Chemical fiber filament polyester peach skin fabric

By combining a three-layer structure and a special material to create a chemical fiber filament peach skin fabric, the problems of static electricity and fading in peach skin fabric have been solved, and the antistatic and UV resistance properties have been improved, as well as the fabric's durability has been enhanced.

CN224258904UActive Publication Date: 2026-05-19JIAXING XINGYE SPRAY WEAVING FACTORY
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIAXING XINGYE SPRAY WEAVING FACTORY
Filing Date
2025-05-09
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Peach skin velvet fabric is prone to static electricity, which is more pronounced in dry environments, affecting its appearance and wearing comfort. It is also prone to fading, which reduces its lifespan.

Method used

It adopts a three-layer structure with the outer, middle and inner layers interwoven with UV-resistant chemical fiber filaments, antistatic chemical fiber filaments, antibacterial yarn and antistatic yarn respectively. The outer and inner layers are arranged in a 1:1:1 ratio, the middle layer is antibacterial yarn, and it uses specific materials such as UV-resistant cationic dyeable polyamide 6 fiber, antistatic polyamide 6 fiber, nano zinc oxide modified nylon 6 filament and antistatic cashmere core-spun yarn.

Benefits of technology

It improves the fabric's antistatic properties, reduces static electricity, enhances UV resistance, improves durability and warmth retention, reduces fading, and increases the fabric's strength and stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a chemical fiber filament polyester peach skin fabric which comprises a fabric body, the fabric body is a three-layer binding texture, and the three-layer binding texture comprises a surface layer, a middle layer and an inner layer; the three-layer binding weave takes plain weave as the basic weave of the surface layer, the middle layer and the inner layer, and adopts the mode that the inner layer is connected with the middle layer and the middle layer is connected with eight satin weaves on the surface; the surface layer is formed by interweaving surface warps and surface wefts, the surface warps are anti-ultraviolet chemical fiber filaments, and the surface wefts are anti-static chemical fiber filaments; the middle layer is formed by interweaving antibacterial yarns; and the inner layer is formed by interweaving antistatic yarns. Based on the chemical fiber filament polyester peach skin fabric, the fabric main body connects the surface layer, the middle layer and the inner layer together through binding, and the binding three-layer texture has larger thickness and more air layers, so that the thermal insulation performance is better; the surface layer is formed by interweaving the uvioresistant chemical fiber filaments and the antistatic chemical fiber filaments, the static electricity phenomenon of the fabric body can be reduced, the uvioresistant performance is improved, and the color fading phenomenon of the fabric body can be reduced.
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Description

Technical Field

[0001] This utility model relates to a fabric, specifically a chemical fiber long filament peach skin fabric. Background Technology

[0002] Peach skin velvet fabric is typically made of polyester fibers, with some products using nylon or a blend of both. The manufacturing process involves weaving followed by brushing and alkali reduction treatments. Brushing creates a fine, velvety surface, while alkali reduction improves the feel, increases softness, and enhances fabric quality. Its surface is covered with a uniform, fine velvet, resembling the skin of a peach. The velvet is short and neat, giving it a soft, smooth feel with a degree of elasticity, providing warmth and comfort. It offers minimal friction when worn next to the skin. This fabric is widely used in clothing and home furnishings and is highly favored by consumers.

[0003] However, peach skin velvet fabric is prone to static electricity, especially in dry environments. Static electricity can cause dust to attract and adhere to the skin, affecting both the appearance of the garment and the wearer's comfort. Furthermore, prolonged exposure to sunlight can cause peach skin velvet fabric to fade, impacting its appearance and lifespan. Therefore, this application provides a synthetic filament peach skin velvet fabric. Utility Model Content

[0004] The purpose of this invention is to provide a chemical fiber filament peach skin fabric, which aims to solve the problems of peach skin fabric being prone to static electricity and fading.

[0005] To solve the above-mentioned technical problems, the purpose of this utility model is achieved as follows: a chemical fiber filament peach skin fabric, comprising: a fabric body, wherein the fabric body is a three-layer bonded structure, the three-layer bonded structure including an outer layer, a middle layer and an inner layer; the three-layer bonded structure uses a plain weave as the basic structure of the outer layer, middle layer and inner layer, and adopts an eight-end satin weave bonded between the inner and middle layers; the outer layer is woven from outer warp and outer weft, wherein the outer warp is an anti-UV chemical fiber filament and the outer weft is an antistatic chemical fiber filament; the middle layer is woven from middle warp and middle weft, wherein both the middle warp and middle weft are antibacterial yarns; the inner layer is woven from inner warp and inner weft, wherein both the inner warp and inner weft are antistatic yarns; the arrangement ratio of the outer warp, middle warp, inner warp and outer weft, middle weft, inner weft is 1:1:1.

