High-temperature-resistant and flame-retardant nanocomposite board

By introducing a stabilizing frame and hexagonal support blocks into the nanocomposite sheet and adopting a multi-layer material design, the problem of breakage of the nanocomposite sheet under impact is solved, the impact resistance and durability are improved, and the stability and durability in harsh environments are ensured.

CN223605246UActive Publication Date: 2025-11-28SUZHOU ZHENGYIBING NANO ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202423137149.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-19
Publication Date
2025-11-28
Estimated Expiration
2034-12-19

AI Technical Summary

Technical Problem

Existing nanocomposite panels lack specially designed impact-resistant structures, making them prone to cracking, crack propagation, or localized damage when subjected to external impacts, resulting in a decrease in overall strength and durability.

Method used

The system employs a stable frame set on both sides of the base layer and closely arranged hexagonal support blocks, combined with a multi-layer material design, including aramid fiber, polyamide, polycarbonate, epoxy resin, polytetrafluoroethylene, polyphenylene sulfide and polyurethane materials, to disperse impact force and evenly distribute stress, thereby enhancing impact resistance and deformation resistance.

Benefits of technology

It improves the morphological stability and durability of the sheet material under high-intensity environments, effectively resisting impact, corrosion and wear, and extending its service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to nanometer composite board material technical field discloses a kind of high-temperature-resistant flame-retardant nanometer composite board material, including base layer, the upper and lower end surface of base layer are all closely attached with stable frame, the inside of two stable frames is closely arranged with hexagonal support block, the side end surface of two stable frames is closely attached with reinforcing layer, the side end surface of two reinforcing layers is closely attached with anticorrosive layer, the side end surface of two anticorrosive layers is closely attached with high-temperature-resistant flame-retardant layer, the side end surface of two high-temperature-resistant flame-retardant layers is closely attached with wear layer.The utility model in this paper, the stable frame and closely arranged hexagonal support block of the board material by the both sides of base layer, can effectively disperse external impact force, enhance impact resistance, while evenly distributed stress, avoid local deformation, to improve the deformation resistance, ensure stable form, long-term durable under high-strength use environment.
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Description

TECHNICAL FIELD

[0001] The utility model relates to nanometer composite board material technical field especially relates to a kind of nanometer composite board material of high-temperature resistant flame retardant. BACKGROUND

[0002] Under the background of today's rapidly changing science and technology, the field of materials science is undergoing unprecedented changes, among which nanocomposites have attracted much attention due to their unique performance advantages. In particular, nanocomposite boards, as outstanding representatives of this field, are gradually becoming indispensable key materials in modern industry and high-tech fields.

[0003] In the prior art, most nanocomposite boards lack specially designed impact-resistant structures, which makes them prone to cracking, crack propagation or local damage when subjected to external impact, resulting in a significant decrease in the overall strength and durability of the material.

[0004] Therefore, the skilled person in the art provides a nanocomposite board with high-temperature resistance and flame retardation to solve the problems raised in the background art. SUMMARY

[0005] The utility model discloses a nanocomposite board with high-temperature resistance and flame retardation to solve the problems raised in the background art. The board is provided with a stable frame on both sides of the base layer and tightly arranged hexagonal support blocks, which can effectively disperse external impact force, enhance impact resistance, and evenly distribute stress to avoid local deformation, thereby improving deformation resistance and ensuring stable form and long-term durability in high-strength use environment.

[0006] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:

[0007] A nanocomposite board with high-temperature resistance and flame retardation, comprising a base layer, the upper and lower end faces of the base layer are externally tightly bonded with a stable frame, the interior of the two stable frames is tightly arranged with hexagonal support blocks, the side end face of the two stable frames is tightly bonded with a reinforcing layer, the side end face of the two reinforcing layers is tightly bonded with a corrosion-resistant layer, the side end face of the two corrosion-resistant layers is tightly bonded with a high-temperature resistant and flame retardant layer, and the side end face of the two high-temperature resistant and flame retardant layers is tightly bonded with a wear-resistant layer.

[0008] Through the above technical scheme, the board is provided with a stable frame on both sides of the base layer and tightly arranged hexagonal support blocks, which can effectively disperse external impact force, enhance impact resistance, and evenly distribute stress to avoid local deformation, thereby improving deformation resistance and ensuring stable form and long-term durability in high-strength use environment.

[0009] Further, the base layer is made of aramid fiber material;

[0010] By the above technical scheme, the aramid fiber has excellent strength, high temperature resistance, chemical corrosion resistance and fatigue resistance, as a base material, which can improve the overall strength and stability of the structure, and can be used for a long time without deformation or damage in high temperature or harsh environment.

