Antibacterial fabric

By using a double-layer antibacterial fabric design and a special weaving method for the outer and inner layers, the problem of slow moisture loss in curtain fabrics is solved, achieving rapid drying and improved antibacterial performance, thus reducing the risk of bacterial growth.

CN223918872UActive Publication Date: 2026-02-17WUJIANG DANGUAN CO LTD
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Patent Information

Application Number
CN202423068885.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-12
Publication Date
2026-02-17
Estimated Expiration
2034-12-12

AI Technical Summary

Technical Problem

Current curtain fabrics lose moisture slowly after washing, which increases the possibility of bacterial growth, and the thickness of the fabric affects its antibacterial properties.

Method used

The antibacterial fabric features a double-layer structure. The outer layer is woven with structural yarn and moisture-wicking yarn, while the inner layer is woven with antibacterial yarn and has a perforated structure. The outer and inner layers are connected by a connecting yarn, which is formed by a multi-strand moisture-wicking spiral. The perforated structure design increases the air contact area and reduces the rate of moisture loss.

Benefits of technology

It accelerates the rate of moisture loss, reduces the risk of bacterial growth, and improves the fabric's antibacterial properties and overall lightweight effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an antibacterial fabric, which relates to the fabric technology, and is characterized in that the antibacterial fabric comprises an outer layer and an inner layer, the outer layer is provided with raised lines, the outer layer adopts a leno weave formed by weaving structural yarns and moisture dissipation yarns together, and the inner layer adopts a through hole weave formed by weaving antibacterial yarns in a warp and weft manner. The protruding strips can well increase the contact area of the outer layer and air, the loss speed of water on the fabric can be well increased, bacterium breeding is reduced by reducing water residues on the fabric, the inner layer formed by weaving the antibacterial yarn can effectively guarantee the overall antibacterial property of the fabric, and the antibacterial effect of the fabric is improved. The inner layer is provided with a plurality of holes due to the woven through hole texture, part of the side, facing the inner layer, of the outer layer can be in contact with air through the through hole texture, the loss speed of water on the outer layer is further increased, meanwhile, due to the fact that the weaving density of the through hole texture is low, the quality of the inner layer can be well reduced, and the service life of the inner layer is prolonged. Therefore, the overall quality of the fabric is reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to face fabric technology, more specifically, it relates to antibacterial fabric. BACKGROUND

[0002] The existing curtain is mostly made of fabric, since the curtain is used to block light and provide privacy space for people, the curtain is usually made of high-density and thick woven fabric.

[0003] The curtain is close to the window, which causes the curtain to easily get dust, in order to reduce the possibility of breeding bacteria on the curtain, the prior art uses woven fabric with good antibacterial performance to make the curtain, after washing the curtain, the water on the fabric is slow to dissipate due to the thick fabric, therefore, a new antibacterial woven fabric structure is needed. SUMMARY

[0004] In view of the deficiencies in the prior art, the utility model aims at providing antibacterial fabric.

[0005] The above technical purpose of the utility model is realized by the following technical scheme: the antibacterial fabric comprises an outer layer and an inner layer, a plurality of convex strips are arranged on the side of the outer layer away from the inner layer, the plurality of convex strips are linearly arranged along the length direction of the outer layer, the outer layer is woven with structural yarn and moisture-dissipating yarn to form a leno structure, and the inner layer is woven with antibacterial yarn to form a mesh structure.

[0006] The utility model is further provided as follows: the outer layer and the inner layer are connected by connecting yarn, and the connecting yarn is formed by twisting a plurality of moisture-conducting yarns.

[0007] The utility model is further provided as follows: the leno structure is composed of one moisture-dissipating yarn and two structural yarns, the two structural yarns are arranged in parallel as ground warp, and the moisture-dissipating yarn is wound on the ground warp as twisted warp, and the weft yarns in the leno structure are all composed of structural yarns.

[0008] The utility model is further provided as follows: four structural yarns are arranged between adjacent two leno structures.

[0009] The utility model is further provided as follows: the warp points of the mesh structure are floats, and the weft points are sinks, and the cycle of the mesh structure is sink-float-sink-float-sink-float, float-float-sink-sink-sink, sink-float-sink-float-sink-float, sink-sink-sink-float-float-float, float-sink-float-sink-float-sink.

