A sun-proof oxford fabric

By incorporating moisture-wicking blocks and moisture-wicking strips into the Oxford cloth, the problems of insufficient light-blocking, breathability, and moisture wicking are solved, achieving both quick-drying effect and comfortable wearability for the blackout fabric.

CN224337851UActive Publication Date: 2026-06-09SUZHOU PANJIU TEXTILE TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SUZHOU PANJIU TEXTILE TECH CO LTD
Filing Date
2025-07-08
Publication Date
2026-06-09

AI Technical Summary

Technical Problem

While existing Oxford cloth offers good light-blocking properties, it suffers from poor breathability and moisture wicking, resulting in stuffy and hot clothing that cannot dissipate sweat quickly, thus affecting comfort.

Method used

Design a light-blocking Oxford cloth with a light-blocking layer woven with a patterned weave, incorporating moisture-absorbing blocks and moisture-dissipating strips. The ventilation holes are connected to the ventilation space, allowing the moisture-absorbing blocks to absorb sweat in a timely manner and the moisture-dissipating strips to quickly dissipate it, increasing the gap between the skin and the fabric and improving air circulation.

Benefits of technology

While maintaining its sun-blocking effect, it improves breathability and moisture wicking, reduces stuffiness, achieves quick-drying effect, and keeps skin dry and comfortable to wear.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an Oxford cloth is shaded, it is related to textile technical field, and its technical scheme main points are: including shading layer, the two sides of shading layer are equipped with a plurality of hygroscopic piece no.
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Description

Technical Field

[0001] This utility model relates to the field of textile technology, and more specifically, to a light-blocking Oxford cloth. Background Technology

[0002] Oxford cloth, also known as Oxford textile, is a versatile and widely used fabric, including varieties such as checkered, stretch, nylon, and jacquard. Oxford cloth is usually made of polyester or nylon fibers. Due to their tight molecular structure, polyester and nylon fibers can effectively block sunlight from penetrating, giving Oxford cloth a good light-blocking effect, which is widely used in the production of sun-protective clothing.

[0003] However, polyester and nylon fibers have poor moisture absorption and breathability, making clothing made of Oxford cloth feel stuffy and hot when worn. It is easy to sweat, and the sweat cannot be quickly wicked away through the fabric and remains on the skin surface. This makes the clothing stick to the skin due to the sweat, thus affecting the comfort of wearing it.

[0004] Therefore, it is necessary to design an Oxford cloth that can improve breathability and moisture wicking while ensuring light blocking. Utility Model Content

[0005] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a light-blocking Oxford cloth.

[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a light-blocking Oxford cloth, comprising a light-blocking layer, wherein a plurality of moisture-absorbing blocks I and a plurality of moisture-absorbing blocks II are respectively provided on both sides of the light-blocking layer, the plurality of moisture-absorbing blocks II are arranged in an array, and a moisture-dispersing strip is added to the plurality of moisture-absorbing blocks II along the weft direction of the light-blocking layer, the moisture-dispersing strip is supported by the plurality of moisture-absorbing blocks II and forms a plurality of ventilation spaces between it and the light-blocking layer, the light-blocking layer is provided with a plurality of ventilation holes, the diameter of the ventilation holes is smaller than the width of the moisture-dispersing strip and is located below the moisture-dispersing strip, and the ventilation holes are interconnected with the ventilation spaces.

[0007] The present invention is further configured such that the width of the first moisture-absorbing block is the same as the width of the second moisture-absorbing block, and a plurality of the first and second moisture-absorbing blocks are staggered along the warp direction of the light-shielding layer.

[0008] The present invention is further configured such that: the length of the second moisture-absorbing block is greater than the width of the moisture-dispersing strip, and the area of ​​the moisture-dispersing strip between adjacent second moisture-absorbing blocks is fixed to the light-blocking layer by sewing with light-blocking yarn.

[0009] The present invention is further configured such that: the weaving structure of the light-shielding layer is a warp-patterned weave, the weaving yarn of the light-shielding layer includes light-shielding yarn and moisture-wicking yarn, the light-shielding yarn serves as the ground warp and ground weft yarn of the warp-patterned weave, and the moisture-wicking yarn serves as the pattern yarn of the warp-patterned weave.

[0010] The present invention is further configured such that: both the first moisture-absorbing block and the second moisture-absorbing block are formed of wavy yarn, and the moisture-absorbing properties of the first moisture-absorbing block, the second moisture-absorbing block, and the moisture-dispersing strip are the same and greater than the moisture-absorbing properties of the light-shielding layer.

[0011] The present invention is further configured such that the weaving structure of the moisture-wicking strip is a plain weave, and the moisture-wicking yarn serves as the warp and weft yarns of the plain weave.

