Wind-resistant synthetic resin tile

By introducing positioning plate components, protective sandwich layers, and functional coatings into synthetic resin tiles, the problems of poor wind resistance and lack of fire resistance caused by inaccurate installation are solved, achieving stable installation and high-efficiency fire resistance of the tiles.

CN224187053UActive Publication Date: 2026-05-01QUANZHOU YONGCHUN JIAWEI PLASTIC & PACKING PROD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
QUANZHOU YONGCHUN JIAWEI PLASTIC & PACKING PROD CO LTD
Filing Date
2025-06-27
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Existing synthetic resin tiles lack a precise positioning structure during installation, resulting in insufficient wind resistance and a lack of fire-retardant design, which affects building safety.

Method used

The design employs positioning plate components, protective sandwich layers, and functional coatings, including a wear-resistant resin base layer, glass fiber filling layer, thermoplastic polyurethane layer, carbon fiber filament layer, flame-retardant layer, and fire-retardant coating, to achieve precise tile positioning, enhance structural strength, and improve fire resistance.

Benefits of technology

It improves the wind resistance and fire resistance of the tiles, ensures installation stability and building safety, prevents the spread of flames, and extends service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a wind-resistant synthetic resin tile, which relates to the technical field of tiles, and comprises a tile, the tile comprises a tile single body, the top of the tile single body is fixedly connected with an upper positioning plate assembly, the bottom of the tile single body is provided with a lower positioning opening, and one end of the bottom of the tile single body is fixedly connected with a right positioning plate. A left positioning opening is formed in one end of the top of each tile single body, and a protective sandwich layer is fixedly connected into a cavity of each tile single body through the corresponding opening. The tile monomer comprises a wear-resistant resin base layer, the inner side wall of the wear-resistant resin base layer is fixedly connected with a reinforced protective inner layer, and the wear-resistant resin base layer comprises an ABS (Acrylonitrile Butadiene Styrene) resin layer. According to the tile, the fireproof and flame-retardant functions are achieved on the basis that assembling is convenient and the windproof effect is enhanced through positioning, and therefore the problems that an existing synthetic resin tile is poor in wind resistance due to the fact that installation and positioning are not accurate, and building safety is affected due to the lack of fireproof and flame-retardant design are solved.
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Description

A wind-resistant synthetic resin tile Technical Field

[0001] This utility model relates to the field of tile technology, specifically to a wind-resistant synthetic resin tile. Background Technology

[0002] Synthetic resin roofing tiles are a type of roofing material made primarily from synthetic resins (such as polyvinyl chloride), produced through extrusion or molding. They are lightweight, corrosion-resistant, waterproof, heat-insulating, brightly colored, and have a long service life.

[0003] In terms of installation, most existing synthetic resin roofing tiles lack precise positioning structures. Due to the lack of an effective positioning mechanism, accurate alignment and fixation during installation are difficult to guarantee, resulting in insufficient tightness between tiles. In windy weather, this inaccurate installation leads to gaps and instability, making the tiles highly susceptible to wind damage. This severely compromises wind resistance and may even cause tiles to fall off, damaging buildings and posing a serious threat to pedestrians and property. Furthermore, existing roofing tiles generally lack fire-retardant designs or measures. In the event of a fire, the lack of fire-retardant properties allows the tiles to be easily ignited or rapidly damaged by high temperatures, failing to effectively prevent the spread of fire and significantly reducing the safety of buildings in fires, causing incalculable property damage and the risk of personal injury. Summary of the Invention

[0004] In view of the problems existing in the current wind-resistant synthetic resin tile, this utility model is proposed.

[0005] Therefore, the purpose of this utility model is to provide a wind-resistant synthetic resin tile, which solves the problems of poor wind resistance due to inaccurate installation and positioning of existing synthetic resin tiles, and the lack of fire-retardant design affecting building safety.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A wind-resistant synthetic resin tile includes a tile, wherein the top of the tile unit is fixedly connected to an upper positioning plate assembly, the bottom of the tile unit is provided with a lower positioning port, one bottom end of the tile unit is fixedly connected to a right positioning plate, one top end of the tile unit is provided with a left positioning port, and a protective sandwich layer is fixedly connected to the cavity of the tile unit through an opening.

[0008] The tile unit includes a wear-resistant resin base layer, and a reinforced protective inner layer is fixedly connected to the inner wall of the wear-resistant resin base layer. The wear-resistant resin base layer includes an ABS resin layer, and a glass fiber filling layer is fixedly connected to the cavity of the ABS resin layer. The reinforced protective inner layer includes a thermoplastic polyurethane layer, and a carbon fiber filament layer is fixedly connected to the cavity of the thermoplastic polyurethane layer. A functional protective coating is fixedly connected to the surface of the wear-resistant resin base layer.

