Antibacterial and acarus-killing functional fabric
By using the upper and lower weaving interlaced composite technology of functional braided threads in antibacterial and mite-removing fabrics, the problem of independent functional layers is solved, the comprehensive distribution and full play of the functional layers are achieved, and the antibacterial and mite-removing and anti-static effects of the fabric are improved.
Patent Information
- Application Number
- CN202422721975.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-07
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-11-07
AI Technical Summary
The superposition of functional layers in existing antibacterial and mite-removing fabrics causes some functional layers to be unable to function, and the independence of each layer is not conducive to fully exerting its function.
Functional braided yarn is used to twist and compound multiple functional fiber yarns by weaving up and down to form multifunctional fabrics such as antibacterial and mite-removing and anti-static. The braided yarn is composed of nano-silver coated fiber yarn, bamboo charcoal fiber yarn, organic antibacterial chemical coated fiber yarn, chitosan fiber yarn, etc. The weaving method adopts S-type, V-type or 3D structure.
The comprehensive distribution of functional materials is achieved, and the scope of action of each functional layer is spread throughout all layers of the fabric. The functional layers are no longer independent and can fully play their role.
Smart Images

Figure CN223314612U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of functional fabrics, in particular to an antibacterial and mite-removing functional fabric. Background Art
[0002] The prior art discloses an antibacterial and mite-removing fabric with the publication number "CN214774522U", which includes a fabric body, an antistatic layer on the outer surface of the fabric body, which is sewn to the outer surface of the fabric body, and the antistatic layer can improve the antistatic ability of the fabric, and a chemical fiber antibacterial braided layer on the outer surface of the antistatic layer, which is sewn to the outer surface of the antistatic layer, and a nylon wear-resistant fiber layer on the outer surface of the chemical fiber antibacterial braided layer, which can improve the overall wear resistance of the fabric, and an antifouling layer on the outer surface of the nylon wear-resistant fiber layer. The fabric has high dust-removing and anti-fouling properties. The chemical fiber antibacterial woven layer includes a first chemical fiber antibacterial woven layer, an adsorption layer and a second chemical fiber antibacterial woven layer. The first chemical fiber antibacterial woven layer is sewn to the outer surface of the antistatic layer, one end of the adsorption layer is bonded to the first chemical fiber antibacterial woven layer, and the other end of the adsorption layer is bonded to the second chemical fiber antibacterial woven layer. The nylon wear-resistant fiber layer is sewn to the outer surface of the second chemical fiber antibacterial woven layer. By arranging the first chemical fiber antibacterial woven layer and the second chemical fiber antibacterial woven layer, the fabric can be subjected to double-layer sterilization treatment, which can enhance the antibacterial effect of the fabric and improve the safety of the fabric.
[0003] However, the above-mentioned device still has obvious defects during use: the above-mentioned fabric is a composite of multiple functional layers. Although it has certain antibacterial and mite-removing functions, the functional layers are in the form of flat superposition. Since the range of action of each functional layer is limited, the antibacterial and other functional layers located inside the stack cannot play a normal role. Moreover, the above-mentioned functional layers are independent of each other, which is not conducive to the full play of the role of the functional layers. Utility Model Content
[0004] The purpose of the present invention is to provide an antibacterial and mite-removing functional fabric to solve the problems raised in the above background technology.
[0005] To achieve the above objectives, the present invention provides the following technical solutions:
[0006] An antibacterial and mite-removing functional fabric comprises a velvet fabric layer and a dot-molded bottom layer, wherein the velvet fabric layer and the dot-molded bottom layer are laminated on top of each other;
[0007] The fleece fabric layer and the dot-molded bottom layer are laminated and compositely connected by weaving functional braided threads up and down;
[0008] The functional braided wire is formed by twisting a fiber single wire and a functional wire;
[0009] The functional line is one of nano silver coated fiber line, bamboo charcoal fiber line, organic antibacterial chemical coated fiber line, chitosan fiber line or a combination of multiple thereof;
[0010] The fiber single thread is formed of one of animal fiber, plant fiber or chemical fiber.
