One-way moisture-conducting fabric

By using a weaving structure design of hydrophobic and hydrophilic fibers in the inner and outer layers, the problem of poor durability of traditional one-way moisture-wicking fabrics is solved, achieving a rapid moisture-wicking and drying effect.

CN224075199UActive Publication Date: 2026-04-03SHAOXING YUELING TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Traditional unidirectional moisture-wicking fabrics suffer from poor durability of chemical auxiliaries after multiple washes, affecting their unidirectional moisture-wicking properties.

Method used

The inner layer is made of hydrophobic fibers to form a mesh layer and the outer layer is made of hydrophilic fibers to form a microporous layer. By utilizing the difference in thickness and the difference in pore size, sweat can be quickly diffused and absorbed. The outer layer increases air circulation to accelerate evaporation.

Benefits of technology

It achieves rapid moisture wicking and drying of the fabric, keeps the inner layer dry, and improves the fabric's durability and moisture wicking performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a one-way moisture conducting fabric which sequentially comprises an outer layer and an inner layer from outside to inside, the outer layer comprises a first hole and a first unit, the inner layer comprises a second net and a second unit, the center of the first hole is axially aligned with the center of the second net, and the aperture L1 of the first hole is smaller than the width L2 of the second net. The inner layer is woven by the hydrophobic fibers to form the net-shaped layer, the thickness of the net-shaped area is smaller than that of the other areas of the inner layer, so that sweat is rapidly diffused through the thickness difference, the outer layer is woven by the hydrophilic fibers to form the micropore layer, and the sweat is rapidly diffused through the opposite holes and the net-shaped area and the size difference between the holes and the net-shaped area. The sweat of the inner layer can be quickly adsorbed by the hydrophilic fibers of the outer layer, so that the inner layer is kept dry, meanwhile, air circulation is performed through the holes of the outer layer, air circulation among the fibers in the outer layer and air circulation on the surface of the fabric are increased, the sweat can be quickly evaporated, and the fabric is kept dry.
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Description

Technical Field

[0001] This utility model relates to the field of fabrics, and more specifically, to a one-way moisture-wicking fabric. Background Technology

[0002] Traditional unidirectional moisture-wicking fabrics use chemical auxiliaries to perform localized hydrophilic and hydrophobic finishing on the fabric. However, because the durability of chemical auxiliaries is poor after multiple washes, it affects the unidirectional moisture-wicking properties of the fabric. Utility Model Content

[0003] The purpose of this invention is to overcome the shortcomings of the prior art and provide a one-way moisture-wicking fabric. The inner layer is made of hydrophobic fibers woven into a mesh layer, and the thickness of the mesh area is lower than that of the rest of the inner layer. This thickness difference allows sweat to spread quickly. The outer layer is made of hydrophilic fibers woven into a microporous layer. The relative size of the pores and the mesh area allows the sweat in the inner layer to be quickly absorbed by the hydrophilic fibers of the outer layer, thus keeping the inner layer dry. At the same time, the air circulation through the pores of the outer layer increases the air circulation between the fibers in the outer layer and on the surface of the fabric, allowing sweat to evaporate quickly and keeping the fabric dry.

[0004] To achieve the above objectives, the present invention adopts the following technical solution: a one-way moisture-wicking fabric, comprising an outer layer and an inner layer from the outside to the inside, wherein the outer layer includes a first eyelet and a first unit, and the inner layer includes a second mesh and a second unit, wherein the central axis of the first eyelet is aligned with that of the second mesh, and the aperture L1 of the first eyelet is smaller than the width L2 of the second mesh.

[0005] The present invention is further configured such that the thickness H1 of the second mesh is half the thickness H2 of the second unit, and the second mesh is higher than the second unit.

[0006] The present invention is further configured such that the fabric is woven in a 28-way loop as one cycle, the outer layer is formed by the needle cylinder knitting of the 28-way loop, and the inner layer is formed by the needle plate knitting of the 28-way loop.

[0007] The present invention is further configured such that the syringes of the 1st, 3rd, 5th, 7th, 9th, 11th, 13th, 15th, 17th, 19th, 21st, 23rd, 25th, and 27th coil rows are knitted with tufted loops and floats, and the syringes of the 2nd, 4th, 6th, 8th, 10th, 12th, 14th, 16th, 18th, 20th, 22nd, 24th, 26th, and 28th coil rows are knitted with loops and floats.

[0008] The present invention is further configured such that, in the outer layer, the number of loops in the first eyelet is one-third of the number of loops in the first unit.

[0009] The present invention is further configured such that the needle plates of the 1st, 3rd, 5th, 7th, 9th, 11th, 13th, 15th, 17th, 19th, 21st, 23rd, 25th, and 27th coil rows are knitted with loops and floats, while the needle plates of the 2nd, 4th, 6th, 8th, 10th, 12th, 14th, 16th, 18th, 20th, 22nd, 24th, 26th, and 28th coil rows are all knitted with floats.

[0010] The present invention is further configured such that, in the inner layer, the number of floating threads woven in the second mesh is three times the number of looped threads woven in the second unit.