[0009] Preferably, the upper positioning plate assembly includes a wear-resistant resin plate, and a wear-resistant resin arc block is fixedly connected to the top of the wear-resistant resin plate. Both the wear-resistant resin plate and the wear-resistant resin arc block are provided with a nano-silica anti-slip coating.

[0010] Preferably, the protective sandwich layer comprises a fiberglass mesh, and flame-retardant layers are fixedly connected to the sidewalls at both ends of the fiberglass mesh. The flame-retardant layers are composed of an intumescent flame retardant, an antioxidant, and a coupling agent. Buffer insulation layers are fixedly connected to the surfaces of the flame-retardant layers at both ends.

[0011] Preferably, the functional protective coating includes an anti-ultraviolet weathering coating, a fire-retardant coating is fixedly connected to the surface of the anti-ultraviolet weathering coating, and a wear-resistant coating is fixedly connected to the surface of the fire-retardant coating. The anti-ultraviolet weathering coating is composed of nano-titanium dioxide light shielding agent, hindered amine light stabilizer and ultraviolet absorber. The fire-retardant coating is composed of aluminum hydroxide, aluminum hypophosphite, expanded graphite and water-based acrylic resin. The wear-resistant coating is composed of silicon carbide micro powder and curing agent.

[0012] Furthermore, the buffer insulation layer includes an insulating polyurethane foam layer, and the surface of the insulating polyurethane foam layer has multiple honeycomb pores.

[0013] Preferably, the surface of the wear-resistant resin base layer has a frosted surface.

[0014] The technical effects and advantages provided by this utility model in the above technical solution are as follows:

[0015] 1. This utility model utilizes the precise cooperation of the positioning plate assembly, lower positioning port, right positioning plate and left positioning port to achieve rapid positioning and firm connection between individual tiles. Combined with the nano-silica anti-slip coating and frosted surface design, it effectively increases surface friction, significantly improves the overall wind resistance of the tiles, and solves the problem of poor wind resistance caused by inaccurate installation positioning.

[0016] 2. This utility model utilizes the flame-retardant layer of the protective sandwich layer to expand upon contact with fire, forming a heat insulation barrier. The fire-retardant coating in the functional protective coating further prevents the spread of flames. The dual fireproof design effectively improves the fire resistance of the tiles. The glass fiber mesh and buffer insulation layer enhance the structural strength, reduce damage from external impacts, and ensure building safety.

[0017] 3. This utility model utilizes an ABS resin layer combined with a glass fiber filling layer, a thermoplastic polyurethane layer, and a carbon fiber filament layer to enhance the structural strength and impact resistance of the tile. The UV-resistant and weather-resistant coating prevents aging, the wear-resistant coating reduces surface wear, and the anti-corrosion design extends service life. The synergistic effect of each layer achieves comprehensive protection such as wind resistance, fire prevention, and wear resistance. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0019] Figure 1 is a three-dimensional structural diagram of this utility model;

[0020] Figure 2 is a front sectional view of the present invention;

[0021] Figure 3 is a three-dimensional sectional view of the protective sandwich layer of this utility model;

[0022] Figure 4 is a three-dimensional sectional view of the functional protective coating of this utility model;

[0023] Figure 5 is a three-dimensional sectional view of a single tile of this utility model.

[0024] Explanation of reference numerals in the attached figures:

[0025] 1. Tile; 2. Individual tile; 3. Upper positioning plate assembly; 4. Lower positioning port; 5. Right positioning plate; 6. Left positioning port; 7. Protective sandwich layer; 8. Wear-resistant resin base layer; 9. Reinforced protective inner layer; 10. ABS resin layer; 11. Fiberglass filling layer; 12. Thermoplastic polyurethane layer; 13. Carbon fiber filament layer; 14. Functional protective coating; 15. Wear-resistant resin board; 16. Wear-resistant resin arc block; 17. Fiberglass mesh; 18. Flame retardant layer; 19. Buffer insulation layer; 20. UV resistant and weather-resistant coating; 21. Fire-retardant coating; 22. Wear-resistant coating; 23. Thermal insulation polyurethane foam layer; 24. Honeycomb cells. Detailed Implementation

[0026] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0027] This utility model discloses a wind-resistant synthetic resin tile.