[0010] The utility model is further provided as follows: the structural yarn is twisted by a plurality of low-elasticity polyester fibers, and the moisture-dissipating yarn is twisted by a plurality of special-shaped polyester fibers with a cross section in the shape of double cross.

[0011] The present invention is further configured such that: the moisture-wicking yarn is made of several island silk fibers twisted together, and the antibacterial yarn is made of several bamboo fibers twisted together.

[0012] In summary, this utility model has the following beneficial effects: the raised strips on the outer layer can effectively increase the contact area between the outer layer and the air, which can effectively accelerate the evaporation of moisture from the fabric. By reducing the residual moisture on the fabric, it can reduce bacterial growth. The inner layer formed by using antibacterial yarn can effectively ensure the overall antibacterial properties of the fabric. The perforated structure formed by the weave creates more holes in the inner layer, allowing some parts of the outer layer facing the inner layer to contact the air through the perforated structure, further accelerating the evaporation of moisture from the outer layer. At the same time, due to the low weave density of the perforated structure, it can effectively reduce the mass of the inner layer, thereby reducing the overall mass of the fabric. Attached Figure Description

[0013] Figure 1 This is a cross-sectional schematic diagram of the present invention;

[0014] Figure 2 This is a schematic diagram of the weaving of the outer layer in this utility model;

[0015] Figure 3 This is a schematic diagram of the weaving of the inner layer in this utility model.

[0016] In the diagram: 1. Outer layer; 2. Inner layer; 3. Raised stripe; 4. Structural yarn; 5. Moisture-wicking yarn; 6. Antibacterial yarn; 7. Connecting yarn. Detailed Implementation

[0017] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0018] Antibacterial fabrics, such as Figure 1 As shown, the fabric includes an outer layer 1 and an inner layer 2. The outer layer 1 has several raised strips 3 on its side facing away from the inner layer 2. These raised strips 3 are arranged in a linear array along the length of the outer layer 1. The outer layer 1 is woven from structural yarn 4 and moisture-wicking yarn 5 to form a leno weave, with the raised strips 3 formed on the leno weave. The inner layer 2 is woven from antibacterial yarn 6 to form a perforated weave. The raised strips 3 on the outer layer 1 can effectively increase the contact area between the outer layer 1 and the air, thus accelerating the evaporation of moisture from the fabric. By reducing the residual moisture on the fabric, bacterial growth is reduced. The inner layer 2, woven with antibacterial yarn 6, effectively ensures the overall antibacterial properties of the fabric. The perforated weave creates numerous pores in the inner layer 2, allowing some areas of the outer layer 1 facing the inner layer 2 to also come into contact with the air through the perforated weave, further accelerating the evaporation of moisture from the outer layer 1. Simultaneously, the perforated weave, due to its lower weave density, can effectively reduce the mass of the inner layer 2, thereby reducing the overall mass of the fabric.

[0019] As Figure 1 and Figure 2 shown, the outer layer 1 and the inner layer 2 are connected by connecting yarn 7, the connecting yarn 7 is formed by spirally twisting a plurality of moisture-conducting yarns, the connecting yarn 7 is inserted along the width direction of the fabric on the outer layer 1 and the inner layer 2, the connecting yarn 7 is formed by spirally twisting at least three or more moisture-conducting yarns, which can ensure the strength of the connecting yarn 7 itself and the connection strength of the outer layer 1 and the inner layer 2, due to the arrangement of the moisture-dispersing yarn 5 on the outer layer 1, the water disperses quickly on the outer layer 1, which forms a humidity difference between the inner layer 2 and the outer layer 1, the existence of the humidity difference makes the water on the inner layer 2 continuously transfer to the outer layer 1, the connecting yarn 7 formed by spirally twisting a plurality of moisture-conducting yarns can further accelerate the speed of water transfer from the inner layer 2 to the outer layer 1, wherein the insertion point and the exit point of the connecting yarn 7 on the outer layer 1 are located on both sides of the convex strip 3, which makes part of the water on the connecting yarn 7 directly transfer to the convex strip 3 and directly disperse, the above arrangement makes the water on the fabric disperse quickly, the leno weave is composed of one moisture-dispersing yarn 5 and two structural yarns 4, wherein the two structural yarns 4 are arranged in parallel as ground warp, and one moisture-dispersing yarn 5 is twisted around the ground warp as weft, the weft of the leno weave is composed of structural yarns 4, and four structural yarns 4 are arranged between adjacent two leno weaves, which makes the moisture-dispersing yarn 5 protrude on the outer layer 1, increases the contact area between the moisture-dispersing yarn 5 and the air, and makes the water on the structural yarn 4 quickly transfer to the moisture-dispersing yarn 5 by twisting the moisture-dispersing yarn 5 around the ground warp.