[0011] Further, the two stable frames are made of polyamide material;

[0012] By the above technical scheme, the polyamide material has good impact resistance and mechanical strength, which can effectively enhance the strength and durability of the stable frame, ensure that the structure is stable under high load, and prolong the service life.

[0013] Further, the plurality of hexagonal support blocks are made of polycarbonate material;

[0014] By the above technical scheme, the polycarbonate has excellent impact strength, and the use of the material to manufacture the support block helps to improve the impact resistance of the overall structure and enhance the durability and anti-aging performance of the product.

[0015] Further, the two reinforcing layers are made of epoxy resin material;

[0016] By the above technical scheme, the epoxy resin material has high strength and rigidity, which can significantly improve the overall mechanical properties of the nano-composite board, making it more solid and durable.

[0017] Further, the two corrosion-resistant layers are made of polytetrafluoroethylene material;

[0018] By the above technical scheme, the polytetrafluoroethylene has excellent chemical corrosion resistance, and as a corrosion-resistant layer material, it can effectively prevent corrosive substances from damaging the structure, especially in environments with strong acid and alkali corrosion, ensuring the long-term stability and durability of the material.

[0019] Further, the two high-temperature resistant and flame-retardant layers are made of polyphenylene sulfide material;

[0020] By the above technical scheme, the polyphenylene sulfide has excellent high-temperature resistance and flame retardance, and as a high-temperature resistant and flame-retardant layer, it effectively prevents fire spread and overheating, improves overall safety, and can withstand long-term use under high temperature conditions.

[0021] Further, the two wear-resistant layers are made of polyurethane material;

[0022] By the above technical scheme, the polyurethane has excellent wear resistance, and as a wear-resistant layer material, it can significantly improve the wear resistance of the board and prolong the service life.

[0023] The utility model has the advantages that:

[0024] 1. The utility model provides a kind of nanometer composite board of high temperature resistant flame retardant, the board is used, by the stable frame and the closely arranged hexagonal support block of two sides of base layer, it can effectively disperse external impact force, enhance impact resistance, while stress is evenly distributed, avoid local deformation, to improve the deformation resistance, ensure that in high-strength use environment form stable, long-term durable, and further increase the strength of the board by the reinforcing layer set, so that it can better resist the impact of outside, further improve the durability of the board.

[0025] 2. The utility model provides a kind of nanometer composite board of high temperature resistant flame retardant, the board is used, by setting anticorrosive layer and wear layer, so that it can effectively isolate external erosion and surface wear in humid, acid and alkali corrosion and other harsh environments and high friction, high wear working environment, greatly improve the durability of the board under various extreme conditions. BRIEF DESCRIPTION OF DRAWINGS

[0026] Figure 1 It is the axonometric drawing of the nanometer composite board of high temperature resistant flame retardant proposed in the utility model;

[0027] Figure 2 It is the explosion drawing of the nanometer composite board of high temperature resistant flame retardant proposed in the utility model;

[0028] Figure 3 It is the axonometric drawing of the stable frame and hexagonal support block of the nanometer composite board of high temperature resistant flame retardant proposed in the utility model;

[0029] Figure 4 It is the hexagonal support block schematic view of the nanometer composite board of high temperature resistant flame retardant proposed in the utility model.

[0030] Legend:

[0031] 1, base layer;2, stable frame;3, hexagonal support block;4, reinforcing layer;5, anticorrosive layer;6, high temperature resistant flame retardant layer;7, wear layer. DETAILED DESCRIPTION

[0032] The technical scheme in the specific embodiment of the utility model will be described clearly and completely in the following by combining with the drawings in the specific embodiment of the utility model, obviously, the described specific embodiment is only part of the specific embodiment of the utility model, not all specific embodiments. Based on the specific embodiment in the utility model, all other specific embodiments obtained by the person skilled in the art without making creative labor belong to the scope of protection of the utility model.

[0033] Refer to Figures 1-4The utility model provides a kind of concrete implementation mode: a kind of high-temperature-resistant flame-retardant nanometer composite board, including base layer 1, the upper and lower end surfaces of base layer 1 are all tightly adhered with stable frame 2, the inside of two stable frames 2 is all tightly arranged with hexagonal support block 3, the side end surface of two reinforcing layers 4 is all tightly adhered with anticorrosive layer 5, the side end surface of two anticorrosive layers 5 is all tightly adhered with high-temperature-resistant flame-retardant layer 6, the side end surface of two high-temperature-resistant flame-retardant layers 6 is all tightly adhered with wear layer 7;

[0034] The board can effectively disperse external impact force, enhance impact resistance, uniformly distribute stress and avoid local deformation, thereby improving deformation resistance and ensuring stable form and long-term durability in high-strength use environment.