[0028] This utility model provides a wind-resistant synthetic resin tile as shown in Figures 1-5, including a tile 1. The top of the tile 1 includes an upper positioning plate assembly 3 fixedly connected to the tile unit 2. The bottom of the tile unit 2 is provided with a lower positioning opening 4. One bottom end of the tile unit 2 is fixedly connected with a right positioning plate 5. One top end of the tile unit 2 is provided with a left positioning opening 6. A protective sandwich layer 7 is fixedly connected to the cavity of the tile unit 2 through an opening.

[0029] Each tile unit 2 includes a wear-resistant resin base layer 8, with a reinforced protective inner layer 9 fixedly connected to the inner wall of the wear-resistant resin base layer 8. The wear-resistant resin base layer 8 includes an ABS resin layer 10, with a glass fiber filling layer 11 fixedly connected to the cavity of the ABS resin layer 10. The reinforced protective inner layer 9 includes a thermoplastic polyurethane layer 12, with a carbon fiber filament layer 13 fixedly connected to the cavity of the thermoplastic polyurethane layer 12. A functional protective coating 14 is fixedly connected to the surface of the wear-resistant resin base layer 8. By utilizing the coordinated arrangement of the upper positioning plate assembly 3, the lower positioning port 4, the right positioning plate 5, and the left positioning port 6, precise positioning and secure installation between the tile units 2 are achieved, enhancing the overall wind resistance of the tiles. The performance of the tiles is enhanced by the protective core layer 7, the wear resistance and structural strength of the wear-resistant resin base layer 8 are improved by the combination of the ABS resin layer 10 and the glass fiber filling layer 11, the impact resistance and toughness of the inner protective layer 9 are enhanced by the thermoplastic polyurethane layer 12 and the carbon fiber filament layer 13, and the functional protective coating 14 gives the tiles UV resistance, fire retardancy and wear resistance, thus comprehensively improving the wind resistance and fire safety of the tiles and solving the problems of installation positioning and fire prevention. This solves the problems of poor wind resistance due to inaccurate installation positioning of existing synthetic resin tiles and the lack of fire retardant design that affects building safety.

[0030] To facilitate engagement with the lower positioning port 4 and increase surface friction, as shown in Figures 1 and 2, the upper positioning plate assembly 3 includes a wear-resistant resin plate 15. A wear-resistant resin arc block 16 is fixedly connected to the top of the wear-resistant resin plate 15. Both the wear-resistant resin plate 15 and the wear-resistant resin arc block 16 are coated with a nano-silica anti-slip coating. The upper positioning plate assembly 3 is formed by the wear-resistant resin plate 15 and the wear-resistant resin arc block 16, which cooperates with the lower positioning port 4 to achieve precise positioning. The nano-silica anti-slip coating increases surface friction, preventing the tiles from sliding during installation and use, and further enhancing the wind resistance and installation stability of the tiles.

[0031] To achieve the corresponding protective effect, as shown in Figure 3, the protective sandwich layer 7 includes a fiberglass mesh 17. Flame-retardant layers 18 are fixedly connected to the sidewalls at both ends of the fiberglass mesh 17. The flame-retardant layers 18 are composed of intumescent flame retardants, antioxidants, and coupling agents. Buffer insulation layers 19 are fixedly connected to the surfaces of both ends of the flame-retardant layers 18. The fiberglass mesh 17 enhances the structural strength of the protective sandwich layer 7. The intumescent flame retardants and other components in the flame-retardant layers 18 expand upon contact with fire to form a flame-retardant and heat-insulating layer, effectively preventing the spread of flames, improving the fire resistance and flame-retardant performance of the tiles, and ensuring building safety. The buffer insulation layers 19 provide buffering and heat insulation functions, reducing damage to the tiles from external impacts, while also providing heat insulation.

[0032] To achieve UV resistance, fire retardancy, and wear resistance, as shown in Figure 4, the functional protective coating 14 includes a UV-resistant weather-resistant coating 20. A fire retardant coating 21 is fixedly connected to the surface of the UV-resistant weather-resistant coating 20, and a wear-resistant coating 22 is fixedly connected to the surface of the fire retardant coating 21. The UV-resistant weather-resistant coating 20 is composed of nano-titanium dioxide light-shielding agent, hindered amine light stabilizer, and UV absorber. The fire retardant coating 21 is composed of aluminum hydroxide, aluminum hypophosphite, expanded graphite, and water-based acrylic resin. The wear-resistant coating 22 is composed of silicon carbide micro powder and curing agent. The UV-resistant weather-resistant coating 20 effectively blocks UV radiation, preventing the tile's performance from declining due to UV aging and extending its service life. The fire retardant coating 21 further enhances the tile's fire resistance and prevents flame spread. The wear-resistant coating 22 enhances the wear resistance of the tile surface, reduces wear, and maintains stable tile performance. The synergistic effect of each coating improves the overall performance of the tile.

