Tensile explosion-proof fabric

By setting up a ring structure in the mesh fabric with a multi-layer unit group and a coil vertical column connecting the tensile and horizontal column, the problem of tensile impermanence of the existing mesh fabric is solved, and high tension resistance and explosion-proof performance are achieved while maintaining breathability and comfort.

CN222861788UActive Publication Date: 2025-05-13FOSHAN YUE SOCKS FACTORY
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Patent Information

Application Number
CN202421730443.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-05-13
Estimated Expiration
2034-07-22

AI Technical Summary

Technical Problem

Existing mesh fabrics are prone to enlargement or tear when pulled, resulting in impermanence. In order to improve the pull resistance, the elasticity of the fiber wire will be affected and lack comfort.

Method used

By setting up a multi-layer unit group in the fabric, including a coil cross-path group and a tensile cross-column, a mesh is formed, and the coil vertical column is used to connect the tensile cross-column to form an annular structure to improve the tension resistance and explosion-proof performance of the fabric.

Benefits of technology

While maintaining the breathability and decorative mesh, the cloth's resistance to pulling is significantly improved, preventing bursts, and ensuring comfort.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222861788U_ABST
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Abstract

The utility model relates to the technical field of knitted fabrics, in particular to a tensile explosion-proof fabric, which is provided with a plurality of layers of unit groups from top to bottom, each layer of unit group comprises a plurality of circulation structure units, each circulation structure unit comprises a coil transverse path group and two coil longitudinal rows, so that meshes are formed, and the loop transverse path groups and the two coil longitudinal rows are arranged in a staggered manner. A tensile transverse row is arranged between every two adjacent coil transverse row sets, the overall tensile performance of the cloth is improved through the coil transverse row sets and the tensile transverse rows, the cloth is prevented from bursting, the two tensile transverse rows which are spaced up and down are connected through the coil longitudinal rows to form meshes through the arranged tensile transverse row intervals, and on the premise that fiber materials are not changed, the tensile performance of the cloth is improved. By means of the woven structure, the fabric has meshes, the anti-pulling performance is improved, and the comfort of the fabric is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of knitted fabrics, in particular to a tensile and explosion-proof fabric. Background Art

[0002] The main characteristics of mesh fabrics are breathability, perspiration, beauty, and strong decorativeness. They are commonly used in breathable socks, stockings, etc. However, the current mesh fabric structure is relatively simple and thin. For example, the mesh socks have a knitting line as shown in the figure. Two horizontal lines are connected by a vertical hook line, and a mesh is formed between the two horizontal lines and the two vertical hook lines. However, the tensile resistance of such a mesh structure is not sufficient. When people pull when wearing, the mesh will expand, or even tear or burst. Therefore, some mesh breathable socks are jokingly called "disposable socks" and are not durable. Referring to the mesh fabric with application number 201310337728.9, it is known that people can only improve its tensile resistance by replacing different fiber materials. However, in order to improve the tensile resistance, the elasticity of such fiber will be affected to a certain extent, and it lacks comfort. Utility Model Content

[0003] The utility model provides a tensile-resistant explosion-proof fabric, so as to achieve the purpose of improving the tensile-resistant and explosion-proof performance of the fabric while having meshes.

[0004] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a tensile-resistant explosion-proof fabric, wherein the fabric is provided with multiple layers of unit groups from top to bottom, each of the multiple layers of the unit groups includes a plurality of cyclic structural units, the cyclic structural units include a coil horizontal path group and two coil vertical columns, thereby forming a mesh, and tensile-resistant horizontal columns are provided between adjacent coil horizontal path groups, the tensile-resistant horizontal columns are parallel to the coil horizontal column group, and the coil horizontal path group includes three coil horizontal columns.

[0005] Furthermore, the multi-layer unit groups are divided into odd-numbered layer groups and even-numbered layer groups from top to bottom, and the cyclic structural units are arranged from top to bottom into a tensile horizontal row, a coil horizontal road group and another tensile horizontal row.

[0006] Furthermore, in one of the cyclic structural units, two ends of the longitudinal row of coils are respectively woven into two adjacent tensile horizontal rows.

[0007] Furthermore, the cyclic structural units of the odd-numbered layer groups are staggered with the cyclic structural units of the even-numbered layer groups.

[0008] Furthermore, the three coil rows are arranged at equal intervals, and correspond to the distance between the coil row and the tensile row.

[0009] Furthermore, the fabric is annular, and the longitudinal row of coils corresponds to the central axis of the annular fabric.

[0010] Compared with the prior art, the beneficial effects of the utility model are as follows: the overall tensile resistance of the fabric is improved by setting the coil horizontal path group and the tensile resistance horizontal row, and the fabric is prevented from bursting; and through the set tensile resistance horizontal row interval, a mesh is formed by connecting two tensile resistance horizontal rows spaced above and below by the coil vertical row. Under the premise of not changing the fiber material, the fabric is provided with a mesh through the weaving structure, while the tensile resistance is improved and the comfort of the fabric is ensured. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] Figure 1 It is a structural schematic diagram of the utility model.

[0012] Figure 2 It is a structural schematic diagram of the prior art.

