Anti-static nano antibacterial curtain fabric

By using conductive fibers and flexible conductive wires combined with a nano-silver coating in curtain fabric, the problems of static electricity and bacterial growth in curtain fabric are solved, achieving highly efficient anti-static and antibacterial effects.

CN224089818UActive Publication Date: 2026-04-07JIANGSU INTERCONTINENTAL HOME TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing curtain fabrics are prone to generating static electricity during use, attracting dust and breeding bacteria, and the existing conductive fibers have insufficient antistatic and antibacterial properties.

Method used

The conductive fibers are made from the warp and/or weft yarns in the woven fabric, and metal slip rings and flexible conductive wires are set between the fabric layers. Combined with a nano silver coating, it achieves double-sided antibacterial effect, realizing current conduction and antibacterial effect.

Benefits of technology

It significantly improves antistatic properties and ensures antibacterial effects through a double-sided nano-silver coating, thus enhancing the performance of the curtain fabric.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-static nanometer bacteriostatic curtain fabric which comprises a first fabric layer, a second fabric layer, metal slip rings and a flexible conductive wire, the first fabric layer is arranged on the front face of the second fabric layer, the metal slip rings are arranged at the top of the first fabric layer and the top of the second fabric layer at intervals in the length direction of the first fabric layer, and the flexible conductive wire is arranged on the metal slip rings. The flexible conductive wire is arranged in a gap between the first fabric layer and the second fabric layer and extends in the width direction of the first fabric layer, the top end of the flexible conductive wire is connected with the metal slip ring, and conductive adhesives located on the two sides of the flexible conductive wire are arranged between the first fabric layer and the second fabric layer. A first nano-silver coating is arranged on the front surface of the first fabric layer. According to the anti-static nanometer antibacterial curtain fabric, the flexible electric lead is used for sending current to the metal sliding ring, the metal sliding ring is matched with the metal Roman rod, the anti-static effect is improved, and the antibacterial effect is good.
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Description

Technical Field

[0001] This utility model relates to the field of curtain fabrics, and in particular to an antistatic nano antibacterial curtain fabric. Background Technology

[0002] Curtains generate static electricity during use, easily attracting dust, increasing maintenance frequency and the risk of bacterial growth. Therefore, it's necessary to choose curtains with anti-static properties. To enhance the anti-static effect, conductive fibers can be used in the fabric weaving.

[0003] Conductive fibers are mainly divided into metal fibers and conductive metal compound fibers. Metal fibers have good conductivity and are resistant to chemical corrosion, but for curtain fabrics, metal fibers have low cohesion, poor spinning performance, and limited finished product color. Therefore, metal fibers are not suitable for weaving curtain fabrics. Conductive metal compound fibers use sulfides, iodides, or oxides of copper, nickel, and cadmium as conductive materials, and are made by mixed spinning, adsorption, or chemical reaction methods. They have good strength and can be used for weaving curtain fabrics, but their electromagnetic shielding and antistatic properties are generally poor, and they are not antibacterial, requiring improvement. Utility Model Content

[0004] The purpose of this invention is to provide an antistatic nano-antibacterial curtain fabric that enhances the antistatic and antibacterial effects.

[0005] To achieve this objective, the present invention adopts the following technical solution:

[0006] An antistatic nano-antibacterial curtain fabric includes: a first fabric layer, a second fabric layer, a metal slip ring, and a flexible conductive wire. The first fabric layer is disposed on the front side of the second fabric layer. The metal slip ring is spaced apart at the top of the first and second fabric layers along the length direction of the first fabric layer. The flexible conductive wire is disposed in the gap between the first and second fabric layers and extends along the width direction of the first fabric layer. The top end of the flexible conductive wire is connected to the metal slip ring. Conductive adhesive is disposed between the first and second fabric layers on both sides of the flexible conductive wire. A first nano-silver coating is disposed on the front side of the first fabric layer.

[0007] The first and second fabric layers are provided with mounting holes corresponding to the metal slip rings.

[0008] The flexible conductive wires correspond one-to-one with the metal slip rings.

[0009] The second fabric layer has a second nano-silver coating on its back side.

[0010] The first and second fabric layers are made of woven fabric.

[0011] The warp and / or weft yarns in the woven fabric are made of conductive fibers.

[0012] The beneficial effects of this utility model are as follows: An antistatic nano-antibacterial curtain fabric is specially designed with a metal slip ring and a flexible conductive wire. The flexible conductive wire sends current to the metal slip ring, and the metal slip ring cooperates with the metal Roman rod to greatly improve the antistatic effect. Furthermore, the first nano-silver coating and the second nano-silver coating are used for double-sided antibacterial effect to ensure the antibacterial effect. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the structure of this utility model;

[0014] Figure 2 yes Figure 1 Sectional view along axis AA;

[0015] Figure 3 yes Figure 2 A magnified view of part B in the middle section. Detailed Implementation

[0016] The following is combined with Figures 1 to 3 The technical solution of this utility model will be further illustrated through specific embodiments.

