plate (6).
4. A ceramic tile with antistatic effect according to claim 1, characterized in that: The conductive structure (2) is composed of a transverse conductive copper foil (9) and a longitudinal conductive copper foil (10). The transverse conductive copper foil (9) is arranged perpendicularly to the longitudinal conductive copper foil (10), and the multiple transverse conductive copper foils (9) and the multiple longitudinal conductive copper foils (10) are distributed in a grid pattern.
5. A ceramic tile with antistatic effect according to claim 4, characterized in that: The ceramic tile body (1) is located above the intersection of the transverse conductive copper foil (9) and the longitudinal conductive copper foil (10).
6. A ceramic tile with antistatic effect according to claim 2, characterized in that: The upper end of the tile layer (3) is provided with anti-slip wax, which is fixed to the upper surface of the tile layer (3) by brushing.
7. A ceramic tile with antistatic effect according to claim 1, characterized in that: The gap between two adjacent tile bodies (1) is filled with conductive adhesive.