Thermal insulation wear-resistant ceramic tile

CN224648038UActive Publication Date: 2026-08-18福建省晋江芳政陶瓷有限公司
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Patent Information

Application Number
CN202522003663.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-18
Publication Date
2026-08-18
Estimated Expiration
2035-09-18

AI Technical Summary

Technical Problem

[0005]本实用新型的目的在于提供一种隔热耐磨陶瓷瓷砖,以解决传统陶瓷瓷砖多为刚性结构,表面及边角缺乏有效的防护措施

Benefits of technology

[0014] 1. By installing a frame-shaped elastic pad inside the groove, the frame-shaped elastic pad itself has good buffering performance and can effectively absorb the impact force generated during transportation, building a "protective barrier" for the outside of the tile body, greatly reducing the probability of collision damage to the outside of the tile body, improving the integrity rate of the tile body during transportation, and reducing unnecessary economic losses.

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Abstract

The utility model discloses a kind of heat-insulated wear-resistant ceramic tiles, relate to ceramic tile field, including ceramic tile body, the recess is set in the ceramic tile body outer side all around, four recesses are annular structure, the frame-shaped elastic pad is sleeved outside annular structure, the frame-shaped elastic pad protrudes ceramic tile body outer side setting, the ceramic tile body includes first elastic material layer, base layer, second elastic material layer, aluminium foil material layer and third elastic material layer from bottom to top sequentially set, by frame-shaped elastic pad in recess sleeve, frame-shaped elastic pad itself has good buffering performance, can effectively absorb impact force generated in transportation process, build a "protective barrier" for ceramic tile body outer side, greatly reduce the probability of collision damage of ceramic tile body outer side, improve the intact rate of ceramic tile body transportation, reduce unnecessary economic loss.
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Description

Technical Field

[0001] This utility model relates to the field of ceramic tiles, and in particular to a heat-insulating and wear-resistant ceramic tile. Background Technology

[0002] In the field of architectural decoration, ceramic tiles have long been widely used for floor and wall decoration in various scenarios such as residential homes, commercial spaces, and public spaces due to their durability and ease of cleaning. However, as people's requirements for living comfort, ease of construction, and tile performance continue to increase...

[0003] Traditional ceramic tiles are mostly rigid structures, lacking effective protection for their surfaces and edges. During transportation, tiles are usually stacked, and the bumps caused by vehicle movement and collisions during loading and unloading can easily lead to damage to the edges and corners and scratches on the surface.

[0004] Therefore, it is necessary to propose a heat-insulating and wear-resistant ceramic tile to solve the above problems. Utility Model Content

[0005] The purpose of this invention is to provide a heat-insulating and wear-resistant ceramic tile to address the problem that traditional ceramic tiles are mostly rigid structures with a lack of effective protection for the surface and edges. During transportation, tiles are usually stacked, and the bumps caused by vehicle movement and collisions during loading and unloading easily lead to damage to the edges and corners and scratches on the surface.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a heat-insulating and wear-resistant ceramic tile, comprising a tile body, wherein grooves are provided around the outer perimeter of the tile body, the four grooves forming a ring structure, and a frame-shaped elastic pad is fitted around the outer side of the ring structure, the frame-shaped elastic pad protruding from the outer side of the tile body;

[0007] The ceramic tile body includes, from bottom to top, a first elastic material layer, a base layer, a second elastic material layer, an aluminum foil material layer, and a third elastic material layer. A glaze layer is provided at the top of the third elastic material layer, and a wear-resistant layer is provided at the top of the glaze layer.

[0008] Preferably, the aluminum foil material layer has a cavity inside, the cavity is filled with a heat-absorbing block, and heat dissipation holes are opened on both the left and right side walls of the aluminum foil material layer. The heat dissipation holes horizontally penetrate the side wall of the aluminum foil material layer and communicate with the side wall of the cavity.

[0009] Preferably, both the glaze layer and the wear-resistant layer are adapted to the shape of the third elastic material layer.

[0010] Preferably, the lower surface of the aluminum foil material layer is provided with multiple connecting posts, and the upper surface of the second elastic material layer is provided with multiple slots whose shape and size are adapted to the connecting posts. The connection between the aluminum foil material layer and the second elastic material layer is strengthened by the cooperation of the connecting posts and the slots.

[0011] Preferably, the bottom of the tile body is provided with anti-slip patterns, the anti-slip patterns are wavy, and multiple anti-slip patterns are provided at equal intervals along the length of the tile body.

