Double oxford fabric

CN224766235UActive Publication Date: 2026-09-18WUJIANG HAISHUN CHEM FIBER CO LTD
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Patent Information

Application Number
CN202521836450.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-28
Publication Date
2026-09-18
Estimated Expiration
2035-08-28

AI Technical Summary

Technical Problem

[0003]一些户外工作者或在车间工作的人员接触的环境较为复杂,为了保证工作服面料的耐用性,会使用双层或多层面料来制作,但双层面料的设置增加了面料的厚度,且涤纶或锦纶纱线本身的透气性较差,因此需要在面料上开设较多孔隙以此来实现面料两侧空气的流通及交换,但当人们在户外使用时,外界光线很容易穿过这些孔洞照射在体表上

Benefits of technology

[0012] In summary, this utility model has the following beneficial effects: both external air and external light can enter the fabric through several through holes 2. The setting of the diverging block can increase the surface roughness of the inner layer, and the diverging block is located directly below the breathable group. Therefore, the light entering the fabric through several through holes 2 can be diffused in all directions under the action of several diverging fibers, thereby reducing the amount of light that can pass through the inner layer. The air entering the fabric through several through holes 2 can pass through the breathable channel 1 and several through holes 1, flow on the breathable channel 2, and come into contact with the body surface. The structure is designed to ensure the overall sun protection and breathability of the fabric.

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Abstract

The utility model discloses a double -deck oxford fabric relates to the technical field of fabric. Its technical scheme main point is: including mutually fixed connection's inner layer and outer layer, the side of outer layer close to inner layer forms with the several convex block no.
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Description

Technical Field

[0001] This utility model relates to the field of fabric technology, and more specifically, to double-layer Oxford fabric. Background Technology

[0002] Oxford cloth is woven from pure polyester or pure nylon. Both polyester and nylon are common types of synthetic fibers with good structural strength and shape retention, making them common materials used to make clothing and home textiles.

[0003] Some outdoor workers or factory workers are exposed to complex environments. To ensure the durability of work clothes, double or multiple layers of fabric are used. However, the double-layer fabric increases the thickness of the fabric, and polyester or nylon yarns themselves have poor breathability. Therefore, more pores need to be made in the fabric to allow air circulation and exchange between the two sides of the fabric. However, when people wear it outdoors, external light can easily pass through these pores and shine on their skin.

[0004] Therefore, a new solution is needed to address this problem. Utility Model Content

[0005] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide double-layer Oxford fabric.

[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: The double-layer Oxford fabric includes an inner layer and an outer layer that are fixedly connected to each other. The outer layer has a plurality of protrusions one that abut against the inner layer on the side near the inner layer. There is a breathable channel one between adjacent protrusions one arranged along the length direction of the outer layer. There is a plurality of breathable groups between adjacent protrusions one arranged along the width direction of the outer layer. The inner layer has a diverging block on the side near the outer layer that corresponds to the breathable group. The diverging block is a plurality of diverging fibers fixed on the inner layer by a flocking process. The width of the diverging block is greater than the width of the breathable group. The length of the diverging block is less than the length of the protrusion one. The inner layer has a plurality of through holes one that are staggered with the breathable group. The inner layer has a plurality of protrusions two on the side away from the outer layer. There is a breathable channel two between adjacent protrusions two arranged along the length direction of the inner layer.

[0007] The present invention is further configured such that: the length of the first ventilation channel is less than the length of the second ventilation channel, the thickness of the diverging block is less than the thickness of the first protrusion, and the ventilation group, the plurality of first ventilation channels and the plurality of first through holes are interconnected.

[0008] The present invention is further configured such that: the radiating block is a plurality of radiating fibers fixed on the inner layer by a flocking process, and the cross-sectional area of ​​the radiating block is larger than the cross-sectional area of ​​the breathable group.

[0009] The present invention is further configured such that: the breathable group is composed of several through holes II, and the diameter of the through hole I is larger than the diameter of the through hole II.

[0010] The present invention is further configured such that: the inner layer and several protrusions are integrally formed, the outer layer and several protrusions are integrally formed, and both the outer layer and the inner layer are configured with a textured structure.

[0011] The present invention is further configured such that: the outer layer is woven from polyester yarn, and the inner layer is woven from polyester profiled yarn with a Y-shaped cross-section.