[0013] In the figure: coil row 1, coil row 2, tensile row 3, mesh 10. DETAILED DESCRIPTION

[0014] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0015] As shown in the accompanying drawings, the utility model is a tensile and explosion-proof fabric, comprising a fabric, wherein the fabric is provided with a multi-layer unit group from top to bottom, such as Figure 1 It is shown as 4 layers of unit groups, each of which includes a plurality of cyclic structural units. The cyclic structural units include a coil horizontal path group and two coil vertical columns 2, thereby forming a mesh 10. Anti-tensile horizontal columns 3 are arranged between adjacent coil horizontal path groups. The anti-tensile horizontal columns 3 are parallel to the coil horizontal column group. The coil horizontal path group includes three coil horizontal columns 1.

[0016] The utility model discloses a tensile-resistant explosion-proof fabric, which improves the overall tensile-resistant performance of the fabric and prevents the fabric from bursting by means of a coil horizontal path group and a tensile-resistant horizontal row. The fabric has three coil horizontal rows 1, and is spaced apart by the tensile-resistant horizontal rows 3. A mesh 10 is formed by connecting two tensile-resistant horizontal rows 3 at upper and lower intervals by a coil vertical row 2. Under the premise of not changing the fiber material, the fabric is provided with the mesh 10 through a weaving structure, that is, the fabric has the basic function of the mesh 10 while improving the overall tensile-resistant performance of the fabric and ensuring the comfort of the fabric.

[0017] In this embodiment, the multi-layer unit group is divided into an odd-numbered layer group and an even-numbered layer group from top to bottom, and the cyclic structural unit is arranged from top to bottom as a tensile horizontal row 3, a coil horizontal road group and another tensile horizontal row 3, and the cyclic structural unit of the odd-numbered layer group is staggered with the cyclic structural unit of the even-numbered layer group, such as Figure 1 As shown, the cyclic structural units of multiple odd-numbered layer groups correspond one to another up and down, and the cyclic structural units of multiple even-numbered layer groups correspond one to another up and down, and one of the cyclic structural units of the odd-numbered layer groups is arranged at the eccentric position of one of the cyclic structural units of the even-numbered layer groups, specifically, one of the cyclic structural units of the odd-numbered layer groups, and the coil longitudinal column 2 on either side thereof corresponds to the position of the mesh 10 in the corresponding cyclic structural unit of the even-numbered layer group; in one of the cyclic structural units, the two ends of the coil longitudinal column 2 are respectively woven in two adjacent tensile horizontal columns 3, and the coil longitudinal column 2 is connected to the three coil horizontal columns 1 in the same cyclic structural unit; the three coil horizontal columns 1 are arranged at equal intervals, and correspond to the distance between the coil horizontal column 1 and the tensile horizontal column 3.

[0018] In this embodiment, the fabric is annular, and the coil longitudinal row corresponds to the central axis of the annular fabric, which can be interpreted as the coil transverse path group is arranged in circles, perpendicular to the pulling direction, and the coil longitudinal row 2 is parallel to the pulling direction. The coil transverse path group and the tensile resistance row 3 are used to resist the pulling force together. Specifically, the fabric can be used to make socks, stockings, sleeves and other clothing. If the fabric is made into socks, refer to the action of people wearing socks, and the multi-layer unit group is arranged from the head to the opening until the opening is closed. If the above structure is realized, compared with the existing single coil horizontal row 1, the overall area of ​​the mesh 10 is larger, but the mesh 10 has three coil horizontal rows 1 distributed at intervals, which can weaken the visual effect of the opening of the mesh 10 and provide the mesh 10 with breathability and sweat removal, etc., and the circular structure unit is surrounded by the tensile resistance row 3 above and below, and the tensile resistance row 3 and the coil horizontal row 1 jointly provide lateral tension to resist the tensile force.

[0019] The above embodiments are preferred embodiments of the present utility model. All structures similar to the present utility model and equivalent changes made thereto should fall within the protection scope of the present utility model.

Claims

1. A tensile and explosion-proof fabric, characterized in that: The fabric is provided with multiple layers of unit groups from top to bottom, each of the multiple layers of unit groups includes a plurality of cyclic structural units, the cyclic structural units include a coil horizontal path group and two coil vertical columns, thereby forming a mesh, and tensile horizontal columns are provided between adjacent coil horizontal path groups, the tensile horizontal columns are parallel to the coil horizontal column group, and the coil horizontal path group includes three coil horizontal columns.

2. The tensile-resistant explosion-proof fabric according to claim 1, characterized in that: The multi-layer unit groups are divided into odd-numbered layer groups and even-numbered layer groups from top to bottom, and the cyclic structural units are arranged from top to bottom into a tensile horizontal row, a coil horizontal road group and another tensile horizontal row.

3. The tensile-resistant explosion-proof fabric according to claim 1, characterized in that: In one of the cyclic structural units, the two ends of the coil column are respectively woven into two adjacent tensile horizontal columns.

4. The tensile-resistant explosion-proof fabric according to claim 2, characterized in that: The cyclic structural units of the odd-numbered layer groups are staggered with the cyclic structural units of the even-numbered layer groups.

5. The tensile-resistant explosion-proof fabric according to claim 1, characterized in that: The three rows of stitches are arranged at equal intervals, and correspond to the distance between the rows of stitches and the tensile rows.

6. The tensile-resistant explosion-proof fabric according to claim 1, characterized in that: The fabric is annular, and the longitudinal row of coils corresponds to the central axis of the annular fabric.

Citation Information

Patent Citations

  • Meshed fabric

    CN103388239A