[0033] To reduce impact damage to the tiles, as shown in Figure 3, the buffer insulation layer 19 includes an insulating polyurethane foam layer 23. The surface of the insulating polyurethane foam layer 23 has multiple honeycomb holes 24. The insulating polyurethane foam layer 23 has good thermal insulation properties, which reduces heat transfer and plays a role in heat preservation. The honeycomb holes 24 reduce the weight of the buffer insulation layer 19 and enhance its buffering performance. When subjected to impact, the deformation of the honeycomb structure absorbs energy and reduces impact damage to the tiles.

[0034] To improve the friction of the tile surface, as shown in Figures 1, 2 and 5, the surface of the wear-resistant resin base layer 8 is provided with a frosted surface. The frosted surface increases the roughness of the surface of the wear-resistant resin base layer 8, thereby improving the friction of the tile surface. On the one hand, it facilitates positioning and fixing during installation, and on the other hand, it reduces slippage caused by rain and other factors during use, thereby enhancing the wind resistance and safety of the tile.

[0035] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A wind-resistant synthetic resin roofing tile, comprising a tile (1), characterized in that, The tile (1) includes an upper positioning plate assembly (3) fixedly connected to the top of the tile unit (2), a lower positioning port (4) opened at the bottom of the tile unit (2), a right positioning plate (5) fixedly connected to one bottom end of the tile unit (2), a left positioning port (6) opened at one top end of the tile unit (2), and a protective sandwich layer (7) fixedly connected to the cavity of the tile unit (2) through the opening; the tile unit (2) includes a wear-resistant resin base layer (8), a reinforced protective inner layer (9) fixedly connected to the inner wall of the wear-resistant resin base layer (8), the wear-resistant resin base layer (8) includes an ABS resin layer (10), a glass fiber filling layer (11) fixedly connected to the cavity of the ABS resin layer (10), the reinforced protective inner layer (9) includes a thermoplastic polyurethane layer (12), a carbon fiber filament layer (13) fixedly connected to the cavity of the thermoplastic polyurethane layer (12), and a functional protective coating (14) fixedly connected to the surface of the wear-resistant resin base layer (8).

2. The wind-resistant synthetic resin tile according to claim 1, characterized in that, The upper positioning plate assembly (3) includes a wear-resistant resin plate (15), and a wear-resistant resin arc block (16) is fixedly connected to the top of the wear-resistant resin plate (15). The surfaces of the wear-resistant resin plate (15) and the wear-resistant resin arc block (16) are both provided with a nano-silica anti-slip coating.

3. The wind-resistant synthetic resin tile according to claim 1, characterized in that, The protective sandwich layer (7) includes a glass fiber mesh (17), and flame retardant layers (18) are fixedly connected to the side walls at both ends of the glass fiber mesh (17). The flame retardant layers (18) are composed of an intumescent flame retardant, an antioxidant and a coupling agent. Buffer insulation layers (19) are fixedly connected to the surfaces of the flame retardant layers (18) at both ends.

4. The wind-resistant synthetic resin tile according to claim 1 is characterized in that, The functional protective coating (14) includes an anti-ultraviolet weathering coating (20), a fire-retardant coating (21) is fixedly connected to the surface of the anti-ultraviolet weathering coating (20), and a wear-resistant coating (22) is fixedly connected to the surface of the fire-retardant coating (21). The anti-ultraviolet weathering coating (20) is composed of nano-titanium dioxide light shielding agent, hindered amine light stabilizer and ultraviolet absorber. The fire-retardant coating (21) is composed of aluminum hydroxide, aluminum hypophosphite, expanded graphite and water-based acrylic resin. The wear-resistant coating (22) is composed of silicon carbide micro powder and curing agent.

5. The wind-resistant synthetic resin tile according to claim 3, characterized in that, The buffer insulation layer (19) includes an insulation polyurethane foam layer (23), and the surface of the insulation polyurethane foam layer (23) is provided with a plurality of honeycomb holes (24).

6. The wind-resistant synthetic resin tile according to claim 1, characterized in that, The surface of the wear-resistant resin base layer (8) is provided with a frosted surface.