Acetic acid fabric

By introducing phase change material lines, bio-based polymer fiber wires, antibacterial nano silver wires and titanium dioxide soaked crystal wires into the acetate fabric, the problems of insufficient temperature adjustment, strength, antibacteriality and self-cleaning properties of traditional acetate fabrics are solved, and high-performance and environmentally friendly fabric applications are achieved.

CN223150741UActive Publication Date: 2025-07-25ZHEJIANG YUEXIN PRINTING & DYEING CO LTD
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Patent Information

Application Number
CN202422133731.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-07-25
Estimated Expiration
2034-09-02

AI Technical Summary

Technical Problem

Traditional acetic acid fabrics have shortcomings in temperature regulation, strength, antibacteriality and self-cleaning properties, which are difficult to meet the high-performance needs of modern consumers, and their environmental performance needs to be improved.

Method used

Weaving technology of phase change material lines, bio-based polymer fiber wires, antibacterial nano-silver wires and titanium dioxide soaked crystal wires is used, and the cover weaving is combined with nano-fiber wires and graphene wires is used to achieve temperature regulation, environmentally friendly and antibacterial, self-cleaning and high strength.

Benefits of technology

It realizes intelligent temperature control, environmentally friendly and antibacterial, self-cleaning and high strength of fabrics, improves comfort and aesthetics, enhances structural stability and electrical and thermal conductivity, and is suitable for a variety of applications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an acetic acid fabric, and relates to the technical field of acetic acid fabrics, the acetic acid fabric comprises a phase change material line, one side of the phase change material line is provided with a bio-based polymer fiber yarn, and one side of the bio-based polymer fiber yarn far away from the phase change material line is provided with an antibacterial nanometer silver wire. By combining the phase-change material lines, the bio-based polymer fibers, the antibacterial silver nanowires and the titanium dioxide soaked crystal lines and adopting an innovative weaving technology, various excellent performances such as temperature regulation, environmental protection, antibiosis, self-cleaning and high strength are realized, and in the actual use process, the fabric not only provides excellent functionality, but also has the functions of temperature regulation, environmental protection, self-cleaning and high strength. The fabric has the advantages that the fabric is simple in structure, comfort and attractiveness are guaranteed, the fabric has wide application prospects, the structure stability, the electric conductivity and the thermal conductivity of the fabric are enhanced by means of surface-covering weaving of the nano-fibers and the graphene wires, and the strength and durability of the fabric are further improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of acetate fabrics, in particular to an acetate fabric. Background Art

[0002] With the improvement of people's requirements for the quality of life, the functionality and comfort of textiles have received increasing attention. Due to its soft, breathable and comfortable characteristics, acetate fabrics have been widely used in the fields of clothing, home furnishings, etc. However, traditional acetate fabrics often have problems such as easy wrinkling, insufficient strength and poor antibacterial properties during use, making it difficult to meet the needs of modern consumers for high-performance textiles. In addition, with the enhancement of environmental awareness, consumers have also put forward higher requirements for the environmental performance of textiles, such as the use of renewable materials and the sustainable production of fabrics. Therefore, developing a new type of acetate fabric that integrates temperature regulation, antibacterial, self-cleaning and high strength has become an important research direction in the current textile industry.

[0003] Although existing acetate fabrics have certain advantages in terms of comfort and appearance, they still face some challenges in actual use. First of all, traditional acetate fabrics have limited performance in temperature regulation and cannot adapt to temperature changes in different environments, affecting the wearing experience. Secondly, the strength and durability of acetate fabrics are weak, easy to wear, and have a short service life. In addition, existing acetate fabrics usually do not have antibacterial functions and are prone to bacteria growth in humid or complex environments, affecting the hygiene and safety of the fabrics. At the same time, the lack of self-cleaning function makes the fabric easy to adsorb stains and dust, increasing the difficulty of cleaning and maintenance. Therefore, we provide an acetate fabric. Summary of the Utility Model

[0004] The purpose of the utility model is to solve the disadvantages existing in the prior art and provide an acetate fabric.

[0005] To achieve the above purpose, the utility model adopts the following technical scheme: an acetate fabric, comprising: a phase change material thread, on one side of the phase change material thread is provided a bio-based polymer fiber filament, on the side of the bio-based polymer fiber filament away from the phase change material thread is provided an antibacterial nano silver wire, and on the side of the antibacterial nano silver wire away from the bio-based polymer fiber filament is provided a titanium dioxide-soaked crystal wire.