[0011] The present invention is further configured such that the outer layer is made of 40D cotton fiber and the inner layer is made of 75D ultrafine polyester.

[0012] The present invention is further configured such that the coil density of the outer layer is greater than the coil density of the inner layer.

[0013] The present invention is further configured such that the coil density of the outer layer is 28 pins / inch and the coil density of the inner layer is 16 pins / inch.

[0014] In summary, this utility model has the following beneficial effects:

[0015] The inner layer is made of hydrophobic fibers woven into a mesh layer, with the mesh area being thinner than the inner layer, allowing sweat to spread quickly. The outer layer is made of hydrophilic fibers woven into a microporous layer. When the body sweats, the thinner mesh area is more easily absorbed by the hydrophilic fibers of the outer layer, allowing the entire inner layer to conduct sweat to the outer layer. The pores in the outer layer increase air circulation between the fibers, thus accelerating the fabric's moisture wicking and sweat evaporation. Furthermore, the inner mesh area is larger than the outer pores, and the mesh area is opposite to the pores, allowing sweat to be quickly transferred through the pores and the thin mesh, making it easier and faster to remove sweat. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure of a one-way moisture-wicking fabric in this embodiment;

[0017] Figure 2 This is a schematic diagram of the front structure of a unidirectional moisture-wicking fabric in this embodiment;

[0018] Figure 3 This is a schematic diagram of the reverse side structure of a unidirectional moisture-wicking fabric in this embodiment;

[0019] Figure 4 for Figure 1 A sectional view along the A-A direction;

[0020] Figure 5 for Figure 4Enlarged view of point B in the middle;

[0021] Figure 6 This is a triangular configuration diagram of a unidirectional moisture-wicking fabric in this embodiment;

[0022] Figure 7 This is a weaving pattern of a unidirectional moisture-wicking fabric in this embodiment.

[0023] Reference numerals: outer layer 100, first eyelet 101, first unit 102, inner layer 200, second mesh 201, second unit 202. Detailed Implementation

[0024] 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.

[0025] like Figure 1 — Figure 7As shown, this embodiment discloses a unidirectional moisture-wicking fabric. The fabric is arranged in a cycle of 28 loops. Each loop includes 2 purl needles and 4 knit needles. The 2 purl needles are located in the needle plate, and the 4 knit needles are located in the needle cylinder. The purl needles knit to form the reverse side of the fabric, and the knit needles knit to form the right side. Therefore, the needle cylinder knitting of the 28 loops forms the outer layer 100, and the needle plate knitting of the 28 loops forms the inner layer 200. Thus, the fabric is wicked from the outside... The inner layer consists of an outer layer of 100 and an inner layer of 200. This is because, in the 1st to 28th coil rows, the needle cylinders for coil rows 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, and 27 are for tucked-in and floated-out knitting, while the needle cylinders for coil rows 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, and 28 are for looped and floated-out knitting. This is because the needle cylinder is... The needle is inserted to knit, and the knitting forms the outer layer 100. Therefore, through the difference between tuck knitting and loop knitting, the outer layer 100 includes the first eyelet 101 and the first unit 102. The tuck knitting of the needle cylinder in the 1st, 3rd, 5th, 7th, 9th, 11th, 13th, 15th, 17th, 19th, 21st, 23rd, 25th, and 27th loop rows forms the first eyelet 101, while the loop knitting of the needle cylinder in the 2nd, 4th, 6th, 8th, 10th, 12th, 14th, 16th, 18th, 20th, 22nd, 24th, 26th, and 28th loop rows forms the first unit 102. Since the outer layer 100 is made of 40D cotton fiber, after the outer layer 100 absorbs water, the air circulation inside the first unit 102 is increased through the first eyelet 101, so that the sweat absorbed by the cotton fiber can evaporate quickly, so that the cotton fiber can continuously absorb the moisture of the inner layer 200, thereby keeping the inner layer 200 dry.

[0026] In the 1st to 28th loop rows, the needles of loop rows 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, and 27 are knitted with both loops and floats. The needles of loop rows 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, and 28 are all knitted with floats. Because the needles are knitted with padded needles, and the knitting forms the inner layer 100, and because the loop knitting of the needles in loop rows 1, 5, 9, 13, 17, 21, and 25 is spaced 3 loops apart with floats, and similarly, the loop knitting of the needles in loop rows 3, 7, 11, 15, 19, 23, and 27 is spaced 3 loops apart with floats, the inner layer 200 includes the second mesh 201 and the second unit 2. 02, and the floating yarn weaves to form a second mesh 201, and the loop weaves to form a second unit 202. The thickness H1 of the second mesh 201 is half the thickness H2 of the second unit 202. Because the inner layer 200 is made of 75D ultrafine polyester, the hydrophobic fibers of the inner layer 200 transfer sweat but do not absorb sweat. The hydrophilic fibers of the outer layer 100 absorb the sweat produced by the human body and evaporate it quickly through the first pore 101 on the surface of the outer layer 100, so that the inside of the fabric remains dry. Because the thickness H1 of the second mesh 201 is half the thickness H2 of the second unit 202, the second mesh 201 is thinner than the second unit 202. Therefore, the second mesh 201 diffuses the sweat and allows the sweat to be absorbed by the outer layer 100 more quickly.

