Heating ceramic tile

By incorporating baffles, sealing strips, and limiting blocks into the heated ceramic tile design, the problem of inconvenient circuit connection during installation of traditional heated ceramic tiles is solved. This achieves flexible circuit connection and an improved installation groove structure, thereby increasing installation efficiency and extending the lifespan of the tiles.

CN223622985UActive Publication Date: 2025-12-02HUBEI YINGYI BUILDING MATERIALS CO LTD
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Patent Information

Application Number
CN202423298474.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-12-02
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

Traditional heated ceramic tiles are prone to unevenness or hollow spots during installation due to the angle of the heating components, which makes it difficult to connect and connect the circuit.

Method used

The design incorporates baffles and sealing strips. The heating wire passes through the wire holes from any of the four corners of the insulation pad. The limiting blocks and thermal pads provide precise installation positions. The sealing strips adopt an L-shaped structure to ensure airtightness. Materials such as polystyrene foam board and stainless steel are selected to improve thermal insulation and stability.

Benefits of technology

It enables flexible arrangement and precise installation of heating wires, improves installation efficiency and tile lifespan, enhances sealing and waterproof performance, and ensures heating stability and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of heating ceramic tiles, in particular to a heating ceramic tile which comprises a ceramic tile body, a heating wire is fixedly installed on the ceramic tile body, barrier strips are fixedly installed on the ceramic tile body in a rectangular array mode, and a heat insulation pad is attached to the ceramic tile body through the barrier strips. Heat conduction pads are fixedly installed on the portions, on the inner sides of the barrier strips, of the ceramic tile body, the heat conduction pads are made of polystyrene foam plates, threading holes are formed in the four corners of each heat insulation pad according to needs, sealing strips are fixedly installed on the opposite sides of the adjacent barrier strips, and the sealing strips are made of soft rubber materials. A reserved groove is formed in the sealing strip. The heating ceramic tile has the advantages of flexible circuit connection design and improved mounting groove structure, and solves the problem of inconvenient butt joint of internal heating components due to the angle problem when the traditional heating ceramic tile is mounted.
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Description

Technical Field

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

[0002] Heated floor tiles are a new type of floor decoration material that combines the aesthetics and practicality of traditional tiles with the function of electric or water heating. These tiles have embedded heating elements that generate heat when electricity or hot water is applied, thus achieving uniform heating of the floor. Heated floor tiles not only provide a comfortable indoor temperature but are also energy-saving, environmentally friendly, and easy to install and maintain, making them suitable for floor heating in homes, offices, and other locations.

[0003] Extensive searches revealed that CN206973680U discloses a heating ceramic tile, comprising a body and a ceramic tile body. The center of the four sides of the body is recessed inward, forming positioning protrusions at both ends of the four sides. The reverse side of the body is provided with a reciprocating mounting groove, in which a heating wire assembly is provided. The reverse side of the body is glued to the ceramic tile body, and the front side of the body is uneven.

[0004] In existing technologies, when laying tiles, electrical connections are required between the tiles. However, the heating elements installed in the pre-set mounting grooves can only be connected at fixed angles, which restricts the connection process. For example, when connecting the circuits in corner tiles, adjacent mounting grooves cannot be aligned, resulting in the heating element's connection point not being located within the mounting groove. This leads to reduced flatness or hollow areas after the tiles are laid. Therefore, a heated tile is needed to solve these problems. Utility Model Content

[0005] The purpose of this utility model is to provide a heating tile with the advantages of flexible circuit connection design and improved installation groove structure, which solves the problem of inconvenient docking of internal heating components due to angle issues during the installation of traditional heating tiles.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a heating ceramic tile, comprising a ceramic tile body, a heating wire fixedly installed on the ceramic tile body, baffles fixedly installed in a rectangular array on the ceramic tile body, and a sealing strip fixedly installed on the opposite side of adjacent baffles, the sealing strip being designed with soft rubber material and having a reserved groove.