[0006] As a preferred embodiment, the materials used in the fabric woven by the phase change material thread, bio-based polymer fiber filament, antibacterial nano silver wire and titanium dioxide-soaked crystal wire during surface covering and sewing are nanofiber filaments and graphene wires.

[0007] As a preferred embodiment, the diameters of both the nanofiber filaments and the graphene wires are 0.5 mm line segments. The nanofiber filaments are vertically woven and sealed in the rows of the fabric partition area with a line density of 1 by using a silver needle with a radius of 0.3 mm through the warp and weft in a straight and staggered arrangement. The graphene wires are vertically woven and sealed by using a silver needle with a radius of 0.3 mm through the warp and weft in an alternating arrangement in the rows between two nanofiber filaments.

[0008] As a preferred embodiment, the phase change material wire and the bio-based polymer fiber filament are stitched by using a 1 cm thick silver needle through repeated cross and staggered arrangements.

[0009] As a preferred embodiment, the antibacterial nano-silver wire fills the holes in the X-axis direction of the fabric woven by the phase change material wire and the bio-based polymer fiber filament by using a 0.5 cm medium silver needle through repeated stitching holes in the fabric woven by the phase change material wire and the bio-based polymer fiber filament.

[0010] As a preferred embodiment, the titanium dioxide-soaked crystal wire is woven in a multi-axial and interlaced manner on the fabric woven by the phase change material wire and the bio-based polymer fiber filament by using a 0.5 cm medium silver needle in the holes not patched by the antibacterial nano-silver wire.

[0011] Compared with the prior art, the advantages and positive effects of the present utility model are as follows:

[0012] By combining the phase change material wire, the bio-based polymer fiber filament, the antibacterial nano-silver wire and the titanium dioxide-soaked crystal wire, as well as innovative weaving techniques, the present utility model achieves various excellent properties such as temperature regulation, environmental protection and antibacterial, self-cleaning and high strength. In the actual use process, the fabric not only provides excellent functionality, but also ensures comfort and aesthetics, and has a wide range of application prospects. By using nanofiber filaments and graphene wires for surface weaving, not only the structural stability and electrical and thermal conductivity of the fabric are enhanced, but also the strength and durability of the fabric are further improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 FIG. is a schematic structural diagram of an acetate fabric provided by the present utility model.

[0014] Figure 2 FIG. is a schematic diagram of the split structure of the nanofiber filaments and graphene wires of an acetate fabric provided by the present utility model.

[0015] Figure 3 FIG. is a schematic diagram of the split structure of a single-layer phase change material of an acetate fabric provided by the present utility model.

[0016] Figure 4Schematic diagram of the splitting structure of a composite fabric made of acetic acid fabric provided by the present utility model.

[0017] Legend:

[0018] 1. Nano fiber filaments; 2. Graphene wires; 3. Phase change material wires; 4. Bio-based polymer fiber filaments; 5. Antibacterial nano silver wires; 6. Titanium dioxide-soaked crystal wires. Specific embodiments

[0019] In order to more clearly illustrate the overall concept of the present utility model, the following will be further described in detail by way of examples in combination with the accompanying drawings of the specification.

[0020] It should be noted that many specific details are set forth in the following description in order to fully understand the present utility model. However, the present utility model can also be implemented in other ways different from those described herein. Therefore, the protection scope of the present utility model is not limited by the specific embodiments disclosed below.

[0021] In addition, in the description of the present utility model, it should be understood that the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "axial", "radial", "circumferential", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be construed as a limitation of the present utility model.

[0022] In the present utility model, unless otherwise clearly defined and limited, the terms "installation", "connection", "connection", "fixation", etc. should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be directly connected, or indirectly connected through an intermediate medium, and can be the communication inside two elements or the interaction relationship between two elements. However, indicating a direct connection means that there is no connection relationship constructed through a transition structure between the two connected main bodies, and only a connection structure is used to connect them to form a whole. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.

