Antibacterial cloth

By using a combination of ramie fiber, bamboo charcoal fiber, and nano-copper antibacterial fiber filaments in the curtain fabric, the problem of insufficient antibacterial effect of the curtain fabric is solved, achieving highly efficient antibacterial, anti-mite, and deodorizing effects, and improving safety and service life.

CN223705880UActive Publication Date: 2025-12-23SHENBANG CLOTHES&ACCESSORIES CO LTD
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Patent Information

Application Number
CN202423139018.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-19
Publication Date
2025-12-23
Estimated Expiration
2034-12-19

AI Technical Summary

Technical Problem

Existing curtain fabrics lack effective antibacterial properties, easily accumulating bacteria and dust, which can affect safety and lifespan, especially in households with children or pets.

Method used

The fabric is woven from ramie fiber, bamboo charcoal fiber, and antibacterial coating yarn. Ramie fiber contains trace elements such as benzoyl, pyrimidine, and purine, as well as an ultrafine porous structure. Bamboo charcoal fiber has antibacterial and bacteriostatic effects. Nano copper antibacterial fiber releases copper ions to kill fungi. Combined with antibacterial coating yarn, the contact area is increased to enhance the antibacterial effect.

Benefits of technology

It effectively inhibits bacterial growth, improves the antibacterial properties of fabrics, enhances anti-mite and deodorizing functions, extends service life, and improves safety.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223705880U_ABST
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Abstract

The utility model discloses an antibacterial fabric, which relates to the field of textile, and has the technical scheme that the antibacterial fabric comprises a fabric body, the fabric body is formed by weaving warp yarn groups and weft yarn groups, the warp yarn groups comprise ramie fiber yarns, bamboo charcoal fiber yarns and antibacterial wrap yarns, and the weft yarn groups are woven by warp yarns and weft yarns. The ramie fibers, the bamboo charcoal fibers and the antibacterial wrap yarns are sequentially arranged at intervals according to the proportion of 7: 3: 2. The ramie fibers, the bamboo charcoal fibers and the antibacterial wrap yarns are arranged, so that the antibacterial fabric can play a role in inhibiting various bacteria, has natural antibacterial, anti-mite and deodorant functions, and can effectively restrain the bacterial pollution problem of textiles for a long time, and the bamboo charcoal fibers also have good antibacterial and bacteriostatic effects and a strong adsorption effect, so that the antibacterial effect is good, and the antibacterial effect is good. The three materials cooperate with the antibacterial wrap yarn to act together, so that the antibacterial and bacteriostatic effects of the fabric can be well improved, breeding of bacteria on the surface of the fabric is reduced, the safety is improved, and the service life is prolonged.
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Description

Technical Field

[0001] This utility model relates to the textile field, and more specifically, to an antibacterial fabric. Background Technology

[0002] Fabric refers to textiles made through processes such as weaving, knitting, and embossing. They are commonly used to make clothing, home furnishings, etc. When people are active indoors, especially in households with children or pets, they may transfer bacteria, viruses, and other microorganisms to the curtain fabric due to activities, coughing, or sneezing. Furthermore, curtain fabric is frequently in contact with outside air and easily accumulates dust and dirt, all of which provide conditions for bacterial growth. However, most curtain fabrics are currently made of cotton and polyester, which lacks effective antibacterial properties.

[0003] Therefore, a new solution is needed to address this problem. Utility Model Content

[0004] The purpose of this invention is to provide an antibacterial fabric to solve the above-mentioned problems.

[0005] The above-mentioned technical objective of this utility model is achieved through the following technical solution: an antibacterial fabric, comprising a fabric body, the fabric body being woven from warp yarns and weft yarns, the warp yarns comprising ramie fiber filaments, bamboo charcoal fiber filaments and antibacterial covering yarn, the ramie fiber filaments, bamboo charcoal fiber filaments and antibacterial covering yarn being arranged alternately in a ratio of 7:3:2.