[0017] like Figure 1 The antistatic nano antibacterial curtain fabric shown includes: a first fabric layer 1, a second fabric layer 2, a metal slip ring 3, and a flexible conductive wire 4. The first fabric layer 1 and the second fabric layer 2 are made of woven fabric, which has a strong structure. In this embodiment, the warp and / or weft yarns in the woven fabric are made of conductive fibers, that is, conductive metal compound fibers, which have good flexibility, can be used to produce woven fabric, and provide a certain conductive effect.

[0018] The first fabric layer 1 is disposed on the front side of the second fabric layer 2. The metal slip rings 3 are disposed at intervals on the top of the first fabric layer 1 and the second fabric layer 2 along the length direction of the first fabric layer 1. In this embodiment, the first fabric layer 1 and the second fabric layer 2 are provided with mounting holes corresponding to the metal slip rings 3, which facilitates the installation and riveting of the metal slip rings 3, and strengthens the connection between the first fabric layer 1 and the second fabric layer 2 by using the riveted metal slip rings 3.

[0019] In addition, the metal slip ring 3 can be used with a metal Roman rod for easy hanging and sliding of the curtains. For example... Figures 2-3As shown, the flexible conductive wire 4 is disposed in the gap between the first fabric layer 1 and the second fabric layer 2 and extends along the width direction of the first fabric layer 1. The current in the first fabric layer 1 and the second fabric layer 2 can be sent to the metal slip ring through the flexible conductive wire 4. The metal slip ring 3 cooperates with the metal Roman rod to conduct electricity and ground, thereby improving the anti-static effect.

[0020] like Figure 3 As shown, the top end of the flexible conductive wire 4 is connected to the metal slip ring 3. The flexible conductive wire 4 can be made of extremely fine copper or aluminum wire, offering good flexibility and conductivity. In this embodiment, the flexible conductive wire 4 corresponds one-to-one with the metal slip ring 3, ensuring uniform distribution of the flexible conductive wire 4 and good anti-static effect.

[0021] Conductive adhesive 7 is provided between the first fabric layer 1 and the second fabric layer 2, located on both sides of the flexible conductive wire 4. The conductive adhesive 7 can both bond the first fabric layer 1 and the second fabric layer 2 and fix the flexible conductive wire 4 to prevent it from falling off.

[0022] In this embodiment, a first nano-silver coating 5 is provided on the front side of the first fabric layer 1, and the first nano-silver coating 5 is used to inhibit bacteria on the front side of the first fabric layer 1. Figure 3 As shown, a second nano-silver coating 6 is provided on the back of the second fabric layer 2. The second nano-silver coating 6 is used to inhibit bacteria on the back of the second fabric layer 2, resulting in a better double-sided antibacterial effect.

[0023] The above description is only a preferred embodiment of this utility model. For those skilled in the art, there will be changes in the specific implementation method and application scope based on the idea of ​​this utility model. The content of this specification should not be construed as a limitation of this utility model.

Claims

1. An antistatic nano-antibacterial curtain fabric, characterized in that, include: The system comprises a first fabric layer, a second fabric layer, a metal slip ring, and a flexible conductive wire. The first fabric layer is disposed on the front side of the second fabric layer. The metal slip ring is spaced apart at the top of the first and second fabric layers along the length of the first fabric layer. The flexible conductive wire is disposed in the gap between the first and second fabric layers and extends along the width of the first fabric layer. The top end of the flexible conductive wire is connected to the metal slip ring. Conductive adhesive is disposed between the first and second fabric layers on both sides of the flexible conductive wire. A first nano-silver coating is disposed on the front side of the first fabric layer.

2. The antistatic nano-antibacterial curtain fabric according to claim 1, characterized in that, The first fabric layer and the second fabric layer are provided with mounting holes corresponding to the metal slip ring.

3. The antistatic nano-antibacterial curtain fabric according to claim 1, characterized in that, The flexible conductive wires correspond one-to-one with the metal slip rings.

4. The antistatic nano-antibacterial curtain fabric according to claim 1, characterized in that, The back of the second fabric layer is provided with a second nano-silver coating.

5. The antistatic nano-antibacterial curtain fabric according to claim 1, characterized in that, The first and second fabric layers are made of woven fabric.

6. The antistatic nano-antibacterial curtain fabric according to claim 5, characterized in that, The warp and / or weft yarns in the woven fabric are made of conductive fibers.