[0007] Preferably, a heat insulation pad is attached to the tile body via a baffle strip, and a heat-conducting pad is fixedly installed on the tile body inside the baffle strip.

[0008] Preferably, the heat insulation pad is made of polystyrene foam board, and wire holes are provided at the four corners of the heat insulation pad as needed. One end of the heating wire passes through the wire hole and the contact surface is sealed. In this design, the heat insulation pad is made of polystyrene foam board, which has good heat insulation performance, can effectively prevent heat from being conducted downwards, maintain a constant temperature on the surface of the tile, and reduce energy loss.

[0009] The wire-passing holes in the design allow the heating wire to pass through any of the four corners of the heat insulation pad. This design makes the arrangement of the heating wire more flexible and can be adjusted according to actual needs. At the same time, it ensures that the contact surface is sealed to prevent moisture and impurities from entering, thereby improving the safety and service life of the tile.

[0010] Preferably, the thermal pad has pre-drilled holes arranged in a rectangular array, with limiting blocks embedded in these holes. The heating wire is secured to the side of the limiting block facing away from the thermal pad. The pre-drilled holes and the embedded limiting blocks provide a precise installation position, ensuring the heating wire is fixed in the correct location. This design helps improve heating efficiency and uniformity.

[0011] The design of the heating wire being secured in the limiting block prevents the heating wire from shifting during heating, ensuring the stability and safety of the heating process.

[0012] Preferably, the limiting block is made of stainless steel, and a groove is provided on the side of the limiting block opposite to the tile body. The size of the groove matches the cross-sectional size of the heating wire. The use of stainless steel for the limiting block is corrosion-resistant and high-temperature resistant, ensuring long-term stable fixation of the heating wire and extending the service life of the tile.

[0013] The slot on the limiting block matches the cross-sectional dimensions of the heating wire. This precise design ensures a tight fit between the heating wire and the limiting block, avoiding safety hazards caused by a loose heating wire.

[0014] Preferably, the heating wire is made of pure copper. Both ends of the heating wire inside the baffle are not in contact with the limiting block, and the side of the heating wire away from the heat insulation pad is flush with the side of the baffle away from the ceramic tile body. The use of pure copper for the heating wire, with its excellent electrical and thermal conductivity, allows for rapid transfer of electrical energy and conversion into heat energy, thus improving heating efficiency.

[0015] The two ends of the heating wire do not contact the limiting block. This design allows for easy adjustment of the position of the two ends of the heating wire according to the actual splicing situation. At the same time, the design of the heating wire being flush with the baffle strip makes the tile surface smoother and does not affect the aesthetics and use of the tile.

[0016] Preferably, the retaining strip is adhesively installed on the tile body. The retaining strip is made of PVC material, and its thickness matches that of the sealing strip. The use of PVC material for the retaining strip is advantageous because PVC is lightweight, corrosion-resistant, and easy to process, making installation simpler and reducing the overall weight of the tile.

[0017] The thickness of the retaining strip and the sealing strip are matched, which makes the overall structure of the tile more compact and improves the tile's sealing and waterproof performance.

[0018] Preferably, the sealing strip adopts an L-shaped structure design, and the sealing strip is glued to the heat insulation pad. The L-shaped design of the sealing strip allows for better cooperation with the heat insulation pad, providing a better sealing effect, preventing moisture and impurities from entering the tile interior, and protecting the internal structure of the tile from damage.

[0019] The sealing strip and the heat insulation pad are glued together. This installation method is simple and quick, and can ensure a tight bond between the sealing strip and the heat insulation pad, enhancing the overall stability and durability of the tiles.

