Multifunctional fabric
By using a three-layer weft knitting structure, combined with high-elastic yarn and composite conductive yarn, the shortcomings of traditional fabrics in terms of wrinkle resistance, anti-static properties and elasticity are solved, providing a skin-friendly, comfortable and multifunctional knitted fabric.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGYIN TIAN ER RAN TEXTILE TECH CO LTD
- Filing Date
- 2025-04-08
- Publication Date
- 2026-04-10
AI Technical Summary
Traditional fabrics cannot simultaneously provide wrinkle resistance, anti-static properties, and elasticity, thus failing to meet consumers' demands for comprehensive performance.
It adopts a three-layer weft knitted structure, including a skin-friendly layer, a high-elastic layer and a conductive layer. Through a specific yarn ratio and knitting method, a multifunctional knitted fabric is formed. The high-elastic yarn and composite conductive yarn give the fabric excellent elasticity and antistatic properties.
The fabric achieves skin-friendly comfort, excellent wrinkle resistance, good anti-static effect, and excellent elasticity, adapting to the dynamic stretching needs of the human body.
Smart Images

Figure CN224106037U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to functional knitted fabric production technology, concretely relates to a multifunctional knitted fabric which is skin-friendly, comfortable, wrinkle-resistant, anti-static and elastic. BACKGROUND
[0002] In the context of the continuous development of the textile industry, consumers' expectations for the performance of clothing fabrics continue to rise. They no longer just want basic coverage and warmth, but rather fabrics that combine multiple excellent properties. Among these properties, wrinkle resistance, anti-static properties, and elasticity have become important factors in measuring fabric quality.
[0003] Traditional single-sided knitted fabrics, even if they have made some progress in a single property, still struggle to balance wrinkle resistance, anti-static properties, and elasticity. For example, some fabrics made primarily of natural fibers have good skin-friendliness but poor wrinkle resistance and elasticity, making them prone to wrinkling during use. While some chemical fiber fabrics perform well in terms of wrinkle resistance, they lack anti-static properties, attracting dust in dry environments and generating static electricity frequently, which affects the user experience. Elasticity is also a shortcoming of traditional fabrics. Traditional functional knitted fabrics lack balanced consideration in elasticity design and cannot meet the dynamic stretching needs of the human body in all directions. Wearing such fabrics often makes people feel limited in stretching their limbs.
[0004] In summary, people not only pursue fashion and aesthetics but also desire clothing fabrics with durable and stable comprehensive properties to meet the needs of daily work, life, and various activities. Therefore, there is a need for a functional knitted fabric that combines wrinkle resistance, anti-static properties, and high elasticity to overcome the shortcomings of existing fabrics and provide consumers with better options. SUMMARY
[0005] To overcome the shortcomings of existing technology, the utility model aims to provide a multifunctional knitted fabric that is skin-friendly, comfortable, wrinkle-resistant, anti-static, and elastic.
[0006] The utility model solves the above-mentioned technical scheme adopted by the technical scheme: a multifunctional fabric includes a skin-friendly layer, a high-elasticity layer, and a conductive layer. The high-elasticity layer has a skin-friendly layer on the upper end and a conductive layer on the lower end. The skin-friendly layer, high-elasticity layer, and conductive layer are connected by three layers of weft knitting organization. The three layers of weft knitting organization include ten loop-forming systems. The second, third, fourth, seventh, eighth, and ninth loop-forming systems weave the skin-friendly layer, the fifth and tenth loop-forming systems weave the high-elasticity layer, and the first and sixth loop-forming systems weave the conductive layer. The skin-friendly layer includes first and second skin-friendly yarns, the high-elasticity layer includes high-elasticity yarn, and the conductive layer includes a composite conductive yarn. The composite conductive yarn is made of elastic yarn, conductive yarn, and wear-resistant yarn through spiral interlacing.
