Wear-resistant thermal insulation fabric
By introducing magnetic bag connections and hollow plastic particles into the wear-resistant and heat-insulating fabric, the problems of inconvenient connection methods and insufficient flexibility of existing wear-resistant and heat-insulating fabrics have been solved, realizing a wear-resistant and heat-insulating fabric that can be quickly adjusted, with enhanced connection tightness and heat insulation effect.
Patent Information
- Application Number
- CN202423271614.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2034-12-27
AI Technical Summary
Existing connection methods for wear-resistant and heat-insulating fabrics, such as zippers, buttons, or ties, are inconvenient to operate in cold or emergency situations and make it difficult to quickly adjust the shape of the garment. Traditional connection methods lack flexibility and stability.
The fabric is connected by magnetic bags, which are used to connect the wear-resistant fabric layer, the thermal insulation fabric layer, the insulating layer, and the close-fitting fiber layer. Hollow round plastic granules with a diameter of one millimeter are filled in the magnetic connection. The magnetic connection and the weight and softness of the plastic granules enhance the flexibility and thermal insulation performance of the fabric.
It enables quick and convenient connection and separation of clothing, enhances the tightness of the connection between fabric layers, improves the abrasion resistance and heat insulation performance of the fabric, improves the feel and comfort, and adapts to different wearing needs.
Smart Images

Figure CN223913514U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of wear-resistant and heat-insulating fabrics, specifically relating to a wear-resistant and heat-insulating fabric. Background Technology
[0002] As people's demands for clothing functionality increase, the market demand for durable and thermally insulating fabrics has surged. Traditional fabrics struggle to balance durability and insulation, limiting their application in outdoor and industrial fields. Against this backdrop, a new type of durable and thermally insulating fabric has emerged, integrating advanced technology and high-quality materials. It aims to break through traditional limitations, providing consumers with more practical, comfortable, and durable fabric options to meet diverse living and working needs.
[0003] In clothing made from existing durable and insulating fabrics, the most common connection methods are zippers, buttons, or ties. Zippers may jam or the teeth may break; buttons require alignment with the buttonholes, which is inconvenient and time-consuming in cold environments or emergencies; ties are not only difficult to fasten and unfasten, but may also come undone during activity. These traditional connection methods lack flexibility and cannot meet users' needs for quickly adjusting the shape and wearing style of their clothing. Utility Model Content
[0004] The purpose of this invention is to provide a wear-resistant and heat-insulating fabric to address the problem that in existing wear-resistant and heat-insulating fabrics, the connection methods for clothing are mostly zippers, buttons, or ties. Zippers may experience problems such as jamming or damaged teeth; buttons require alignment with buttonholes, which is inconvenient and time-consuming in cold environments or emergency situations.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a wear-resistant and heat-insulating fabric, comprising a wear-resistant fabric layer, a heat-insulating fabric layer, a heat-insulating material layer, an insulating layer, and a close-fitting fiber layer;
[0006] A heat-insulating fabric layer is provided on the lower side of the wear-resistant fabric layer, a heat-insulating material layer is provided on the lower side of the heat-insulating fabric layer, an insulating layer is provided on the lower side of the heat-insulating material layer, and a close-fitting fiber layer is provided on the lower side of the insulating layer.
[0007] Multiple magnetic bags are respectively provided in the middle of the wear-resistant fabric layer, the heat-insulating fabric layer, the insulating layer, and the close-fitting fiber layer;
[0008] The inner side of the magnetic bag is filled with plastic granules.
[0009] Preferably, the plurality of magnetic bags are connected by sewing and by an insulating fabric layer, a wear-resistant fabric layer, an insulating layer, and a skin-friendly fiber layer.
[0010] Preferably, the magnetic bags at multiple locations on the top and bottom can be magnetically connected, and the plastic particles are hollow spherical particles with a diameter of one millimeter.
[0011] Preferably, the abrasion-resistant fabric layer includes woven hemp yarn A and woven hemp yarn B, which are interwoven to form the abrasion-resistant fabric layer.