[0020] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0021] In this invention, the heating wire passes through any of the four corners of the heat insulation pad via threading holes. This design allows for adjustments to the arrangement of the heating wire according to actual needs, improving installation flexibility. The design of the heating wire being secured to the limiting block ensures that the heating wire will not shift during heating, guaranteeing heating stability and safety. A rectangular array of baffles is fixedly installed on the tile body, with sealing strips fixedly installed on opposite sides of adjacent baffles. This design provides a structured installation groove, making the installation of the heating wire more orderly and precise. A pre-drilled groove is provided on the sealing strip for subsequent installation of the heating wire, providing a precise installation position and helping to improve heating efficiency and uniformity. The sealing strip adopts an L-shaped structure design, which better matches the heat insulation pad, providing a better sealing effect and solving the inconvenience of docking the heating components due to angle issues. The matching thickness of the baffles and sealing strips makes the overall structure of the tile more compact, improving the tile's sealing and waterproof performance, and also helping to solve the angle problem when docking the heating components. In summary, this design of heated ceramic tiles, through structural optimization, material selection, and detailed design, achieves flexible circuit connections and an improved mounting groove structure, effectively solving the angle alignment problem during the installation of traditional heated ceramic tiles, and improving installation efficiency and the lifespan of the tiles. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the main structure of this utility model;

[0023] Figure 2 This is a schematic diagram of the thermal pad installation structure of this utility model;

[0024] Figure 3 This is a schematic diagram of the baffle installation structure of this utility model;

[0025] Figure 4 This is a schematic diagram of the heat insulation pad structure of this utility model.

[0026] In the diagram: 1. Tile body; 11. Retaining strip; 12. Sealing strip; 121. Reserved groove; 2. Heat insulation pad; 21. Wire hole; 3. Heating wire; 4. Heat conducting pad; 41. Reserved hole; 42. Limiting block. Detailed Implementation

[0027] 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.

[0028] Example 1

[0029] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, one embodiment of this utility model is a heating ceramic tile, including a ceramic tile body 1, a heating wire 3 fixedly installed on the ceramic tile body 1, and baffles 11 fixedly installed in a rectangular array on the ceramic tile body 1. A sealing strip 12 is fixedly installed on the opposite side of adjacent baffles 11. The sealing strip 12 is made of soft rubber material and has a reserved groove 121.

[0030] Specifically, the heating wire 3 passes through the wire hole 21 at any of the four corners of the heat insulation pad 2. This design allows the arrangement of the heating wire 3 to be adjusted according to actual needs, improving installation flexibility. The design of the heating wire 3 being secured to the limiting block 42 ensures that the heating wire 3 will not shift during heating, guaranteeing heating stability and safety. A rectangular array of baffles 11 are fixedly installed on the ceramic tile body 1, and sealing strips 12 are fixedly installed on opposite sides of adjacent baffles 11. This design provides a structured installation groove, making the installation of the heating wire 3 more orderly and precise. A pre-drilled groove 121 is provided on the sealing strip 12 for subsequent installation of the heating wire 3, providing a precise installation position and helping to improve heating efficiency and uniformity. The sealing strip 12 adopts an L-shaped structure design, which better matches the heat insulation pad 2, providing a better sealing effect and also solving the inconvenience of docking the heating components due to angle issues. The matching thickness of the retaining strip 11 and the sealing strip 12 makes the overall structure of the tile more compact, improving its sealing and waterproof performance. It also helps solve the angle problem when connecting the heating components. In summary, this heating tile design, through structural optimization, material selection, and detailed design, achieves flexible circuit connections and an improved mounting groove structure, effectively solving the angle connection problem during the installation of traditional heating tiles, thus improving installation efficiency and the tile's lifespan.

[0031] Example 2

[0032] To facilitate the positioning and installation of the heating wire, such as Figure 2 and Figure 3 As shown, in this embodiment, a heat insulation pad 2 is attached to the tile body 1 via a baffle 11, and a heat conduction pad 4 is fixedly installed on the tile body 1 inside the baffle 11.