[0012] In summary, this utility model has the following beneficial effects: the light-blocking layer made of polyester fibers with a high weave density can effectively block sunlight penetration; the air circulation effect on both sides of the light-blocking layer is improved through several breathable holes; the support of several moisture-absorbing blocks increases the gap between the skin and the light-blocking layer, thereby obtaining a breathable wearing experience; the support of moisture-absorbing blocks allows gaps between the sides of the moisture-diffusing strips and the light-blocking layer, allowing air circulation; at the same time, the area of ​​the moisture-diffusing strips is sufficient to cover the vents, thus ensuring breathability while preventing sunlight from directly penetrating the light-blocking layer; the setting of several moisture-diffusing strips increases the moisture-diffusing area of ​​the fabric; several moisture-absorbing blocks can absorb sweat produced by the skin in time and transfer it to several moisture-diffusing strips through several moisture-absorbing blocks to fully contact the airflow of the outside environment for rapid moisture dissipation, thereby obtaining a quick-drying effect, keeping the skin and fabric dry, and making the fabric less likely to stick to the skin. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the structure of this utility model;

[0014] Figure 2 This is a cross-sectional view of the present invention;

[0015] Figure 3 for Figure 2 Enlarged view of point A in the middle;

[0016] Figure 4 This is a diagram of the weave structure of the light-shielding layer.

[0017] In the diagram: 1. Light-blocking layer; 2. Moisture-absorbing block two; 3. Moisture-absorbing block one; 4. Moisture-dispersing strip; 5. Ventilation space; 6. Ventilation hole. Detailed Implementation

[0018] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0019] Example: A light-blocking Oxford cloth, such as Figures 1-3As shown, the light-shielding layer 1 includes a light-shielding layer 1. Several moisture-absorbing blocks 2 are arranged in an array on one side of the light-shielding layer 1, and several moisture-absorbing blocks 3 are arranged in an array on the side of the light-shielding layer 1 away from the moisture-absorbing blocks 2. The width of the moisture-absorbing blocks 3 is the same as the width of the moisture-absorbing blocks 2. The moisture-absorbing blocks 3 and 2 are arranged alternately along the warp direction of the light-shielding layer 1. The contact area between the light-shielding layer 1 and the skin is reduced by the support of the moisture-absorbing blocks 3, thereby increasing the gap between the skin and the light-shielding layer 1, making it difficult for the light-shielding layer 1 to adhere to the skin. A moisture-dispersing strip 4 is added to the moisture-absorbing blocks 2 along the weft direction of the light-shielding layer 1. The length of the moisture-absorbing blocks 2 is greater than the width of the moisture-dispersing strip 4. The area of ​​the moisture-dispersing strip 4 between adjacent moisture-absorbing blocks 2 is sewn to the light-shielding layer 1 by a sewing machine using light-shielding yarn, so that the moisture-dispersing strip 4 is supported by the moisture-absorbing blocks 2 and forms several triangular ventilation spaces 5 between it and the light-shielding layer 1.

[0020] like Figure 1 and Figure 4 As shown, the weave structure of the light-shielding layer 1 is set as a warp-patterned weave, and the weave density of the light-shielding layer 1 is 212*205 / 10cm. 2 The yarns of the light-blocking layer 1 include light-blocking yarns and moisture-wicking yarns. The light-blocking yarns are fed into the multi-arm loom as the ground weft yarns of the patterned weave, and the moisture-wicking yarns are fed into the multi-arm loom as the patterned yarns of the patterned weave. The ground weave of the patterned weave forms the light-blocking layer 1. The light-blocking yarns are twisted by a twisting machine to form multiple strands of the first strand. The first strand is twisted by a twisting machine to form polyester fibers. Due to its tight molecular structure, polyester fibers can effectively limit the penetration of sunlight, making the light-blocking layer 1, which is made of polyester fibers with a high weave density, relatively tight and with good light-blocking effect.

[0021] like Figure 1 , Figure 3 and Figure 4As shown, the light-blocking layer 1 is perforated with several ventilation holes 6 through a laser perforation machine. Due to the tight interweaving of warp and weft yarns in the patterned weave, the ventilation holes 6 are not easily loosened while being cut. At the same time, the high temperature generated during laser cutting can seal the cut edges, thus ensuring the stability of the light-blocking layer 1 structure. The diameter of the ventilation holes 6 is smaller than the width of the moisture-wicking strip 4 and is located below the moisture-wicking strip 4, so that the ventilation holes 6 and the ventilation space 5 are interconnected. The moisture-wicking strip 4 is supported by several moisture-absorbing strips 2 and there is a certain gap between it and the light-blocking layer 1, so that outside air can enter the ventilation holes 6 from both sides of the moisture-wicking strip 4. The interconnected ventilation holes 6 and ventilation space 5 improve the air circulation effect on both sides of the light-blocking layer 1, thereby improving the breathability of the light-blocking layer 1. This makes the clothing less stuffy when worn. At the same time, the moisture-wicking strip 4 can block sunlight from directly penetrating the light-blocking layer 1 through the ventilation holes 6, so that the fabric can improve the breathability while ensuring light blocking.