[0006] Based on the above scheme and as a preferred embodiment of the above scheme: the UV-resistant chemical fiber filament is a cationic dyeable UV-resistant polyamide 6 fiber filament.

[0007] Based on the above scheme and as a preferred embodiment of the above scheme: the antistatic chemical fiber filament is light-colored polyamide 6 antistatic fiber.

[0008] Based on the above scheme and as a preferred embodiment of the above scheme: the antibacterial yarn is nano zinc oxide modified nylon 6 filament.

[0009] Based on the above scheme and as a preferred embodiment of the above scheme: the antistatic yarn is antistatic cashmere core-spun yarn.

[0010] The beneficial effects of this utility model are as follows: Based on the chemical fiber filament peach skin fabric of this utility model, the main body of the fabric connects the outer layer, middle layer and inner layer together through splicing, so that the fabric has good strength and stability in all directions. It can withstand greater tensile and frictional forces, is not easy to deform or tear, and improves the durability of the fabric. In addition, the spliced ​​three-layer structure has a large thickness and more air layers, which can effectively store air. Since air is a poor conductor of heat, it can prevent heat loss, so it has good warmth retention performance and is suitable for making winter clothing, bedding and other items that require warmth. The outer layer is made of UV-resistant chemical fiber filaments and antistatic chemical fiber filaments, which can reduce the generation of static electricity in the main body of the fabric, and the improved UV resistance can reduce the fading of the main body of the fabric. Attached Figure Description

[0011] Figure 1 This is a warp cross-sectional view of the main body of the fabric involved in this utility model;

[0012] Figure 2 This refers to the warp-to-weft joint structure involved in this utility model;

[0013] Figure 3 This refers to the warp-to-weft joint structure involved in this utility model;

[0014] Figure 4 This is a tissue diagram of the three-layered connective tissue involved in this utility model;

[0015] In the diagram: 1, 2, 3, 4, 5, 6, 7, 8, 9 represent the outer longitude and outer latitude; 1, 2, 3, 4, 5, 6, 7, 8 represent the middle longitude and middle latitude; Ⅰ, Ⅱ, Ⅲ, Ⅳ, Ⅴ, Ⅵ, Ⅶ, Ⅷ represent the inner longitude and inner latitude; "○" represents the intersection point of the outer longitude with the middle latitude and inner latitude, and the middle longitude with the inner latitude; "△" represents the junction point of the middle longitude connecting to the outer latitude; and "●" represents the junction point of the inner longitude connecting to the middle latitude. Detailed Implementation

[0016] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0017] Combination Figure 1-4This embodiment provides a detailed description of a chemical fiber filament peach skin fabric, comprising: a fabric body, wherein the fabric body is a three-layer bonded structure, the three-layer bonded structure comprising an outer layer, a middle layer, and an inner layer; the three-layer bonded structure uses a plain weave as the basic structure for the outer layer, middle layer, and inner layer, and employs an eight-end satin weave bonded between the inner and middle layers; the outer layer is woven from outer warp and outer weft, the outer warp being an anti-UV chemical fiber filament, and the outer weft being an antistatic chemical fiber filament; the middle layer is woven from middle warp and middle weft, both of which are antibacterial yarns; the inner layer is woven from inner warp and inner weft, both of which are antistatic yarns; the ratio of the outer warp, middle warp, and inner warp to the outer weft, middle weft, and inner weft is 1:1:1.

[0018] Furthermore, the UV-resistant synthetic fiber filament is a cationic dyeable UV-resistant polyamide 6 fiber filament. Cationic dyeable UV-resistant polyamide 6 fiber is prepared by using anatase titanium dioxide powder as raw material, surface modification of titanium dioxide with alumina and sodium isophthalate-5-sulfonate to create an additive, and then preparing it through in-situ polymerization and melt spinning. Fabrics made from cationic dyeable UV-resistant polyamide 6 fiber filaments achieve a dye uptake rate of 45% for cationic dyes, exhibiting good cationic dyeability. The average UV transmittance is 2.02%, lower than the standard value of 2.5%, and the UPF is as high as 69.18, demonstrating excellent UV resistance.

[0019] Furthermore, the antistatic chemical fiber filament is a light-colored polyamide 6 antistatic fiber. The light-colored polyamide 6 antistatic fiber is prepared by using stearic acid-modified nano-antimony-doped tin dioxide to encapsulate titanium dioxide as a light-colored conductive filler, and then using a melt blending method to prepare a light-colored antistatic polyamide 6 fiber masterbatch. The antistatic polyamide 6 fiber masterbatch and polyamide 6 are then combined and spun into fibers. The strength of the light-colored polyamide 6 antistatic fiber is above 3.0 cN / dtex, and the antistatic performance is 4.24 × 10⁻⁶. 9 Ω / cm, with good antistatic properties.