[0012] Preferably, the thermal insulation fabric layer is made of wool blend material, and the thermal insulation material layer is made of hollow fiber cotton material.
[0013] Preferably, the insulating layer is made of aluminum foil composite fabric, and the close-fitting fiber layer is made of pure cotton fiber material.
[0014] Compared with the prior art, this utility model provides a wear-resistant and heat-insulating fabric with the following beneficial effects:
[0015] 1. Traditional clothing often requires zippers, buttons, or other components to adjust the position or connection of certain parts during wear, which can be cumbersome. This fabric, however, uses magnetic pockets for easy and quick connection and separation of different parts. For example, when putting on or taking off a coat, simply approach or pull the corresponding magnetic pocket to easily open or close the garment, saving considerable time and effort, making it especially suitable for quick dressing and undressing in emergency or cold environments.
[0016] During the wearing process, users can flexibly adjust the shape of the garment by using the magnetic pockets to attach and detach, according to their own needs and preferences. This includes changing the shape of the collar and cuffs or tightening certain parts of the garment. This flexibility is unmatched by the fixed structure of traditional clothing, providing wearers with a more personalized wearing experience.
[0017] 2. Existing methods of connecting the layers of abrasion-resistant and thermal insulation fabrics may lead to interlayer shifting during prolonged wear or exposure to external forces, affecting the overall performance of the fabric. Magnetic pockets, however, connect to the abrasion-resistant fabric layer, thermal insulation layer, insulating layer, and inner fiber layer respectively. Through magnetic attraction, they enhance the tightness of the connection between the layers to a certain extent, effectively preventing shifting or separation during daily wear and activities. This ensures that all layers of the fabric work together at all times, maintaining excellent abrasion resistance and thermal insulation properties.
[0018] 3. Traditional durable and insulating fabrics may have limitations in terms of feel and texture, such as being too stiff or lacking drape. However, the plastic granules inside the magnetic pocket have a certain weight and fluidity, allowing the fabric to drape better when worn, resulting in a more aesthetically pleasing, natural drape. At the same time, the slight movement of the plastic granules within the magnetic pocket adds softness and elasticity to the fabric, improving its feel and making it more comfortable for the wearer.
[0019] In addition, the hollow, round plastic granules contain air, which is a poor conductor of heat, thus helping to enhance the fabric's insulation performance to some extent. In cold environments, these plastic granules can slow down heat loss, further improving the fabric's heat retention and providing the wearer with warmer protection. Compared to traditional insulation materials, this auxiliary insulation method is more flexible and uniform, improving the overall insulation performance of the fabric without increasing its thickness excessively. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the fabric structure in this utility model.
[0021] Figure 2 This is a schematic diagram of the magnetic bag in this utility model.
[0022] Figure 3 This is a schematic diagram of the cross-section of the magnetic bag in this utility model.
[0023] Figure 4 This is a schematic diagram of the structure of braided hemp thread A and braided hemp thread B in the wear-resistant fabric layer of this utility model.
[0024] In the diagram: 1. Abrasion-resistant fabric layer; 2. Thermal insulation fabric layer; 3. Thermal insulation material layer; 4. Insulation layer; 5. Close-fitting fiber layer; 6. Magnetic bag; 7. Braided hemp thread A; 8. Braided hemp thread B; 9. Plastic granules. Detailed Implementation
[0025] 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.
[0026] This utility model provides, for example Figure 1-4 The wear-resistant and heat-insulating fabric shown includes a wear-resistant fabric layer 1, a heat-insulating fabric layer 2, a heat-insulating material layer 3, an insulating layer 4, and a close-fitting fiber layer 5.
[0027] A heat-insulating fabric layer 2 is provided on the lower side of the wear-resistant fabric layer 1, a heat-insulating material layer 3 is provided on the lower side of the heat-insulating fabric layer 2, an insulating layer 4 is provided on the lower side of the heat-insulating material layer 3, and a close-fitting fiber layer 5 is provided on the lower side of the insulating layer 4.