[0012] Preferably, the lower surface of the wear-resistant layer and the upper surface of the glaze layer are bonded together with epoxy resin adhesive.

[0013] The technical effects and advantages of this utility model are as follows:

[0014] 1. By installing a frame-shaped elastic pad inside the groove, the frame-shaped elastic pad itself has good buffering performance and can effectively absorb the impact force generated during transportation, building a "protective barrier" for the outside of the tile body, greatly reducing the probability of collision damage to the outside of the tile body, improving the integrity rate of the tile body during transportation, and reducing unnecessary economic losses.

[0015] 2. The frame-shaped elastic pads between adjacent tiles automatically maintain a uniform distance, eliminating the need for repeated manual measurements and adjustments. This greatly simplifies the construction process and improves laying efficiency. Simultaneously, the uniform spacing provides excellent conditions for subsequent grout sealing, ensuring even and smooth grout application and enhancing the overall quality of the floor finish.

[0016] 3. When no gap is needed between multiple tile bodies, the frame-shaped elastic pad can be removed from the outside of the tile body, allowing multiple tile bodies to be laid together to meet different construction needs. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the structure of the heat-insulating and wear-resistant ceramic tile of this utility model.

[0018] Figure 2 This is a schematic diagram of the groove structure of this utility model.

[0019] Figure 3 This is a schematic diagram of the anti-slip texture of this utility model.

[0020] Figure 4 This is a schematic diagram of the structure of the ceramic tile body of this utility model.

[0021] Figure 5 This utility model Figure 4 Enlarged diagram of point A in the middle.

[0022] In the diagram: 1. Tile body; 101. First elastic material layer; 102. Base layer; 103. Second elastic material layer; 104. Aluminum foil material layer; 105. Heat-absorbing block; 106. Third elastic material layer; 107. Heat dissipation hole; 2. Frame-shaped elastic pad; 3. Groove; 4. Anti-slip texture. Detailed Implementation

[0023] This utility model provides, for example Figures 1-4 The heat-insulating and wear-resistant ceramic tile shown includes a tile body 1. Grooves 3 are provided around the outer perimeter of the tile body 1. The four grooves 3 form a ring structure. A frame-shaped elastic pad 2 is fitted on the outer side of the ring structure. The frame-shaped elastic pad 2 protrudes from the outer side of the tile body 1.

[0024] By installing a frame-shaped elastic pad 2 inside the groove 3, the frame-shaped elastic pad 2 itself has good buffering performance and can effectively absorb the impact force generated during transportation, thus building a "protective barrier" for the outside of the tile body 1, greatly reducing the probability of collision damage to the outside of the tile body 1, improving the integrity rate of the tile body 1 during transportation, and reducing unnecessary economic losses.

[0025] The frame-shaped elastic pad 2 automatically maintains a uniform distance between adjacent tile bodies 1, eliminating the need for repeated manual measurements and adjustments. This greatly simplifies the construction process and improves laying efficiency. Simultaneously, the uniform spacing provides excellent conditions for subsequent grouting, ensuring even and smooth grout application and enhancing the overall texture of the floor finish.

[0026] When no gap is needed between multiple tile bodies 1, the frame-shaped elastic pad 2 can be removed from the outside of the tile body 1, so that multiple tile bodies 1 can be laid together to meet different construction needs.

[0027] The ceramic tile body 1 includes a first elastic material layer 101, a base layer 102, a second elastic material layer 103, an aluminum foil material layer 104 and a third elastic material layer 106 arranged sequentially from bottom to top. A glaze layer is provided at the top of the third elastic material layer 106, and a wear-resistant layer is provided at the top of the glaze layer.

[0028] The first elastic material layer 101, the second elastic material layer 103, and the third elastic material layer 106 all use modified polyurethane elastomers, the base layer 102 uses a high-density stoneware matrix, and the aluminum foil material layer 104 uses hard aluminum alloy foil with an additional nano-ceramic coating.

[0029] The glaze layer uses a low-melting-point transparent glaze, and the wear-resistant layer uses a nano-grade alumina composite wear-resistant coating.

[0030] The first elastic material layer 101 provides a certain degree of cushioning for the ground. The second elastic material layer 103 and the third elastic material layer 106 are located between the base layer 102 and the aluminum foil material layer 104, and above the aluminum foil material layer 104, respectively. They further enhance the overall elasticity and impact resistance of the tile. When the tile is impacted by external force, these two elastic material layers work together with the first elastic material layer 101 to buffer the impact force in multiple layers, preventing the tile from being directly damaged by force and extending the service life of the tile. In addition, the elastic material layers can also effectively reduce noise generated by the ground. For example, the sound generated by walking or objects falling will be partially absorbed by the elastic material during the propagation process, playing a certain role in sound insulation and creating a quieter and more comfortable indoor environment.