[0020] Furthermore, the antibacterial yarn is nano-zinc oxide modified nylon 6 filament. Nano-zinc oxide modified nylon 6 filament is produced using the masterbatch method in blend spinning. The inorganic antibacterial agent nano-zinc oxide is added to nylon 6 chips, and an antibacterial masterbatch is prepared using a screw extruder. Then, the antibacterial masterbatch and nylon 6 chips are thoroughly mixed and fed into a hopper for melt spinning. Zinc oxide is a white inorganic antibacterial agent that releases antibacterial ions upon use, thereby giving the product antibacterial properties. Nano-zinc oxide is an inorganic nano-antibacterial agent; due to its nano-carrier structure, its specific surface area is increased, allowing for better adsorption of microorganisms, thus achieving a superior antibacterial effect compared to micron-sized nano-zinc oxide. Specifically, with a zinc oxide mass fraction of 5% and an antibacterial masterbatch addition amount of 5%, the resulting nano-zinc oxide modified nylon 6 filament exhibits an antibacterial rate of over 90% against Candida albicans, Escherichia coli, and Staphylococcus aureus. Furthermore, the addition of nano-zinc oxide has minimal impact on the mechanical properties of the nano-zinc oxide modified nylon 6 filament.

[0021] Furthermore, the antistatic yarn is an antistatic cashmere core-spun yarn. The antistatic cashmere core-spun yarn includes a core filament and an outer sheath fiber. The core filament is a conductive filament, the outer sheath fiber is cashmere fiber, and the conductive filament is a nylon-based copper ion conductive filament.

[0022] Nylon-based copper ion conductive fibers are produced by blending copper ion-containing compounds or nano-copper materials with nylon chips, followed by melt spinning to form fibers. During spinning, copper ions are uniformly dispersed within the nylon matrix, forming conductive channels. Specifically, the nylon-based copper ion conductive fibers have a fineness of 7.8 tex, a breaking strength of 32.31 cN / tex, and a resistivity of 0.01-0.10 Ω / cm.

[0023] Cashmere fibers are rich in crimp, soft, and have strong cohesion. When used as the outer fiber and nylon-based copper ion conductive yarn as the core yarn, antistatic cashmere core-spun yarn exhibits better and more stable breaking strength and elongation at break than pure cashmere yarn. Compared with cashmere fabrics of the same specifications, antistatic cashmere core-spun yarn fabric has a 1.7-fold increase in bursting strength, an 86.5% reduction in maximum frictional static voltage, and a 16.2% reduction in the number of pills per unit area, indicating that antistatic cashmere core-spun yarn fabric has excellent antistatic and anti-pilling effects.

[0024] The preferred embodiments of this utility model have been described in detail above. It should be understood that those skilled in the art can make numerous modifications and variations based on the concept of this utility model without creative effort. Therefore, all technical solutions that can be obtained by those skilled in the art based on the concept of this utility model through logical analysis, reasoning, or limited experimentation on the basis of existing technology should be within the scope of protection defined by the claims.

Claims

1. A type of chemical fiber filament peach skin fabric, characterized in that, include: The main body of the fabric is a three-layer knitted structure, comprising an outer layer, a middle layer, and an inner layer. The three-layer knitted structure uses a plain weave as the base structure for the outer, middle, and inner layers, employing an eight-end satin weave joint between the inner and middle layers. The outer layer is woven from outer warp and outer weft, with the outer warp being UV-resistant synthetic filament and the outer weft being antistatic synthetic filament. The middle layer is woven from middle warp and middle weft, both of which are antibacterial yarns. The inner layer is woven from inner warp and inner weft, both of which are antistatic yarns. The ratio of the outer warp, middle warp, and inner warp to the outer weft, middle weft, and inner weft is 1:1:

1.

2. The chemical fiber filament peach skin fabric according to claim 1, characterized in that, The UV-resistant synthetic fiber filament is a cationic dyeable UV-resistant polyamide 6 fiber filament.

3. The chemical fiber filament peach skin fabric according to claim 1, characterized in that, The antistatic chemical fiber filament is a light-colored polyamide 6 antistatic fiber.

4. The chemical fiber filament peach skin fabric according to claim 1, characterized in that, The antibacterial yarn is nano-zinc oxide modified nylon 6 filament.

5. The chemical fiber filament peach skin fabric according to claim 1, characterized in that, The antistatic yarn is an antistatic cashmere core-spun yarn.