[0023] In the present utility model, unless otherwise clearly defined and limited, the first feature being "on" or "under" the second feature may be that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. In the description of this specification, the description with reference to terms such as "one embodiment", "some embodiments", "example", "specific example" or "some examples" means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present utility model. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0024] Embodiment 1

[0025] As Figures 1-3 shown, the present utility model provides a technical solution: an acetic acid fabric, comprising: a phase change material wire 3, a bio-based polymer fiber filament 4 is disposed on one side of the phase change material wire 3, an antibacterial nano silver wire 5 is disposed on the side of the bio-based polymer fiber filament 4 away from the phase change material wire 3, a titanium dioxide-soaked crystal wire 6 is disposed on the side of the antibacterial nano silver wire 5 away from the bio-based polymer fiber filament 4. The phase change material wire 3 and the bio-based polymer fiber filament 4 are sutured by using a 1 cm thick silver needle through cross-crossing and repeated interleaving arrangements. The antibacterial nano silver wire 5 fills the holes in the X-axis direction of the fabric woven by the phase change material wire 3 and the bio-based polymer fiber filament 4 by means of repeated weaving through the sewing holes by using a 0.5 cm medium silver needle. The titanium dioxide-soaked crystal wire 6 is woven in a multi-axial and interpenetrating manner in the holes that have not been mended by using the antibacterial nano silver wire 5 on the fabric woven by the phase change material wire 3 and the bio-based polymer fiber filament 4 by using a 0.5 cm medium silver needle.

[0026] In this embodiment, the phase change material wire 3 in the fabric can store and release heat according to the change of the environmental temperature, realize intelligent temperature control, and provide a comfortable wearing experience. The bio-based polymer fiber filament 4, with its renewable resource source and good degradability, significantly reduces environmental pollution and demonstrates excellent environmental protection and sustainability. The antibacterial nano silver wire 5 endows the fabric with strong antibacterial and antiviral capabilities, effectively inhibiting the growth of bacteria and viruses and providing additional hygienic protection. In addition, the titanium dioxide-soaked crystal wire 6 endows the fabric with a self-cleaning function through photocatalysis, reducing the number of washings and the use of chemical detergents. Finally, the weaving structure of the fabric adopts cross-crossing and repeated interleaving arrangements and multi-axial weaving techniques, greatly enhancing the mechanical strength and toughness of the fabric, making it perform excellently in terms of stretching, compression and abrasion resistance, and being suitable for occasions with high-strength requirements.

[0027] Embodiment 2

[0028] As Figures 1-4 shown, when the fabric woven by the phase change material wire 3, the bio-based polymer fiber filament 4, the antibacterial nano silver wire 5 and the titanium dioxide-soaked crystal wire 6 is cover-stitched, the materials used are the nanofiber filament 1 and the graphene wire 2. The diameters of both the nanofiber filament 1 and the graphene wire 2 are 0.5 mm line segments. The nanofiber filament 1 is vertically woven and sealed in the rows of the fabric partition area 1 by using a silver needle with a radius of 0.3 mm through the warp and weft straight interlacing arrangement. The graphene wire 2 is vertically woven and sealed by using a silver needle with a radius of 0.3 mm through the warp and weft alternating weaving in the rows between two nanofiber filaments 1.

[0029] In this embodiment, by using the nanofiber filament 1 and the graphene wire 2 for cover weaving, the functionality and performance of the fabric are further improved. The nanofiber filament 1 is vertically woven and sealed in the rows of the fabric partition area 1 with a silver needle with a radius of 0.3 mm, and its straight interlacing arrangement enhances the structural stability and strength of the fabric. At the same time, the graphene wire 2 is vertically sealed by the alternating warp and weft weaving method in the rows between two nanofiber filaments 1, which not only improves the electrical conductivity and thermal conductivity of the fabric, but also further strengthens the overall toughness and durability of the fabric.

[0030] Working principle:

[0031] As Figures 1-4 shown, first of all, the phase change material wire 3 in the fabric can intelligently sense the change of the environmental temperature and adjust the temperature by storing and releasing heat. This intelligent temperature control function ensures that the wearer will feel comfortable under different climate conditions, providing an ideal body temperature whether in cold winter or hot summer.

[0032] Secondly, the bio-based polymer fiber filament 4, with its characteristics of being derived from renewable resources and good degradability, significantly reduces the impact on the environment. This not only reduces the carbon footprint, but also enables the fabric to degrade faster after being discarded, reducing environmental pollution, demonstrating excellent environmental protection and sustainability.