[0033] Furthermore, the heat insulation pad 2 is designed with polystyrene foam board material. Wire holes 21 are provided at the four corners of the heat insulation pad 2 as needed. One end of the heating wire 3 passes through the wire hole 21 and the contact surface is sealed. The heat insulation pad 2 uses polystyrene foam board material, which has excellent heat insulation properties, effectively preventing heat from being conducted downwards, maintaining a constant temperature on the tile surface, and reducing energy loss.

[0034] The wire hole 21 in the design allows the heating wire 3 to pass through any of the four corners of the heat insulation pad 2. This design makes the arrangement of the heating wire 3 more flexible and can be adjusted according to actual needs. At the same time, it ensures that the contact surface is sealed to prevent moisture and impurities from entering, thereby improving the safety and service life of the tile.

[0035] Furthermore, the thermal pad 4 has a rectangular array of pre-drilled holes 41, into which limit blocks 42 are embedded. The heating wire 3 is secured to the side of the limit block 42 facing away from the thermal pad 4. The pre-drilled holes 41 and the embedded limit blocks 42 in the design provide a precise installation position, ensuring that the heating wire 3 is fixed in the correct position. This design helps to improve heating efficiency and uniformity.

[0036] The design of the heating wire 3 being secured in the limiting block 42 ensures that the heating wire 3 will not shift when heating, thus guaranteeing the stability and safety of heating.

[0037] Furthermore, the limiting block 42 is made of stainless steel, and a slot is provided on the side of the limiting block 42 opposite to the tile body 1. The size of the slot matches the cross-sectional size of the heating wire 3. The limiting block 42 is made of stainless steel, which is corrosion-resistant and high-temperature resistant, ensuring long-term stable fixation of the heating wire 3 and extending the service life of the tile.

[0038] The slot on the limiting block 42 matches the cross-sectional dimensions of the heating wire 3. This precise design ensures a tight fit between the heating wire 3 and the limiting block 42, avoiding safety hazards caused by the loosening of the heating wire 3.

[0039] Example 3

[0040] To facilitate adjustment of the position of both ends of the heating wire according to the angle of the tile splicing, such as Figure 2 , Figure 3 and Figure 4 As shown, in this embodiment, the heating wire 3 is made of pure copper. Both ends of the heating wire 3 inside the baffle 11 do not contact the limiting block 42. The side of the heating wire 3 facing away from the heat insulation pad 2 is flush with the side of the baffle 11 facing away from the tile body 1. The heating wire 3 is made of pure copper, which has excellent electrical and thermal conductivity, enabling it to quickly transfer electrical energy and convert it into heat energy, thus improving heating efficiency. The fact that both ends of the heating wire 3 do not contact the limiting block 42 allows for easy adjustment of the position of the heating wire 3 according to the actual splicing situation. Simultaneously, the flush design between the heating wire 3 and the baffle 11 makes the tile surface smoother, without affecting the tile's aesthetics or usability.

[0041] Furthermore, the retaining strip 11 is glued to the tile body 1. The retaining strip 11 is made of PVC material, and its thickness matches that of the sealing strip 12. The retaining strip 11 is made of PVC material, which is lightweight, corrosion-resistant, and easy to process, making the installation of the retaining strip 11 easier and reducing the overall weight of the tile.

[0042] The thickness of the retaining strip 11 is matched with that of the sealing strip 12. This design makes the overall structure of the tile more compact and improves the tile's sealing and waterproof performance.

[0043] Furthermore, the sealing strip 12 adopts an L-shaped structure design, and is glued to the heat insulation pad 2. The L-shaped design of the sealing strip 12 allows for better cooperation with the heat insulation pad 2, providing a better sealing effect, preventing moisture and impurities from entering the tile interior, and protecting the internal structure of the tile from damage.

[0044] The sealing strip 12 is glued to the heat insulation pad 2. This installation method is simple and quick, and can ensure a tight bond between the sealing strip 12 and the heat insulation pad 2, thereby enhancing the overall stability and durability of the tile.