[0007] Further, the first and second skin-friendly yarns are fed into the second, third, fourth, seventh, eighth and ninth loop-forming systems in a ratio of 1:2, wherein the first skin-friendly yarn is fed into the second and seventh loop-forming systems, and the second skin-friendly yarn is fed into the third, fourth, eighth and ninth loop-forming systems.
[0008] Further, the high-elasticity filament is fed into the fifth and tenth loop-forming systems to form the high-elasticity layer by tuck stitch.
[0009] Further, the composite conductive yarn is fed into the first and sixth loop-forming systems to form the conductive layer by 2*2 false rib stitch.
[0010] Further, the conductive yarn is a skin-core structure yarn with a skin layer of nano-silver and a core layer of nylon filament.
[0011] Further, the skin layer of the conductive yarn has a thickness of 0.08-0.12 microns.
[0012] Further, the nylon filament has a fineness of 50D.
[0013] Further, the first skin-friendly yarn is a blended yarn with a fineness of 60S, which is obtained by uniformly mixing 70% Tencel fiber and 30% polyester fiber by weight.
[0014] Further, the second skin-friendly yarn is a blended yarn with a fineness of 60S, which is obtained by uniformly mixing 70% modal fiber and 30% polyester fiber by weight.
[0015] Further, the high-elasticity filament is a SORONA filament with a fineness of 75D.
[0016] Further, the elastic yarn is a T800 filament with a fineness of 50D.
[0017] Further, the wear-resistant yarn is a polyamide filament with a fineness of 70D.
[0018] Compared with the prior art, the utility model has the beneficial effects that:
[0019] (1) The utility model has a multi-layer weft-knitting structure, which endows the fabric with skin-friendliness, anti-static property and high elasticity; and the excellent elasticity of the fabric makes the fabric have good wrinkle resistance.
[0020] (2) The high-elasticity layer of the fabric is knitted by high-elasticity filaments in a tuck form, and the high-elasticity layer connects the skin-friendly layer and the conductive layer through the high-elasticity filaments, so that the fabric has the effect of four-way elasticity.
[0021] (3) The first skin-friendly yarn and the second skin-friendly yarn of the fabric are jointly knitted to form the skin-friendly layer, so that the skin-friendly layer has more abundant touch feeling.
[0022] (4) The conductive layer of the fabric adopts the composite conductive yarn, so that the fabric has better conductive performance, and the conductive layer of the fabric has better elasticity and wear resistance. BRIEF DESCRIPTION OF DRAWINGS
[0023] Fig. 1 Fig. 1 is a structural schematic view of the fabric of the utility model;
[0024] Fig. 2 Fig. 2 is a knitting diagram of the utility model;
[0025] Fig. 3 Fig. 3 is a structural schematic view of the composite conductive yarn of the utility model;
[0026] In the figure, 1 is a skin-friendly layer; 2 is a high-elasticity layer; 3 is a conductive layer; 4 is a first skin-friendly yarn; 5 is a second skin-friendly yarn; 6 is a high-elasticity yarn; 7 is a composite conductive yarn; 71 is an elastic yarn; 72 is a conductive yarn; and 73 is a wear-resistant yarn. DETAILED DESCRIPTION
[0027] The utility model will be described in detail in combination with specific embodiments. The following embodiments will help the person skilled in the art to further understand the utility model, but do not limit the utility model in any form. It should be pointed out that, for the person skilled in the art, on the premise of not departing from the concept of the utility model, a number of changes and improvements can be made, which all belong to the protection scope of the utility model.