[0020] As Figure 3 shown, the warp points of the openwork weave are floats, and the weft points are sinks, the cycle of the openwork weave is sink-float-sink-float-sink-float, float-float-sink-sink-sink, sink-float-sink-float-sink, float-sink-float-sink-sink, sink-sink-float-float-float, float-sink-float-sink-float, and specifically, the loom uses four-shed harness intermittent threading method to weave the inner layer 2 by using the antibacterial yarn 6, the structural yarn 4 is twisted by a plurality of low-elasticity polyester fibers, the moisture-dispersing yarn 5 is twisted by a plurality of special-shaped polyester fibers with double-cross section, the low-elasticity polyester fiber has good tensile property, which can ensure the tensile strength of the fabric, the special-shaped polyester fiber with double-cross section has large surface area, which can ensure the contact area between the water on the moisture-dispersing yarn 5 and the air, thereby ensuring the evaporation speed of the water on the moisture-dispersing yarn 5, the moisture-conducting yarn is twisted by a plurality of sea-island fiber, the antibacterial yarn 6 is twisted by a plurality of bamboo fibers, the bamboo fiber has good antibacterial property, which can ensure the inhibition effect of the antibacterial yarn 6 on bacteria, the pores formed in the sea-island fiber have good capillary effect, which can well conduct the water along the moisture-conducting yarn.

[0021] The above merely is preferred implementation manner of the present application, the protection scope of the present application is not only limited to the above examples, and belongs to the technical scheme under the idea of the present application all belongs to the protection scope of the present application. It should be pointed out that, for ordinary skilled person in the art, under the premise of not departing from the principle of the present application, some improvements and decorations, these improvements and decorations should also be considered as the protection scope of the present application.

Claims

1. An antibacterial fabric, characterized in that: It includes an outer layer (1) and an inner layer (2). The outer layer (1) has several protruding strips (3) on the side facing away from the inner layer (2). The protruding strips (3) are arranged in a linear array along the length of the outer layer (1). The outer layer (1) is woven with structural yarn (4) and moisture-wicking yarn (5) to form a leno fabric. The inner layer (2) is woven with antibacterial yarn (6) to form a perforated fabric.

2. The antibacterial fabric according to claim 1, characterized in that: The outer layer (1) and the inner layer (2) are sewn together by connecting yarn (7), which is formed by multiple strands of moisture-wicking yarn spirally together.

3. The antibacterial fabric according to claim 2, characterized in that: The leno weave consists of a single wet-loose yarn (5) and two structural yarns (4) forming the warp yarns. The two structural yarns (4) are arranged in parallel as the ground warp, and the single wet-loose yarn (5) is wound around the ground warp as the twist warp. The weft yarns in the leno weave are all composed of structural yarns (4).

4. The antibacterial fabric according to claim 3, characterized in that: Four structural yarns (4) are spaced apart between two adjacent gauze structures.

5. The antibacterial fabric according to claim 4, characterized in that: The warp point of the perforated structure is floating, and the weft point is sinking. The cycle of the perforated structure is sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating, sinking and floating.

6. The antibacterial fabric according to claim 5, characterized in that: The structural yarn (4) is made by twisting several low-elastic polyester fibers, and the moisture-wicking yarn (5) is made by twisting several irregularly shaped polyester fibers with a double cross section.

7. The antibacterial fabric according to claim 6, characterized in that: The moisture-wicking yarn is made by twisting several island silk fibers, and the antibacterial yarn (6) is made by twisting several bamboo fibers.