Anti-cutting fabric for camouflage clothes
By using a composite structure of cut-resistant core-spun yarn and antibacterial fabric layer in camouflage clothing fabric, the problem of camouflage clothing fabric being easily cut has been solved, achieving highly efficient cut-resistant and antibacterial effects, and improving the wear resistance and wearing comfort of the clothing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-02
- Publication Date
- 2026-04-03
AI Technical Summary
Existing camouflage fabrics are easily cut when in contact with sharp objects, causing injury to the wearer, and lack effective cut protection.
The camouflage cut-resistant fabric with a composite structure includes a nylon base layer, a cut-resistant core-spun yarn, and an antibacterial fabric layer. The cut-resistant core-spun yarn is woven from ultra-high molecular weight polyethylene filament, PTFE split film filament, and aramid 1414 filament. The nylon base layer is woven from nylon 6 filament and mosquito-repellent polyester filament. The antibacterial fabric layer is woven from antibacterial cotton yarn, and the cut-resistant fabric layer is woven with a planar three-way fabric.
It achieves high-efficiency cut resistance, abrasion resistance, and antibacterial properties in camouflage fabric, improving the safety and comfort of the clothing.
Smart Images

Figure CN224075215U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a cut-resistant fabric for camouflage clothing, belonging to the technical field of camouflage clothing fabrics. Background Technology
[0002] Camouflage uniforms, worn for training or daily life, frequently come into contact with sharp objects during training. These sharp objects can cut the camouflage fabric, causing injury to the wearer. Therefore, camouflage uniforms used for outdoor training require excellent cut resistance. The challenge lies in developing a cut-resistant fabric suitable for outdoor camouflage uniforms. Utility Model Content
[0003] The purpose of this invention is to provide a camouflage clothing cut-resistant fabric with cut-resistant properties.
[0004] To solve the above-mentioned technical problems, the purpose of this utility model is achieved as follows:
[0005] The present invention relates to a camouflage clothing cut-resistant fabric, comprising a composite camouflage fabric layer and a cut-resistant fabric layer;
[0006] The camouflage fabric layer includes a nylon fabric base layer, and a camouflage printed layer is provided on the surface of the nylon fabric base layer away from the cut-resistant fabric layer.
[0007] The cut-resistant fabric layer is made of cut-resistant core-spun yarn interwoven together. The cut-resistant core-spun yarn includes a core yarn and a first wrapping thread and a second wrapping thread wrapped around the outside of the core yarn and arranged in opposite directions.
[0008] The core yarn is ultra-high molecular weight polyethylene filament, the first wrapping yarn is PTFE split film filament, and the second wrapping yarn is aramid 1414 filament.
[0009] Based on the above scheme and as a preferred embodiment of the above scheme: the nylon fabric base layer 11 is woven from nylon 6 filament and mosquito-repellent polyester filament as warp and weft yarns.
[0010] Based on the above scheme and as a preferred embodiment of the above scheme: the cut-resistant fabric layer 2 is a planar three-dimensional fabric woven from three sets of cut-resistant core-spun yarns at a 60° angle.
[0011] Based on the above scheme and as a preferred embodiment of the above scheme: the cut-resistant fabric layer 2 is laminated with an antibacterial fabric layer 3 on the side away from the camouflage fabric layer 1.
[0012] Based on the above scheme and as a preferred embodiment of the above scheme: the antibacterial fabric layer 3 is made of antibacterial cotton yarn interwoven as warp and weft yarns.
[0013] The beneficial effects of this utility model are as follows: The camouflage cut-resistant fabric involved in this utility model has good abrasion resistance due to the use of nylon fibers in the nylon base layer. The ultra-high molecular weight polyethylene filament, high-strength polyester filament, and aramid 1414 filament used in the cut-resistant fabric give it excellent cut-resistant properties. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the camouflage cut-resistant fabric involved in Example 1;
[0015] Figure 2 This is a schematic diagram of the structure of the cut-resistant core-spun yarn involved in Example 1;
[0016] Figure 3 This is a schematic diagram of the weaving of the cut-resistant fabric involved in Example 2;
[0017] Figure 4 This is a schematic diagram of the structure of the cut-resistant fabric of the camouflage uniform involved in the embodiment. Detailed Implementation
[0018] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0019] Example 1
[0020] Combination Figure 1 and Figure 2 This embodiment will be described in detail below. The camouflage cut-resistant fabric involved in this embodiment includes a composite camouflage fabric layer 1 and a cut-resistant fabric layer 2. The camouflage fabric layer 1 includes a nylon fabric base layer 11, and a camouflage printed layer 12 is provided on the surface of the nylon fabric base layer 11 away from the cut-resistant fabric layer 2. The nylon fabric base layer 11 provides abrasion resistance to the fabric.