[0011] Preferably, an acrylic wear-resistant braided layer, a chemical fiber antibacterial braided layer and a nylon wear-resistant fiber layer are stacked between the fluff fabric layer and the dot plastic bottom layer. The acrylic wear-resistant braided layer, the chemical fiber antibacterial braided layer and the nylon wear-resistant fiber layer are stacked in sequence from top to bottom and are compositely connected by functional braided wires woven and interlaced up and down.
[0012] Preferably, the functional braided wire is braided in an S-shaped braided structure, a V-shaped braided structure or a 3D braided structure.
[0013] Preferably, the functional braided wire is formed by twisting four single wires, and the four single wires include two fiber single wires, a nano-silver coated fiber wire and a metal anti-static wire. The nano-silver coated fiber wire and the metal anti-static wire are separated by two fiber single wires on both sides during the twisting process.
[0014] Preferably, the point-molded bottom layer is a polyvinyl chloride waterproof membrane layer.
[0015] Preferably, the pile fabric layer includes a pile base layer and a pile surface layer.
[0016] Compared with the prior art, the beneficial effects of the present invention are:
[0017] The utility model adopts interlaced functional braided wire as the functional material, and twists and compounds a variety of functional wires to make it have multifunctional uses such as antibacterial and mite removal, anti-static, etc. The functional braided wire no longer exists in the form of a flat functional laminate, and its functional effects are distributed in multiple composite laminates through weaving, so that its range of action is spread throughout each laminate of the fabric, and the functional layers are no longer independent of each other, which facilitates the full play of the effect of each functional layer. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the laminated composite structure of the present utility model;
[0019] Figure 2 This is a schematic diagram of the functional braided wire interlaced braiding structure of the utility model;
[0020] Figure 3 This is a schematic diagram of the twisting structure of the functional braided wire of the utility model;
[0021] Figure 4 This is a schematic diagram of the composite braiding state of multiple braided layers of the present invention.
[0022] In the picture: 1 fluff fabric layer, 2 point plastic bottom layer, 3 functional braided wire, 4 fiber single wire, 5 functional wire, 6 nano silver coated fiber wire, 7 metal antistatic wire, 8 acrylic wear-resistant braided layer, 9 chemical fiber antibacterial braided layer, 10 nylon wear-resistant fiber layer, 11 fluff base layer, 12 fluff surface layer. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0024] See also Figure 1-3 , the utility model provides a technical solution:
[0025] An antibacterial and mite-removing functional fabric comprises a fleece fabric layer 1 and a dot-molded bottom layer 2, wherein the fleece fabric layer 1 and the dot-molded bottom layer 2 are laminated and composited.
[0026] The fleece fabric layer 1 and the dot-molded bottom layer 2 are laminated and compositely connected by weaving functional braided threads 3 up and down;
[0027] The functional braided line 3 is formed by twisting a fiber single line 4 and a functional line 5;
[0028] The functional thread is one of nano silver coated fiber thread 6, bamboo charcoal fiber thread, organic antibacterial chemical coated fiber thread, chitosan fiber thread 7 or a combination of multiple thereof;
[0029] The fiber strands 4 are formed of animal fibers, plant fibers, or chemical fibers.
[0030] An acrylic wear-resistant woven layer 8, a chemical fiber antibacterial woven layer 9 and a nylon wear-resistant fiber layer 10 are stacked between the fluffy fabric layer 1 and the dot-plastic bottom layer 2. The acrylic wear-resistant woven layer 8, the chemical fiber antibacterial woven layer 9 and the nylon wear-resistant fiber layer 10 are stacked in sequence from top to bottom and are compositely connected by functional woven wires 3 woven and interwoven up and down.
[0031] The functional braided wire 3 is braided in an S-shaped braided structure, a V-shaped braided structure or a 3D braided structure.
[0032] The functional braided wire 3 is twisted from four single wires, including two fiber single wires 4, a nano-silver coated fiber wire 6 and a metal anti-static wire 7. The nano-silver coated fiber wire 6 and the chitosan fiber wire 7 are separated on both sides by two fiber single wires 4 during the twisting process.