[0045] When using this invention, the ground must first be cleaned and leveled to ensure there are no debris or uneven areas during the laying of the heated tiles; this is a prerequisite for construction. Next, the tile arrangement is planned according to the room dimensions and tile specifications, and the required number of tiles is calculated. Then, the retaining strips 11 are installed on the tile body 1. The retaining strips 11 are fixed to the tile in a rectangular array, made of PVC material, and their thickness matches that of the soft rubber sealing strip 12. On the opposite side of the retaining strips 11, an L-shaped sealing strip 12 is installed. The sealing strip 12 has a pre-drilled groove 121 for subsequent installation of the heating wire 3.

[0046] Next, the heating wire 3 is installed. The heating wire 3 is made of pure copper and is fixed to the heat-conducting pad 4 by a limiting block 42 made of stainless steel. The limiting block 42 has a groove on its side facing away from the tile body 1 that matches the cross-sectional dimensions of the heating wire 3. The two ends of the heating wire 3 need to be positioned and fixed by the sealing strip 12, ensuring they do not contact the limiting block 42, and one side of the heating wire 3 is flush with one side of the baffle 11. After the heating wire is installed, the heat insulation pad 2 is attached. The heat insulation pad 2 is made of polystyrene foam board, and through holes 21 are made at its four corners according to the actual installation position of the heating wire 3, allowing the heating wire 3 to pass through and ensuring a sealed contact surface.

[0047] After the heat insulation pad 2 is installed, a final inspection and adjustment are performed. Check that the heating wire 3 of each tile is securely connected, and adjust the temperature controller to ensure each heated tile functions properly. Finally, conduct a final check for flatness and sealing, ensuring there are no hollow areas and that all sealing strips 12 and heat insulation pads 2 are correctly installed to guarantee the tile's heat insulation and waterproofing performance. The installation of the heated tiles is now complete and the tiles are ready for use.

[0048] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A heating ceramic tile, comprising a tile body (1), wherein a heating wire (3) is fixedly mounted on the tile body (1), characterized in that: The ceramic tile body (1) is fixedly installed with baffles (11) in a rectangular array. Seal strips (12) are fixedly installed on the opposite side of adjacent baffles (11). The seal strips (12) are made of soft rubber material and have a reserved groove (121).

2. The heating ceramic tile according to claim 1, characterized in that, A heat insulation pad (2) is attached to the ceramic tile body (1) via a baffle (11), and a heat conduction pad (4) is fixedly installed on the ceramic tile body (1) inside the baffle (11).

3. A heating ceramic tile according to claim 2, characterized in that, The heat insulation pad (2) is made of polystyrene foam board. The heat insulation pad (2) has wire holes (21) at the four corners as needed. One end of the heating wire (3) passes through the wire hole (21) and the contact surface is sealed.

4. A heating ceramic tile according to claim 2, characterized in that, The heat-conducting pad (4) has a rectangular array of reserved holes (41), and a limiting block (42) is embedded in the reserved hole (41). The heating wire (3) is clamped on the side of the limiting block (42) away from the heat-conducting pad (4).

5. A heating ceramic tile according to claim 4, characterized in that, The limiting block (42) is made of stainless steel. The limiting block (42) has a slot on the side away from the ceramic tile body (1). The size of the slot matches the cross-sectional size of the heating wire (3).

6. A heating ceramic tile according to claim 1, characterized in that, The heating wire (3) is made of pure copper. The two ends of the heating wire (3) inside the baffle (11) do not contact the limiting block (42). The side of the heating wire (3) away from the heat insulation pad (2) is flush with the side of the baffle (11) away from the ceramic tile body (1).

7. A heating ceramic tile according to claim 1, characterized in that, The baffle (11) is glued to the ceramic tile body (1). The baffle (11) is made of PVC material and the thickness of the baffle (11) matches that of the sealing strip (12).

8. A heating ceramic tile according to claim 1, characterized in that, The sealing strip (12) adopts an L-shaped structure design and is glued to the heat insulation pad (2).

Citation Information

Patent Citations

  • Heating tile

    CN206973680U