[0021] The cut-resistant fabric layer 2 is woven from cut-resistant core-spun yarn as warp and weft yarns. The cut-resistant core-spun yarn includes a core yarn 21 and a first wrapping filament 22 and a second wrapping filament 23 wrapped around the outside of the core yarn 21 and arranged in opposite directions. The core yarn 21 is ultra-high molecular weight polyethylene filament, the first wrapping filament 22 is PTFE split-film filament, and the second wrapping filament 23 is aramid 1414 filament. Ultra-high molecular weight polyethylene filament has high strength and cut-resistant properties. Aramid 1414 also has cut-resistant properties. The ultra-high molecular weight polyethylene filament has a fineness of 200-400D; in this embodiment, 400D is selected. The first wrapping filament 22 and the second wrapping filament 23 both have a fineness of 75D, and the pitch is 5-10 times the diameter of the wrapping filament; in this embodiment, 10 times is selected. The weight of the cut-resistant fabric is 280 grams per square meter.
[0022] Furthermore, the nylon fabric base layer 11 is woven from nylon 6 filament and insect-repellent polyester filament as warp and weft yarns. The nylon 6 filament provides good abrasion resistance, while the insect-repellent polyester filament gives the fabric its insect-repellent properties. Both the nylon 6 filament and the insect-repellent polyester filament have a fineness of 75D and a weight of 160 grams per square meter.
[0023] In the European standard EN388:2016, Level 5 specifies a minimum requirement of 20.0 cuts when the fabric is torn according to the standard test method. In this embodiment, the fabric was tested for cut resistance using five different fabric samples, with an average of 23.6 cuts.
[0024] Example 2
[0025] Combination Figure 3 This embodiment will be described in detail below. The difference between this embodiment and Embodiment 1 is that the cut-resistant fabric layer 2 is a planar three-dimensional fabric woven from three sets of cut-resistant core-spun yarns at a 60° angle. The cut-resistant fabric layer 2 is a planar three-dimensional fabric woven from a first yarn 21, a second yarn 22, and a third yarn 23 at a 60° angle. The first yarn 21, the second yarn 22, and the third yarn 23 are all cut-resistant core-spun yarns. Conventional fabrics are generally woven from warp and weft yarns that are perpendicular to each other. This orthogonal planar fabric can only effectively transfer loads in directions parallel to the yarns. When the direction of force is not along the warp or weft yarn arrangement, the fabric's ability to resist deformation and damage decreases significantly, making it difficult to meet the mechanical performance requirements of textiles. The planar three-dimensional fabric is formed by interlacing the first yarn 21, the second yarn 22, and the third yarn 23 at 60°. The fabric has a relatively uniform load-bearing capacity in all directions. Regardless of whether the stress direction is along the yarn direction, it is not easy for the planar two-dimensional fabric to experience local stress concentration that could lead to yarn breakage. It has good dimensional stability and strong resistance to deformation and damage.
[0026] Example 3
[0027] Combination Figure 4 This embodiment will be described in detail below. The difference between this embodiment and Embodiment 1 is that the cut-resistant fabric for camouflage clothing is that an antibacterial fabric layer 3 is laminated on the side of the cut-resistant fabric layer 2 away from the camouflage fabric layer 1. The antibacterial fabric layer 3 is woven from antibacterial cotton yarn as both warp and weft yarns. The antibacterial cotton fiber not only provides good wearing comfort but also has antibacterial effects. The fiber used in the antibacterial cotton yarn is silver-impregnated cotton fiber. Furthermore, an aluminized PET film is laminated on the side of the cut-resistant fabric layer 2 closest to the camouflage fabric layer 1.
[0028] The preferred embodiments of this utility model have been described in detail above. It should be understood that those skilled in the art can make numerous modifications and variations based on the concept of this utility model without creative effort. Therefore, all technical solutions that can be obtained by those skilled in the art based on the concept of this utility model through logical analysis, reasoning, or limited experimentation on the basis of existing technology should be within the scope of protection defined by the claims.
Claims
1. A camouflage uniform cut-resistant fabric, characterized in that, It includes a composite camouflage fabric layer (1) and a cut-resistant fabric layer (2); The camouflage fabric layer (1) includes a nylon fabric base layer (11), and a camouflage printed layer (12) is provided on the side of the nylon fabric base layer (11) away from the cut-resistant fabric layer (2). The cut-resistant fabric layer (2) is made of cut-resistant core-spun yarn, which includes core yarn (21) and a first wrapping thread (22) and a second wrapping thread (23) wrapped around the outside of the core yarn (21) and arranged in opposite directions; The core yarn (21) is ultra-high molecular weight polyethylene filament, the first wrapping yarn (22) is PTFE split film filament, and the second wrapping yarn (23) is aramid 1414 filament.
2. The camouflage uniform cut-resistant fabric according to claim 1, characterized in that, The nylon fabric base layer (11) is made of nylon 6 filament and mosquito-repellent polyester filament as warp and weft yarns.
3. The camouflage uniform cut-resistant fabric according to claim 1, characterized in that, The cut-resistant fabric layer (2) is a planar three-dimensional fabric woven from three sets of cut-resistant core-spun yarns at a 60° angle.
4. The camouflage uniform cut-resistant fabric according to claim 1, characterized in that, The cut-resistant fabric layer (2) is coated with an antibacterial fabric layer (3) on the side away from the camouflage fabric layer (1).
5. The camouflage cut-resistant fabric according to claim 4, characterized in that, The antibacterial fabric layer (3) is made of antibacterial cotton yarn interwoven as warp and weft yarn.