[0028] As Figs. 1-3As shown, a multifunctional fabric comprises a skin-friendly layer 1, a high-elasticity layer 2 and an electrically-conductive layer 3, the high-elasticity layer 2 is provided with the skin-friendly layer 1 at the upper end and the electrically-conductive layer 3 at the lower end; the skin-friendly layer 1, the high-elasticity layer 2 and the electrically-conductive layer 3 are connected by three-layer weft knitting organization; the three-layer weft knitting organization comprises a ten-way loop system, wherein the second, third, fourth, seventh, eighth and ninth way loop system is knitted to form the skin-friendly layer 1, the fifth and tenth way loop system is knitted to form the high-elasticity layer 2, and the first and sixth way loop system is knitted to form the electrically-conductive layer 3; the skin-friendly layer 1 comprises first and second skin-friendly yarns 4 and 5, the high-elasticity layer 2 comprises high-elasticity silk 6, and the electrically-conductive layer 3 comprises composite electrically-conductive yarn 7, which is formed by spiral interlacing of elastic yarn 71, electrically-conductive yarn 72 and wear-resistant yarn 73; the first and second skin-friendly yarns 4 and 5 are fed into the second, third, fourth, seventh, eighth and ninth way at a ratio of 1:2 for knitting, wherein the first skin-friendly yarn 4 is fed into the second and seventh way loop system for knitting, and the second skin-friendly yarn 5 is fed into the third, fourth, eighth and ninth way loop system for knitting; the high-elasticity silk 6 is fed into the fifth and tenth way loop system for knitting in the tuck stitch mode to form the high-elasticity layer 3, and the high-elasticity silk 6 is SORONA filament with a fineness of 75D; the composite electrically-conductive yarn 7 is fed into the first and sixth way loop system for knitting in the 2x2 mock cable stitch mode to form the electrically-conductive layer 3.
[0029] The elastic yarn 71 is T800 filament with a fineness of 50D, the wear-resistant yarn 73 is nylon filament with a fineness of 70D, the electrically-conductive yarn 72 is a skin-core structure yarn with a skin layer of nanometer silver with a thickness of 0.08μm and a core layer of nylon filament with a fineness of 50D, the first skin-friendly yarn 4 is blended yarn with a fineness of 60S, which is spun from even mixing of 70% Tencel fiber and 30% polyester fiber by weight, and the second skin-friendly yarn 5 is blended yarn with a fineness of 60S, which is spun from even mixing of 70% modal fiber and 30% polyester fiber by weight.
[0030] The specific embodiments of the utility model are described above. It should be understood that the utility model is not limited to the specific embodiments described above, and those skilled in the art can make various changes or modifications within the scope of claims, which does not affect the essential content of the utility model. The embodiments of the present application and the features in the embodiments can be combined with each other in any way without conflict.
Claims
1. A multi-functional fabric, characterized by: The skin-friendly layer (1), the high-elastic layer (2) and the conductive layer (3) are connected by three-layer weft knitting organization, wherein the second, third, fourth, seventh, eighth and ninth loop-forming systems are used to weave the skin-friendly layer (1), the fifth and tenth loop-forming systems are used to weave the high-elastic layer (2), and the first and sixth loop-forming systems are used to weave the conductive layer (3).
2. The multi-functional fabric according to claim 1, wherein The first and second skin-friendly yarns (4, 5) are fed into the second, third, fourth, seventh, eighth and ninth loop-forming systems in a ratio of 1:2, wherein the first skin-friendly yarn (4) is fed into the second and seventh loop-forming systems, and the second skin-friendly yarn (5) is fed into the third, fourth, eighth and ninth loop-forming systems.
3. The multi-functional fabric according to claim 1, wherein The high-elastic yarn (6) is fed into the fifth and tenth loop-forming systems to weave the high-elastic layer (2) in a tuck structure. The composite conductive yarn (7) is fed into the first and sixth loop-forming systems to weave the conductive layer (3) in a 2*2 false rib structure.
4. The multi-functional fabric according to claim 1, wherein The conductive yarn (72) is a skin-core structure yarn with a nanometer silver skin and a nylon filament core. The skin thickness of the conductive yarn (72) is 0.08-0.12 μm.
5. The multi-functional fabric according to claim 1, wherein 6. The multi-functional fabric according to claim 5, wherein