[0033] The point-molded bottom layer 2 is a polyvinyl chloride waterproof membrane layer.
[0034] The pile fabric layer 1 includes a pile base layer 11 and a pile surface layer 12 .
[0035] Example 1:
[0036] In this embodiment, the fluff fabric layer 1 and the dot-molded bottom layer 2 serve as the main structure, and an acrylic wear-resistant braided layer 8, a chemical fiber antibacterial braided layer 9 and a nylon wear-resistant fiber layer 10 are laminated and compositely arranged therein. The acrylic wear-resistant braided layer 8 adopts an acrylic fiber braiding structure, and Teflon coating produced by DuPont is sprayed on its surface to make it water-repellent and oil-resistant. The chemical fiber antibacterial braided layer adopts a chemical fiber fluff base layer and is impregnated with an antibacterial agent. The nylon wear-resistant fiber layer 10 adopts a nylon fiber braiding structure, which has high strength and wear resistance. The multiple laminated composite structures are interlaced and woven through the functional braided wire 3. The functional braided wire 3 is twisted by four single wires. The four single wires include two fiber single wires 4, a nano-silver coated fiber wire 6 and The metal antistatic wire 7, the nano-silver coated fiber wire 6 and the chitosan fiber wire 7 are separated on both sides by two fiber single wires 4 during the twisting process. Since the nano-silver coating is recognized to have good mite removal, sterilization and deodorization properties, the functional braided wire 3 using the nano-silver coated fiber wire 6 has good mite removal and sterilization properties, and the functional braided wire 3 is also provided with a metal antistatic wire 7. The setting of the metal wire makes the fabric also have anti-static properties. The above-mentioned functional braided wire 3 runs through multiple composite laminates, so that its functional properties cover all composite laminates. On the one hand, it is used as a functional material, and on the other hand, it is also used as a braided connecting wire for multiple composite laminates, which greatly expands its role and facilitates the functional fabric to fully play its role.
[0037] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An antibacterial and mite-removing functional fabric, comprising a fleece fabric layer and a dot-molded bottom layer, wherein the fleece fabric layer and the dot-molded bottom layer are laminated and composited, characterized in that: The fleece fabric layer and the dot-molded bottom layer are laminated and compositely connected by weaving functional braided threads up and down; The functional braided wire is formed by twisting a fiber single wire and a functional wire; The functional wire is one of nano silver coated fiber wire, bamboo charcoal fiber wire, organic antibacterial chemical coated fiber wire, chitosan fiber wire, metal antistatic wire or a combination of multiple thereof; The fiber single thread is formed of one of animal fiber, plant fiber or chemical fiber.
2. The antibacterial and mite-removing functional fabric according to claim 1, characterized in that: An acrylic wear-resistant braided layer, a chemical fiber antibacterial braided layer and a nylon wear-resistant fiber layer are stacked between the fluffy fabric layer and the dot-plastic bottom layer. The acrylic wear-resistant braided layer, the chemical fiber antibacterial braided layer and the nylon wear-resistant fiber layer are stacked in sequence from top to bottom and are compositely connected by functional braided wires woven and interlaced up and down.
3. The antibacterial and mite-removing functional fabric according to claim 1 or 2, characterized in that: The functional braided wire is braided in an S-shaped braided structure, a V-shaped braided structure or a 3D braided structure.
4. The antibacterial and mite-removing functional fabric according to claim 3, characterized in that: The functional braided wire is formed by twisting four single wires, which include two fiber single wires, a nano-silver coated fiber wire and a metal anti-static wire. The nano-silver coated fiber wire and the metal anti-static wire are separated by two fiber single wires on both sides during the twisting process.
5. The antibacterial and mite-removing functional fabric according to claim 1, characterized in that: The dot-molded bottom layer is a polyvinyl chloride waterproof roll material layer.
6. The antibacterial and mite-removing functional fabric according to claim 1, characterized in that: The pile fabric layer comprises a pile base layer and a pile surface layer.