[0012] In summary, this utility model has the following beneficial effects: both external air and external light can enter the fabric through several through holes 2. The setting of the diverging block can increase the surface roughness of the inner layer, and the diverging block is located directly below the breathable group. Therefore, the light entering the fabric through several through holes 2 can be diffused in all directions under the action of several diverging fibers, thereby reducing the amount of light that can pass through the inner layer. The air entering the fabric through several through holes 2 can pass through the breathable channel 1 and several through holes 1, flow on the breathable channel 2, and come into contact with the body surface. The structure is designed to ensure the overall sun protection and breathability of the fabric. Attached Figure Description

[0013] Figure 1 This is a cross-sectional view of the present invention.

[0014] In the diagram: 1. Inner layer; 2. Outer layer; 3. Bump 1; 4. Diverging block; 5. Through hole 1; 6. Through hole 2; 7. Bump 2. Detailed Implementation

[0015] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0016] This double-layered Oxford fabric, such as Figure 1As shown, the outer layer 1 and outer layer 2 are stitched together and fixed to each other. The outer layer 2 has several protrusions 3 integrally formed on the side closest to the inner layer 1, which abut against the inner layer 1. The outer layer 2 is configured with a textured surface; the textured surface is the base layer of the outer layer 2, and the textured surface consists of several protrusions 3. Air vents exist between adjacent protrusions 3 along the length of the outer layer 2, increasing the airflow between the inner layer 1 and the outer layer 2. Several air vents are formed between adjacent protrusions 3 along the width of the outer layer 2. These air vents are formed by laser cutting... The inner layer 1 is composed of several through holes 6 formed by the perforation machine. The formation of the breathable group provides a channel for outside air and light to enter the fabric. Outside air can flow between the outer layer 2 and the inner layer 1 along several breathable channels to ensure the overall breathability of the fabric. Since the breathable group is located between adjacent protrusions 3, the protrusions 3 can reduce the dispersion range of light inside the fabric. The inner layer 1 part corresponding to the breathable group can directly block outside light, reducing the amount of outside light passing through the inner layer 1 and shining on the body surface, thus ensuring the overall sun protection and breathability of the fabric.

[0017] A diffuser block 4, corresponding to the breathable group, is formed on the side of the inner layer 1 near the outer layer 2. The diffuser block 4 increases the thickness of the inner layer 1, prolonging the time required for light to pass through it. This allows more light to be gradually absorbed and reflected within the yarn as it passes through the inner layer 1, further reducing the amount of light that can pass through. The diffuser block 4 is composed of several diffuser fibers fixed to the inner layer 1 using a flocking process. These diffuser fibers are composed of several polyester staple fibers with a Y-shaped cross-section. The presence of these diffuser fibers increases the surface roughness of the inner layer 1. When light passing through the second through-hole 6 shines on the diffuser block 4, the diffuser fibers can disperse the light in all directions, thereby reducing the amount of light that can pass through the inner layer 1. To reduce the amount of light that can pass through the inner layer 1 and reach the skin surface, the cross-sectional area of ​​the diverging block 4 is larger than that of the breathable group. Therefore, light that enters the fabric obliquely can also shine on the diverging block 4, thus reducing the light transmittance of the fabric. The width of the diverging block 4 is greater than that of the breathable group, so light that enters the fabric obliquely through the breathable group can also be blocked by the diverging block 4. The length of the diverging block 4 is less than the length of the protrusion 3. Since light will scatter in all directions under the action of the diverging block 4, increasing the length of the protrusion 3 can ensure that the protrusion 3 can completely block the scattered light, reducing the situation where light passes through the breathable channel and continues to scatter in the fabric, thus enhancing the sun protection effect of the fabric.