[0031] The aluminum foil material layer 104 has an internal cavity filled with a heat-absorbing block 105. Both the left and right side walls of the aluminum foil material layer 104 have heat dissipation holes 107, which horizontally penetrate the side walls of the aluminum foil material layer 104 and communicate with the side walls of the cavity. The aluminum foil material itself has excellent heat radiation reflection properties, effectively blocking external heat from being transferred into the room through the ceramic tile body 1. Especially in high-temperature environments during summer, it can reduce the amount of outdoor heat entering the room, decrease the frequency of indoor air conditioning use, and achieve the purpose of energy saving and consumption reduction.

[0032] Meanwhile, the heat-absorbing blocks 105 filling the cavity can further absorb the heat conducted from the surface of the tile body 1, preventing heat from quickly penetrating into the room and enhancing the heat insulation effect. In winter, this structure can also block indoor heat loss to a certain extent, playing a role in heat preservation, improving the indoor thermal environment, and enhancing living comfort. When the heat-absorbing blocks 105 absorb a certain amount of heat, the heat can be quickly dissipated to the outside of the tile body 1 through the heat dissipation holes 107, preventing heat from accumulating in the cavity and causing the aluminum foil material layer 104 to overheat, affecting the overall performance and service life of the tile body 1.

[0033] Both the glaze layer and the wear-resistant layer are adapted to the shape of the third elastic material layer 106.

[0034] The lower surface of the aluminum foil material layer 104 is provided with multiple connecting posts, and the upper surface of the second elastic material layer 103 is provided with multiple slots whose shape and size are adapted to the connecting posts. The connection between the aluminum foil material layer 104 and the second elastic material layer 103 is strengthened by the cooperation of the connecting posts and the slots.

[0035] The bottom of the tile body 1 is provided with anti-slip texture 4, which is wavy and has multiple anti-slip textures at equal intervals along the length of the tile body 1.

[0036] The lower surface of the wear-resistant layer is bonded to the upper surface of the glaze layer with epoxy resin adhesive.

Claims

1. A heat-insulating wear-resistant ceramic tile comprising a tile body (1), characterized in that: The outer periphery of the ceramic tile body (1) is provided with grooves (3), the four grooves (3) are in a ring structure, and a frame-shaped elastic pad (2) is fitted on the outside of the ring structure. The frame-shaped elastic pad (2) protrudes from the outside of the ceramic tile body (1). The ceramic tile body (1) includes a first elastic material layer (101), a base layer (102), a second elastic material layer (103), an aluminum foil material layer (104), and a third elastic material layer (106) arranged sequentially from bottom to top. The top of the third elastic material layer (106) is provided with a glaze layer, and the top of the glaze layer is provided with a wear-resistant layer.

2. The heat-insulating and wear-resistant ceramic tile according to claim 1, characterized in that: The aluminum foil material layer (104) has a cavity inside, which is filled with a heat-absorbing block (105). The left and right side walls of the aluminum foil material layer (104) are provided with heat dissipation holes (107). The heat dissipation holes (107) horizontally penetrate the side wall of the aluminum foil material layer (104) and communicate with the side wall of the cavity.

3. The heat-insulating and wear-resistant ceramic tile according to claim 1, characterized in that: Both the glaze layer and the wear-resistant layer are adapted to the shape of the third elastic material layer (106).

4. The heat-insulating and wear-resistant ceramic tile according to claim 1, characterized in that: The lower surface of the aluminum foil material layer (104) is provided with multiple connecting posts, and the upper surface of the second elastic material layer (103) is provided with multiple slots whose shape and size are adapted to the connecting posts. Through the cooperation of the connecting posts and slots, the connection stability between the aluminum foil material layer (104) and the second elastic material layer (103) is enhanced.

5. The heat-insulating and wear-resistant ceramic tile according to claim 1, characterized in that: The bottom of the ceramic tile body (1) is provided with anti-slip texture (4), which is wavy and has multiple anti-slip textures (4) arranged at equal intervals along the length of the ceramic tile body (1).

6. The heat-insulating and wear-resistant ceramic tile according to claim 1, characterized in that: The lower surface of the wear-resistant layer is bonded to the upper surface of the glaze layer with epoxy resin adhesive.