[0006] By incorporating ramie fiber, bamboo charcoal fiber, and antibacterial coating yarn, the ramie fiber, containing trace elements such as benzoyl, pyrimidine, and purine, as well as its unique ultrafine porous structure, can inhibit various bacteria, possessing natural antibacterial, anti-mite, and deodorizing functions. It can effectively curb bacterial contamination of textiles for a relatively long time. Bamboo charcoal fiber also has excellent antibacterial and bacteriostatic effects and strong adsorption properties. Combined with the antibacterial coating yarn, the three work together to significantly enhance the antibacterial and bacteriostatic properties of the fabric, reducing bacterial growth on the fabric surface, thereby improving safety and service life.

[0007] Preferably, the antibacterial coating yarn includes an inner core and multiple nano-copper antibacterial fiber filaments, with the multiple nano-copper antibacterial fiber filaments arranged in parallel around the outer side of the inner core.

[0008] By incorporating multiple nano-copper antibacterial fiber filaments, the nano-copper antibacterial fiber possesses powerful antibacterial, anti-mildew, and deodorizing functions. It can kill various fungi by releasing copper ions, preventing their growth. Furthermore, it is combined with ramie fiber filaments and bamboo charcoal fiber filaments to enhance the antibacterial and bacteriostatic effects of the fabric. The unique wind tunnel structure of nano-copper can increase the specific surface area of ​​the particles, achieving the effect of deodorization. At the same time, the parallel winding of multiple nano-copper antibacterial fiber filaments can increase the contact area of ​​the nano-copper antibacterial fiber filaments to a certain extent, thereby improving the antibacterial effect.

[0009] Preferably, the inner core is made of twisted cotton fibers.

[0010] Preferably, the fabric body is divided into a first color zone, a second color zone, and a third color zone along the weft direction. The colors of the first color zone, the second color zone, and the third color zone gradually become lighter. The first color zone is formed by a first color yarn, the second color zone is formed by a second color yarn, and the third color zone is formed by a third color yarn. The first color yarn, the second color yarn, and the third color yarn together form a weft yarn group.

[0011] By dividing the fabric into three color zones—a first color zone, a second color zone, and a third color zone—each zone has a different color, the fabric, when made into curtains, can achieve different light transmittances from top to bottom. This allows for both sufficient brightness and relatively softer light in a small room.

[0012] Preferably, the length ratio of the first color region, the second color region, and the third color region in the latitudinal direction is 4:3:3.

[0013] By determining the length ratio of the first, second, and third color zones in the weft direction, the light transmittance of the fabric at various locations can be made more reasonable.

[0014] Preferably, the first colored yarn, the second colored yarn, and the third colored yarn are all made of cotton yarn and polyester filament twisted together, and the ratio of cotton yarn to polyester filament is 3:2.

[0015] In summary, this utility model has the following beneficial effects:

[0016] This invention utilizes ramie fiber filaments, bamboo charcoal fiber filaments, and antibacterial coating yarn. Ramie fiber contains trace elements such as benzoyl, pyrimidine, and purine, and possesses a unique ultrafine porous structure, which inhibits various bacteria, providing natural antibacterial, anti-mite, and deodorizing functions. This effectively prevents bacterial contamination of textiles for an extended period. Bamboo charcoal fiber also exhibits excellent antibacterial and bacteriostatic effects and strong adsorption properties. Combined with the antibacterial coating yarn, the three elements work synergistically to significantly enhance the fabric's antibacterial and bacteriostatic properties, reducing bacterial growth on the fabric surface and thus improving safety and lifespan. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the structure of this utility model;

[0018] Figure 2 This is a schematic diagram of the antibacterial coating yarn in this utility model.

[0019] Figure labels: 1. Ramie fiber filament; 2. Bamboo charcoal fiber filament; 3. Antibacterial coating yarn; 31. Inner core; 32. Nano copper antibacterial fiber filament; 4. First color yarn; 5. Second color yarn; 6. Third color yarn. Detailed Implementation

[0020] 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.