[0028] Multiple magnetic bags 6 are respectively provided in the middle of the wear-resistant fabric layer 1, the heat-insulating fabric layer 2, the insulating layer 4, and the close-fitting fiber layer 5.
[0029] Plastic granules 9 are filled inside the magnetic bag 6.
[0030] like Figure 1-4 As shown, multiple magnetic bags 6 are connected to the thermal insulation fabric layer 2, the abrasion-resistant fabric layer 1, the insulating layer 4, and the close-fitting fiber layer 5 by sewing. Multiple magnetic bags 6 can be magnetically connected. The plastic particles 9 are hollow round particles with a diameter of one millimeter. The abrasion-resistant fabric layer 1 includes braided hemp yarn A7 and braided hemp yarn B8, which are interwoven to form the abrasion-resistant fabric layer 1. The thermal insulation fabric layer 2 is made of wool blend material. The thermal insulation material layer 3 is made of hollow fiber cotton material. The insulating layer 4 is made of aluminum foil composite fabric. The close-fitting fiber layer 5 is made of pure cotton fiber material.
[0031] In this embodiment, the wear-resistant fabric layer 1 is woven from braided hemp yarn A7 and braided hemp yarn B8 to form a complete wear-resistant outer layer.
[0032] The thermal insulation fabric layer 2 is located below the abrasion-resistant fabric layer 1. It can be fixedly connected to the abrasion-resistant fabric layer 1 through processes such as sewing and hot pressing to ensure that the two layers are tightly bonded and not easily separated.
[0033] The insulation material layer 3 is laid under the insulation fabric layer 2. Its edges are fixed to the insulation fabric layer 2 by sewing, so that the insulation material layer 3 is stably attached to the insulation fabric layer 2 and provides the main insulation function for the fabric.
[0034] The insulation layer 4 is located below the insulation material layer 3 and can be connected to the insulation material layer 3 by sewing or hot pressing to form a continuous structure that can effectively block external hot and cold air and moisture.
[0035] The inner fiber layer 5 is located at the bottom of the fabric and is connected to the insulating layer 4 through processes such as sewing or hot pressing to ensure the integrity of the entire fabric structure while providing the wearer with a comfortable, close-fitting feel.
[0036] Users can use professional cutting tools to cut fabrics into suitable shapes and sizes according to their actual needs, such as making clothing or thermal wear. During the cutting process, it is important to pay attention to the accuracy of the dimensions to ensure that the final product meets the requirements.
[0037] The cut fabric is then sewn and pieced together to create the desired products, such as clothes, hats, and gloves.
[0038] The finished product is worn or used for appropriate warmth. During wear, the various layers of fabric work together to provide a durable, warm, insulating, and comfortable wearing experience.
[0039] Preferably, multiple magnetic bags 6 are fixed to the abrasion-resistant fabric layer 1, the thermal insulation fabric layer 2, the insulating layer 4, and the close-fitting fiber layer 5 by sewing. When the fabric is in its natural state, these magnetic bags 6 are each in a fixed position on their respective layers and will not move randomly, providing an orderly layout for the entire fabric structure.
[0040] When different parts of the fabric need to be close together or connected, the multiple magnetic bags 6 at the top and bottom can be magnetically attached together. For example, when making clothing, it may be necessary to attach certain parts of the garment together. In this case, the corresponding magnetic bags 6 will attract each other, achieving a quick and convenient connection. When it is necessary to separate these parts, the magnetic bags 6 can be easily separated by overcoming the magnetic force, making the operation simple and convenient.
[0041] The presence of the magnetic pocket 6 can enhance the tightness of the connection between the fabric layers to a certain extent. Through magnetic connection, adjacent fabric layers can work together better, avoiding displacement or separation between layers due to daily wear activities or external pulling, thereby improving the stability and durability of the entire fabric structure.