[0022] like Figures 1-4 As shown, both moisture-absorbing block 1 (3) and moisture-absorbing block 2 (2) are formed by floating patterned yarn on the ground weave in the form of floated long threads. The warp and weft yarns of the moisture-dispersing strip 4 are both set as moisture-dispersing yarns. The moisture-dispersing strip 4 is made by weaving a plain weave on an air-jet loom. The moisture-dispersing yarn is made by spirally winding a second strand of yarn onto a first strand of yarn on a ring spinning machine. The second strand of yarn is made by twisting bamboo charcoal fiber using a twisting machine. Due to its natural irregular porous structure, bamboo charcoal fiber has good moisture absorption and moisture dispersing properties, making the resulting moisture-absorbing block 1 (3)... The moisture-absorbing blocks 2 and moisture-dispersing strips 4 have the same moisture absorption capacity and are greater than that of the light-blocking layer 1. The setting of several moisture-dispersing strips 4 increases the moisture-dispersing area of ​​the fabric. Several moisture-absorbing blocks 3 can absorb the sweat produced by the skin in time and transfer it to several moisture-dispersing strips 4 through several moisture-absorbing blocks 2 to make full contact with the airflow of the outside world for rapid moisture dissipation, thereby achieving a quick-drying effect and keeping the skin and fabric dry. Bamboo charcoal fiber has the characteristics of being soft and skin-friendly, so that the bamboo charcoal fiber on the surface of moisture-absorbing block 3 can provide a comfortable wearing experience when in contact with the skin.

[0023] like Figures 1-4 As shown, when it is necessary to make this kind of blackout Oxford cloth, blackout yarn and moisture-wicking yarn are fed into a multi-arm loom and woven together using a patterned weave to form a blackout layer 1 and several moisture-wicking blocks 3 and several moisture-wicking blocks 2 on both sides. Then, several ventilation holes 6 are cut on the blackout layer 1 using a laser cutting machine. After the moisture-wicking yarn is fed into an air-jet loom and woven into a plain weave to form a greige fabric, it is cut into moisture-wicking strips 4 using a cutting machine. Finally, a sewing machine is used to sew the moisture-wicking strips 4 together with the blackout layer 1 in the area between the adjacent moisture-wicking blocks 2 using blackout yarn, thereby completing the production of this kind of blackout Oxford cloth.

[0024] 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 light-blocking Oxford cloth, comprising a light-blocking layer (1), characterized in that: The light-shielding layer (1) has several moisture-absorbing blocks (3) and several moisture-absorbing blocks (2) on its two sides respectively. Several moisture-absorbing blocks (2) are arranged in an array. Moisture-dispersing strips (4) are added on several moisture-absorbing blocks (2) along the latitude direction of the light-shielding layer (1). The moisture-dispersing strips (4) are supported by several moisture-absorbing blocks (2) and form several ventilation spaces (5) between them and the light-shielding layer (1). The light-shielding layer (1) has several ventilation holes (6). The diameter of the ventilation holes (6) is smaller than the width of the moisture-dispersing strips (4) and is located below the moisture-dispersing strips (4). The ventilation holes (6) are connected to the ventilation spaces (5).

2. The light-blocking Oxford cloth according to claim 1, characterized in that: The width of the first moisture-absorbing block (3) is the same as the width of the second moisture-absorbing block (2), and several of the first moisture-absorbing blocks (3) and the second moisture-absorbing blocks (2) are staggered along the warp direction of the light-shielding layer (1).

3. The light-blocking Oxford cloth according to claim 1, characterized in that: The length of the second moisture-absorbing block (2) is greater than the width of the moisture-dispersing strip (4). The area of ​​the moisture-dispersing strip (4) between adjacent second moisture-absorbing blocks (2) is fixed to the light-blocking layer (1) by sewing with light-blocking yarn.

4. The light-blocking Oxford cloth according to claim 1, characterized in that: The woven structure of the light-blocking layer (1) is set as a warp-patterned structure. The woven yarn of the light-blocking layer (1) includes light-blocking yarn and moisture-wicking yarn. The light-blocking yarn serves as the ground warp and ground weft yarn of the warp-patterned structure, and the moisture-wicking yarn serves as the patterned yarn of the warp-patterned structure.

5. The light-blocking Oxford cloth according to claim 4, characterized in that: The first moisture-absorbing block (3) and the second moisture-absorbing block (2) are both formed from tufted yarn. The moisture-absorbing blocks (3), (2), and (4) have the same moisture absorption and are greater than the moisture absorption of the light-blocking layer (1).

6. The light-blocking Oxford cloth according to claim 4, characterized in that: The weaving structure of the moisture-wicking strip (4) is set as a plain weave, and the moisture-wicking yarn is used as the warp and weft yarns of the plain weave.