[0035] The base layer 1 is made of aramid fiber material, which has excellent strength, high temperature resistance, chemical corrosion resistance and fatigue resistance. As the base layer 1 material, it can improve the overall strength and stability of the structure, and is not easy to deform or damage in high temperature or harsh environment for long-term use. The two stable frames 2 are made of polyamide material, which has good impact resistance and mechanical strength, effectively enhancing the strength and durability of the stable frame 2, ensuring structural stability under high load and prolonging service life. The multiple hexagonal support blocks 3 are made of polycarbonate material, which has excellent impact strength. Using this material to manufacture support blocks helps to improve the impact resistance of the overall structure and enhance the durability and aging resistance of the product. The two reinforcing layers 4 are made of epoxy resin material, which has high strength and rigidity, significantly improving the overall mechanical properties of the nanometer composite board and making it more robust and durable. The two anticorrosive layers 5 are made of polytetrafluoroethylene material, which has excellent chemical corrosion resistance. As the anticorrosive layer 5 material, it can effectively prevent corrosive substances from damaging the structure, especially in environments with strong acid and alkali corrosion, ensuring long-term stability and durability of the material. The two high-temperature-resistant flame-retardant layers 6 are made of polyphenylene sulfide material, which has excellent high-temperature resistance and flame retardance. As the high-temperature-resistant flame-retardant layer 6, it effectively prevents fire spread and overheating, improves overall safety, and can withstand long-term use under high temperature conditions. The two wear layers 7 are made of polyurethane material, which has excellent wear resistance. As the wear layer 7 material, it can significantly improve the wear resistance of the board and prolong the service life.

[0036] Working principle: in the use process, through the stable frame 2 and the closely arranged hexagonal support block 3 arranged on both sides of the base layer 1, the plate can effectively disperse external impact force, enhance impact resistance, evenly distribute stress, avoid local deformation, thereby improve the deformation resistance, ensure the shape stability in high strength use environment, long-term durability, at the same time, the setting of the reinforcing layer 4 further improves the strength of the plate, enhances the resistance to external impact, significantly improves the durability, the design of the corrosion-resistant layer 5 and the wear-resistant layer 7 makes the plate can be in the humid, acid and alkali corrosion and other harsh environment and high friction, high wear and tear working conditions, effectively isolate the external erosion and surface wear, greatly improve the durability of the plate in extreme environment.

[0037] Finally, it should be noted that: the above only for the preferred specific embodiments of the present application, and is not intended to limit the present application, although the foregoing detailed description of the present application is made with reference to the foregoing specific embodiments, for those skilled in the art, it still can be modified, or part of the technical features of the equivalent replacement, within the spirit and principles of the present application, any modification, equivalent replacement, improvement, etc., should be included in the scope of protection of the present application.

Claims

1. A high temperature resistant, flame retardant nanocomposite board material comprising a base layer (1), characterized in that: The upper and lower end faces of the base layer (1) are tightly attached with stable frames (2) outside, the interiors of the two stable frames (2) are tightly arranged with hexagonal support blocks (3), one side end face of the two stable frames (2) is tightly attached with a reinforcing layer (4), one side end face of the two reinforcing layers (4) is tightly attached with a corrosion-proof layer (5), one side end face of the two corrosion-proof layers (5) is tightly attached with a high-temperature-resistant flame-retardant layer (6), and one side end face of the two high-temperature-resistant flame-retardant layers (6) is tightly attached with a wear-resistant layer (7).

2. The nanocomposite board according to claim 1, wherein: The base layer (1) is made of aramid fiber material.

3. The nanocomposite board of claim 1, wherein the nanocomposite board is resistant to high temperature and is flame retardant. The two stable frames (2) are made of polyamide material.

4. The nanocomposite board of claim 1, wherein the nanocomposite board is flame retardant and has a high temperature resistance. The plurality of hexagonal support blocks (3) are made of polycarbonate material.

5. The nanocomposite board of claim 1, wherein the nanocomposite board is flame retardant and has a high temperature resistance. The two reinforcing layers (4) are made of epoxy resin material.

6. The nanocomposite board of claim 1, wherein the nanocomposite board is flame retardant and has a high temperature resistance. The two corrosion-proof layers (5) are made of polytetrafluoroethylene material.

7. The nanocomposite board of claim 1, wherein the nanocomposite board is flame retardant and has a high temperature resistance. The two high-temperature-resistant flame-retardant layers (6) are made of polyphenylene sulfide material.

8. The nanocomposite board of claim 1, wherein the nanocomposite board is flame retardant and has a high temperature resistance. The two wear-resistant layers (7) are made of polyurethane material.