[0042] In practical use, the magnetic suction function of the magnetic bag 6 provides convenience for the wearer. For example, when putting on or taking off clothing, the magnetic suction function of the magnetic bag 6 makes it easier to adjust the shape and position of the clothing, making it more comfortable and fit better. Moreover, if it is necessary to temporarily fix or adjust certain parts of the clothing during use, the magnetic bag 6 can also quickly come into play to meet the different needs of the wearer.
[0043] Plastic particles 9 are filled inside the magnetic bag 6. Because the magnetic bag 6 is fixed to the layers of fabric by sewing or other methods, the plastic particles 9 are confined inside the magnetic bag 6 and will not scatter randomly. They maintain a relatively stable position inside the magnetic bag 6, providing a certain amount of weight and shape support for the magnetic bag 6.
[0044] Although the plastic particles 9 are fixed inside the magnetic bag 6, they can make slight movements and adjustments within the magnetic bag 6 under certain external forces. For example, when the fabric is squeezed or stretched, the plastic particles 9 will redistribute within the magnetic bag 6 according to the force applied to adapt to the deformation of the fabric.
[0045] The hollow, round plastic particles 9, each one millimeter in diameter, have a certain weight. When filled into the magnetic bag 6, they appropriately increase the weight of the fabric, giving it a more textured and draping feel, thus improving wearing comfort. At the same time, the hollow structure of the plastic particles 9 is relatively light, preventing excessive burden on the garment and ensuring its lightweight nature. Furthermore, the slight movement of the plastic particles 9 within the magnetic bag 6 provides the fabric with a degree of softness and elasticity, improving its feel.
[0046] The hollow, round plastic particles 9 contain air, which is a poor conductor of heat. Therefore, these plastic particles 9 can, to some extent, enhance the thermal insulation performance of the fabric. When the external temperature changes, the plastic particles 9 can slow down the rate of heat transfer, further improving the fabric's heat retention effect. Moreover, when the fabric is subjected to external impact or friction, the plastic particles 9 can act as a buffer within the magnetic bag 6, reducing the direct impact of external forces on the human body and protecting it from injury.
[0047] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A wear-resistant and heat-insulating fabric, comprising a wear-resistant fabric layer (1), a heat-insulating fabric layer (2), a heat-insulating material layer (3), an insulating layer (4), and a close-fitting fiber layer (5); A heat-insulating fabric layer (2) is provided on the lower side of the wear-resistant fabric layer (1), a heat-insulating material layer (3) is provided on the lower side of the heat-insulating fabric layer (2), an insulating layer (4) is provided on the lower side of the heat-insulating material layer (3), and a close-fitting fiber layer (5) is provided on the lower side of the insulating layer (4). Its features are: Multiple magnetic bags (6) are respectively provided at the middle positions of the wear-resistant fabric layer (1), the heat-insulating fabric layer (2), the insulating layer (4), and the close-fitting fiber layer (5); The inner side of the magnetic bag (6) is filled with plastic particles (9).
2. The wear-resistant and heat-insulating fabric according to claim 1, characterized in that: Multiple magnetic bags (6) are connected by sewing and by an insulating fabric layer (2), a wear-resistant fabric layer (1), an insulating layer (4), and a close-fitting fiber layer (5).
3. The wear-resistant and heat-insulating fabric according to claim 2, characterized in that: The magnetic bags (6) at multiple locations on the top and bottom can be connected by magnetic attraction, and the plastic particles (9) are hollow round particles with a diameter of one millimeter.
4. The wear-resistant and heat-insulating fabric according to claim 3, characterized in that: The wear-resistant fabric layer (1) includes braided hemp yarn A (7) and braided hemp yarn B (8), which are interwoven to form the wear-resistant fabric layer (1).
5. The wear-resistant and heat-insulating fabric according to claim 4, characterized in that: The thermal insulation fabric layer (2) is made of wool blend material, and the thermal insulation material layer (3) is made of hollow fiber cotton material.
6. The wear-resistant and heat-insulating fabric according to claim 5, characterized in that: The insulating layer (4) is made of aluminum foil composite fabric, and the close-fitting fiber layer (5) is made of pure cotton fiber material.