[0027] Because the number of loops in the first eyelet 101 in the outer layer 100 is one-third the number of loops in the first unit 102, while the number of floats in the second mesh 201 in the inner layer 200 is three times the number of loops in the second unit 202, and because the loop density of the outer layer 100 is greater than that of the inner layer 200 (28 stitches / inch for the outer layer 100 and 16 stitches / inch for the inner layer 200), the overall density of the inner layer 200 is lower than that of the outer layer 100. Therefore, when the sweat produced by the human body is absorbed by the inner layer 200, the rate at which the outer layer 100 absorbs sweat increases, allowing the inner layer 200 to expel sweat more quickly, thus keeping the fabric and the human body dry.

[0028] Because the needle cylinders of the 1st, 3rd, 5th, 7th, 9th, 11th, 13th, 15th, 17th, 19th, 21st, 23rd, 25th, and 27th coil rows form the first eyelet 101 through loop knitting, and the first eyelet 101 is located in the middle of the coil rows of the three parallel needle plate float knitting, and the needle plate float knitting forms the second mesh 201, the central axis of the first eyelet 101 and the second mesh 201 are aligned. Because the number of float knittings in the second mesh 201 is three times the number of loop knittings in the second unit 202, the second mesh 201 is higher than the second unit 202. Therefore, the protrusion of the second mesh 201 forms a relatively close relative with the first eyelet 101, and the aperture L1 of the first eyelet 101 is smaller than the width L2 of the second mesh 201. Because the coil density of the inner layer 200 is lower than that of the outer layer 100, the inner layer 200 is thinner than the outer layer 100. Therefore, the structure of the second mesh 201 is thinner, which increases the diffusion space of sweat. Since the second mesh 201 is opposite to the first pore 101, sweat can quickly accumulate through the first pore 101 and evaporate quickly. Furthermore, the adsorption of sweat by the hydrophilic fibers of the first unit 102 increases the sweat adsorption rate. At the same time, it increases the air circulation between the inside and the surface of the fabric, increasing the evaporation rate of sweat. And because the second unit 202 is a hydrophobic fiber, it forms a distance with the outer layer 100, thereby increasing the air circulation between the second unit 202 and the outer layer 100 and reducing the backflow of sweat.

[0029] 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. A one-way moisture conducting fabric, characterized in that, From outside to inside, it includes outer layer (100) and inner layer (200) in turn, the outer layer (100) includes first eyelet (101) and first unit (102), the inner layer (200) includes second mesh (201) and second unit (202), the central axis of the first eyelet (101) and the second mesh (201) is aligned, and the aperture L1 of the first eyelet (101) is less than the width L2 of the second mesh (201).

2. A one-way moisture conducting fabric according to claim 1, wherein, The thickness H1 of the second mesh (201) is one half of the thickness H2 of the second unit (202), and the second mesh (201) is higher than the second unit (202).

3. The one-way moisture conducting fabric according to claim 1, wherein, The fabric is a cycle of 28 courses, and the needle cylinder of 28 courses is knitted to form the outer layer (100), and the dial of 28 courses is knitted to form the inner layer (200).

4. A one-way moisture conducting fabric according to claim 3, wherein, The needle cylinder of the 1st, 3rd, 5th, 7th, 9th, 11th, 13th, 15th, 17th, 19th, 21st, 23rd, 25th, 27th courses is knitted with tuck and float, and the needle cylinder of the 2nd, 4th, 6th, 8th, 10th, 12th, 14th, 16th, 18th, 20th, 22nd, 24th, 26th, 28th courses is knitted with loop and float.

5. A one-way moisture conducting fabric according to claim 4, wherein, In the outer layer (100), the number of tuck knitting of the first eyelet (101) is one third of the number of loop knitting of the first unit (102).

6. A one-way moisture conducting fabric according to claim 3, wherein, The dial of the 1st, 3rd, 5th, 7th, 9th, 11th, 13th, 15th, 17th, 19th, 21st, 23rd, 25th, 27th courses is knitted with loop and float, and the dial of the 2nd, 4th, 6th, 8th, 10th, 12th, 14th, 16th, 18th, 20th, 22nd, 24th, 26th, 28th courses is knitted with float.

7. A one-way wicking fabric according to claim 6, wherein, In the inner layer (200), the number of float knitting of the second mesh (201) is 3 times the number of loop knitting of the second unit (202).

8. The one-way wicking fabric of claim 1, wherein, The outer layer (100) uses 40D cotton fiber, and the inner layer (200) uses 75D superfine polyester.

9. The one-way wicking fabric of claim 1, wherein, The loop density of the outer layer (100) is greater than the loop density of the inner layer (200).

10. A one-way moisture conducting fabric according to claim 8, wherein, The loop density of the outer layer (100) is 28 needles per inch, and the loop density of the inner layer (200) is 16 needles per inch.