[0033] The antibacterial nano silver wire 5 endows the fabric with strong antibacterial and antiviral capabilities. The nano silver particles can effectively destroy the cell walls of bacteria and viruses, inhibiting their growth and reproduction, thus providing additional hygienic protection. This characteristic is especially suitable for medical, sports and daily clothing that require high hygiene standards.

[0034] In addition, the titanium dioxide-soaked crystal wire 6 enables the fabric to have a self-cleaning function through photocatalysis. Under light conditions, titanium dioxide can decompose the organic pollutants and dirt on the fabric surface, reducing the number of washes and the dependence on chemical detergents. This not only reduces the maintenance cost, but also extends the service life of the fabric.

[0035] The knitting structure of the fabric adopts a cross-cross repeated staggered arrangement and multi-axial knitting technology, which greatly enhances its mechanical strength and toughness. This complex knitting method enables the fabric to perform excellently in terms of stretching, compression, and abrasion resistance, and is suitable for applications that require high strength, such as sportswear and outdoor equipment.

[0036] On this basis, by using nanofiber filaments 1 and graphene wires 2 for surface covering knitting, the functionality and performance of the fabric are further improved. The nanofiber filaments 1 are vertically knitted and sealed with silver needles with a radius of 0.3 mm between the rows in the fabric partition area 1, and their straight staggered arrangement enhances the structural stability and strength of the fabric. At the same time, the graphene wires 2 are vertically sealed by an alternating warp and weft knitting method between two rows of nanofiber filaments 1, which not only improves the electrical conductivity and thermal conductivity of the fabric, but also further strengthens the overall toughness and durability of the fabric.

[0037] Those of ordinary skill in the art should understand that the discussion of any above embodiments is only exemplary, and is not intended to imply that the scope of the present invention (including the claims) is limited to these examples; under the concept of the present invention, the technical features in the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other variations in different aspects of the present invention as described above, which are not provided in detail for the sake of brevity.

[0038] The present invention aims to cover all such substitutions, modifications, and variations that fall within the broad scope of the appended claims. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention shall be included within the protection scope of the present invention.

Claims

1. An acetate fabric, characterized in that, Including: A phase change material wire (3), on one side of the phase change material wire (3) is provided with a bio-based polymer fiber filament (4), on the side of the bio-based polymer fiber filament (4) away from the phase change material wire (3) is provided with an antibacterial nano silver wire (5), and on the side of the antibacterial nano silver wire (5) away from the bio-based polymer fiber filament (4) is provided with a titanium dioxide-soaked crystal wire (6).

2. The acetate fabric according to claim 1, wherein: The materials used for covering and stitching the fabric woven by the phase change material wire (3), the bio-based polymer fiber filament (4), the antibacterial nano silver wire (5) and the titanium dioxide-soaked crystal wire (6) are nano fiber filaments (1) and graphene wires (2).

3. The acetate fabric according to claim 2, characterized in that: The diameters of the nano fiber filaments (1) and the graphene wires (2) are both 0.5 mm line segments. The nano fiber filaments (1) are vertically woven and sealed in the row with an area of 1 in the fabric partition area by using a silver needle with a radius of 0.3 mm through the warp and weft straight interlaced arrangement. The graphene wires (2) are vertically woven and sealed by using a silver needle with a radius of 0.3 mm through the warp and weft alternately woven in the row between the two nano fiber filaments (1).

4. The acetate fabric according to claim 1, characterized in that: The phase change material wire (3) and the bio-based polymer fiber filament (4) are stitched by using a 1 cm thick silver needle through crosswise repeated interlaced arrangement.

5. The acetate fabric according to claim 1, characterized in that: The antibacterial nano silver wire (5) fills the holes in the X-axis direction of the fabric woven by the phase change material wire (3) and the bio-based polymer fiber filament (4) by using a 0.5 cm medium silver needle through the sewing hole repeated weaving method on the fabric woven by the phase change material wire (3) and the bio-based polymer fiber filament (4).

6. The acetate fabric according to claim 1, wherein: The titanium dioxide-soaked crystal wire (6) is multi-axially woven and interspersed by using a 0.5 cm medium silver needle on the fabric woven by the phase change material wire (3) and the bio-based polymer fiber filament (4) in the holes not mended by using the antibacterial nano silver wire (5).