[0018] Along the thickness direction of the inner layer 1, a number of through holes 5 are drilled by a laser punch, offset from the breathable group. These through holes 5 allow outside air to directly pass through the inner layer 1 and contact the body surface. The length of the first breathable channel is shorter than the length of the second breathable channel, and the thickness of the radiating block 4 is less than the thickness of the protrusion 3. There is a channel between the bottom surface of the outer layer 2 and the top surface of the radiating block 4 for outside air to flow through. Therefore, the breathable group, the first breathable channels, and the through holes 5 are interconnected. Outside air enters the fabric along the breathable group, then passes through the first breathable channels and the through holes 5 to contact the body surface. Reducing the length of the first breathable channel ensures stable airflow while reducing the amount of light that can be emitted from it. Due to the diameter of the through holes 5... The diameter of the inner layer 1 is larger than that of the second through hole 6, thus increasing the amount of air that can pass through the first through hole 5 and come into contact with the body surface, and reducing the channels on the outer layer 2 that allow external light to pass through, thus reducing the amount of light that can enter the fabric, further enhancing the overall sun protection and breathability of the fabric. The inner layer 1 has several protrusions 7 integrally formed on the side away from the outer layer 2. There are breathable channels 2 between adjacent protrusions 7 arranged along the length of the inner layer 1. The protrusions 7 are arranged to support the inner layer 1 and the body surface. At the same time, due to the existence of the breathable channels 2, the outside air can flow in the breathable channels 2 after passing through the first through hole 5, thereby increasing the amount of air that can come into contact with the body surface, enhancing the breathability and comfort of the fabric during use, and reducing the area of ​​the inner layer 1 that adheres to the body surface after being wet with sweat.

[0019] The outer layer 2 is woven from polyester yarn. Polyester yarn has good structural strength and light resistance, thus ensuring the service life of the outer layer 2. The inner layer 1 is woven from polyester shaped yarn with a Y-shaped cross-section. After shaping the polyester yarn, the structural strength of the polyester yarn is ensured, while the channels for external air to flow through the yarn are increased. At the same time, the shaped yarn allows the light entering the fabric to be better refracted in all directions inside the yarn, reducing the amount of light that can penetrate the fabric and ensuring the overall sun protection and breathability of the fabric.

[0020] When the fabric needs to be woven, polyester yarn is placed in a multi-arm loom and woven using a patterned weave to form several outer layers 2 and several protrusions 3. Several through holes 6 are made along the thickness direction of the outer layers 2 using a laser punching machine. Polyester profiled yarn is placed in a multi-arm loom and woven using a patterned weave to form an inner layer 1 and several protrusions 7. The inner layer 1 is laid on the outer layer 2. The positions of several through holes 6 are drawn on the inner layer 1 using sewing chalk. Glue is then applied to these positions. Polyester staple fibers are fixed to the inner layer 1 using an electrostatic flocking process. Several through holes 5 are made along the thickness direction of the inner layer 1 using a laser punching machine. Finally, the inner layer 1 and the outer layer 2 are sewn together using a sewing machine.

[0021] 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 double-layered Oxford fabric, comprising an inner layer (1) and an outer layer (2) fixedly connected to each other, characterized in that: The outer layer (2) has several protrusions (3) that abut against the inner layer (1) on the side close to the inner layer (1). There is a ventilation channel between adjacent protrusions (3) arranged along the length direction of the outer layer (2). There is a number of ventilation groups between adjacent protrusions (3) arranged along the width direction of the outer layer (2). The inner layer (1) has a diverging block (4) that is arranged corresponding to the ventilation group on the side close to the outer layer (2). The diverging block (4) is a number of diverging fibers fixed on the inner layer (1) by flocking process. The width of the diverging block (4) is greater than the width of the ventilation group. The length of the diverging block (4) is less than the length of the protrusions (3). There are several through holes (5) on the inner layer (1) that are staggered with the ventilation group. There are several protrusions (7) on the side of the inner layer (1) away from the outer layer (2). There is a ventilation channel between adjacent protrusions (7) arranged along the length direction of the inner layer (1).

2. The double-layer oxford fabric according to claim 1, characterized in that: The length of the first ventilation channel is less than the length of the second ventilation channel, the thickness of the diverging block (4) is less than the thickness of the first protrusion (3), and the ventilation group, the several first ventilation channels and the several first through holes (5) are interconnected.

3. The double-layer oxford fabric according to claim 1, characterized in that: The breathable assembly consists of several through holes (6), wherein the diameter of the first through hole (5) is larger than the diameter of the second through hole (6).

4. The double-layer oxford fabric according to claim 1, characterized in that: The inner layer (1) is integrally formed with several protrusions (7), and the outer layer (2) is integrally formed with several protrusions (3). Both the outer layer (2) and the inner layer (1) are configured with a patterned texture.

5. The double-layer oxford fabric according to claim 1, characterized in that: The outer layer (2) is woven from polyester yarn, and the inner layer (1) is woven from polyester profiled yarn with a Y-shaped cross section.