[0021] like Figure 1 and Figure 2 As shown, an antibacterial fabric includes a fabric body woven from warp and weft yarns. The warp yarns include ramie fiber filaments 1, bamboo charcoal fiber filaments 2, and antibacterial covering yarn 3. The ramie fiber filaments 1, bamboo charcoal fiber filaments 2, and antibacterial covering yarn 3 are arranged alternately in a ratio of 7:3:2. The antibacterial covering yarn 3 includes an inner core 31 and multiple nano-copper antibacterial fiber filaments 32. The multiple nano-copper antibacterial fiber filaments 32 are wound side by side around the inner core 31, which can increase the contact area of ​​the nano-copper antibacterial fiber filaments 32 to a certain extent. The inner core 31 is made of twisted cotton fibers.

[0022] Understandably, by incorporating ramie fiber 1, bamboo charcoal fiber 2, and nano-copper antibacterial fiber 32, the ramie fiber, containing trace elements such as benzoyl, pyrimidine, and purine, as well as its unique internal ultrafine porous structure, can inhibit various bacteria, possessing natural antibacterial, anti-mite, and deodorizing functions. It can effectively curb bacterial contamination of textiles for a relatively long time. Bamboo charcoal fiber also has excellent antibacterial and bacteriostatic effects and strong adsorption capacity. Nano-copper antibacterial fiber has powerful antibacterial, anti-mildew, and deodorizing functions, capable of killing various fungi by releasing copper ions and preventing fungal growth. It further enhances the antibacterial and bacteriostatic effects of the fabric by combining ramie fiber 1 and bamboo charcoal fiber 2. The unique wind tunnel structure of nano-copper can increase the specific surface area of ​​the particles, achieving the effect of deodorizing. The combined effect of these three elements can effectively enhance the antibacterial and bacteriostatic effects and adsorption and deodorizing functions of the fabric, thereby reducing bacterial growth on the fabric surface and improving safety and service life.

[0023] Furthermore, such as Figure 1 As shown, the fabric body is divided into a first color zone, a second color zone, and a third color zone along the weft direction. The colors of the first color zone, the second color zone, and the third color zone gradually become lighter. The length ratio of the first color zone, the second color zone, and the third color zone in the weft direction is 4:3:3, which can improve the rationality of the light transmittance of the fabric in different positions. The first color zone is formed by the first color yarn 4, the second color zone is formed by the second color yarn 5, and the third color zone is formed by the third color yarn 6. The first color yarn 4, the second color yarn 5, and the third color yarn 6 together form the weft yarn group. The first color yarn 4, the second color yarn 5, and the third color yarn 6 are all made of cotton yarn and polyester filament twisted together, and the ratio of cotton yarn to polyester filament is 3:2.

[0024] Understandably, by dividing the fabric into three color zones—a first color zone, a second color zone, and a third color zone—with each zone having a different color that gradually lightens, the fabric, when made into curtains, can achieve varying light transmittance from top to bottom. This allows for both sufficient brightness and relatively softer light in a smaller room.

[0025] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.

Claims

1. An antibacterial cloth, characterized by: The utility model provides a kind of antibacterial cloth, including cloth body, the cloth body is woven by warp group and weft group, the warp group includes ramie fiber silk (1), bamboo charcoal fiber silk (2) and antibacterial covering yarn (3), the ramie fiber silk (1), bamboo charcoal fiber silk (2) and antibacterial covering yarn (3) are arranged in order with the proportion of 7:3:

2.

2. The antibacterial cloth according to claim 1, characterized in that: The antibacterial covering yarn (3) includes inner core (31) and multiple nanometer copper antibacterial fiber silk (32), multiple nanometer copper antibacterial fiber silk (32) is wound outside inner core (31) in parallel.

3. The antimicrobial fabric of claim 2, wherein: The inner core (31) is twisted by cotton fiber.

4. The antimicrobial fabric of claim 1, wherein: The cloth body is divided into first color area, second color area and third color area along weft direction, the color of first color area, second color area and third color area is lighter in turn, first color area is formed by first color yarn (4), second color area is formed by second color yarn (5), third color area is formed by third color yarn (6), first color yarn (4), second color yarn (5) and third color yarn (6) jointly constitute weft group.

5. The antimicrobial fabric of claim 4, wherein: The length ratio of first color area, second color area and third color area in weft direction is 4:3:

3.

6. The antimicrobial fabric of claim 4, wherein: First color yarn (4), second color yarn (5) and third color yarn (6) are twisted by cotton yarn and polyester silk.