Flame-retardant stainless steel fiber metal woven fabric

By using silicon-based coating and flame-retardant polyester fibers in stainless steel fiber woven fabrics to form a flame-retardant protective layer, the problem of flammability during combustion of stainless steel fiber woven fabrics is solved, and effective flame-retardant effect and heat management are achieved.

CN223033561UActive Publication Date: 2025-06-27JIANGSU RONGAN DEFENSE TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422091931.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-28
Publication Date
2025-06-27
Estimated Expiration
2034-08-28

Smart Images

  • Figure CN223033561U_ABST
    Figure CN223033561U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of woven cloth, in particular to flame-retardant stainless steel fiber metal woven cloth which comprises woven cloth, a rotating shaft is connected to the middle of the woven cloth, and limiting baffles are connected to the two ends of the rotating shaft. The woven fabric is composed of a covered edge, first flame-retardant polyester fibers, second flame-retardant polyester fibers, a silicon-based coating, first stainless steel fibers, second stainless steel fibers and glass fibers, and the glass fibers are arranged on the two sides of the outer portion of the first stainless steel fibers and the two sides of the outer portion of the second stainless steel fibers. A first flame-retardant polyester fiber and a second flame-retardant polyester fiber are connected between the first stainless steel fiber and the second stainless steel fiber, and covered edges are connected to the positions, close to the edges, of the outer portions of the first flame-retardant polyester fiber, the second flame-retardant polyester fiber, the first stainless steel fiber, the second stainless steel fiber and the glass fiber. Silicon-based coatings are arranged outside the first flame-retardant polyester fibers, the second flame-retardant polyester fibers and the glass fibers, and limiting sleeves are connected to the outer sides of the limiting baffles.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of woven fabrics, in particular to a flame-retardant stainless steel fiber metal woven fabric. Background Technique

[0002] The woven fabric made of stainless steel fiber metal has heat absorption during combustion, which easily causes the combustion of other fibers mixed in the woven fabric and is difficult to extinguish.

[0003] Therefore, it is necessary to design a flame-retardant stainless steel fiber metal woven fabric to solve the problems in the above background technique. Content of the Utility Model

[0004] The purpose of the utility model is to solve the problems in the prior art, and a flame-retardant stainless steel fiber metal woven fabric is proposed.

[0005] To achieve the above purpose, the utility model provides the following technical solution:

[0006] A flame-retardant stainless steel fiber metal woven fabric, including a woven fabric, a rotating shaft is connected in the middle of the woven fabric, and limiting baffles are connected to both ends of the rotating shaft;

[0007] The woven fabric is composed of a hem, a first flame-retardant polyester fiber, a second flame-retardant polyester fiber, a silicon-based coating, a first stainless steel fiber, a second stainless steel fiber and glass fiber. Glass fibers are arranged on both outer sides of the first stainless steel fiber and the second stainless steel fiber. A first flame-retardant polyester fiber and a second flame-retardant polyester fiber are connected between the first stainless steel fiber and the second stainless steel fiber. A hem is connected to the outer side near the edge of the first flame-retardant polyester fiber, the second flame-retardant polyester fiber, the first stainless steel fiber, the second stainless steel fiber and the glass fiber. Silicon-based coatings are arranged on the outer sides of the first flame-retardant polyester fiber, the second flame-retardant polyester fiber and the glass fiber;

[0008] A limiting sleeve is connected to the outer side of the limiting baffle.

[0009] As a preferred scheme of the utility model, the first stainless steel fiber, the second stainless steel fiber and the glass fiber form warp yarns and weft yarns, and the first stainless steel fiber, the second stainless steel fiber and the glass fiber are interwoven with each other in two perpendicular directions of warp and weft.

[0010] As a preferred scheme of the utility model, the hem is pasted on the outer side near the edge of the first flame-retardant polyester fiber, the second flame-retardant polyester fiber, the first stainless steel fiber, the second stainless steel fiber and the glass fiber.

[0011] As a preferred scheme of the utility model, the silicon-based coating forms a silicon oxide layer on the outer sides of the first flame-retardant polyester fiber, the second flame-retardant polyester fiber and the glass fiber.

[0012] As a preferred solution of the present utility model, the woven fabric is wound around the rotating shaft.

[0013] As a preferred solution of the present utility model, both ends of the rotating shaft pass through the limit baffle and are sleeved with a limit sleeve, and the limit sleeve is connected to the rotating shaft and the limit baffle by bolts.

[0014] To sum up, the technical effects and advantages of the present utility model: For this flame-retardant stainless steel fiber metal woven fabric, the silicon-based coating forms a silicon oxide layer outside the first flame-retardant polyester fiber, the second flame-retardant polyester fiber, and the glass fiber, blocking the entry of oxygen and slowing down the combustion rate. A flame-retardant protective layer is formed on the surfaces of the first flame-retardant polyester fiber, the second flame-retardant polyester fiber, and the glass fiber, slowing down the combustion process and preventing the release of molten droplets. The glass fiber has good insulation, high temperature resistance, and good corrosion resistance. The first flame-retardant polyester fiber and the second flame-retardant polyester fiber have excellent flame retardancy. When encountering fire, they only melt and do not burn. The glass fiber, the first flame-retardant polyester fiber, and the second flame-retardant polyester fiber are used in combination with the first stainless steel fiber and the second stainless steel fiber, and a covering layer can be formed outside the first stainless steel fiber and the second stainless steel fiber to become a barrier, which not only isolates oxygen and prevents the diffusion of combustible gases, but also blocks heat conduction and heat radiation, reducing the heat fed back to the first stainless steel fiber and the second stainless steel fiber, and reducing heat accumulation while achieving flame retardancy. Description of the Drawings

[0015] Figure 1 is the overall structure diagram of the present utility model;

[0016] Figure 2 is the structure diagram of the woven fabric of the present utility model;

[0017] Figure 3 is the structure diagram of the first flame-retardant polyester fiber of the present utility model;

[0018] Figure 4 is the structure diagram of the first stainless steel fiber of the present utility model.

[0019] In the figure: 1, woven fabric; 101, edge wrapping; 102, first flame-retardant polyester fiber; 103, second flame-retardant polyester fiber; 104, silicon-based coating; 105, first stainless steel fiber; 106, second stainless steel fiber; 107, glass fiber; 2, limit baffle; 201, limit sleeve; 3, rotating shaft. Detailed Embodiments

[0020] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments.

[0021] Refer toFigures 1 - 4 , a flame-retardant stainless steel fiber metal woven fabric, comprising a woven fabric 1, a rotating shaft 3 is connected to the middle of the woven fabric 1, and limiting baffles 2 are connected to both ends of the rotating shaft 3; the woven fabric 1 is composed of a wrapping edge 101, a first flame-retardant polyester fiber 102, a second flame-retardant polyester fiber 103, a silicon-based coating 104, a first stainless steel fiber 105, a second stainless steel fiber 106 and a glass fiber 107, and glass fibers 107 are arranged on both outer sides of the first stainless steel fiber 105 and the second stainless steel fiber 106, a first flame-retardant polyester fiber 102 and a second flame-retardant polyester fiber 103 are connected between the first stainless steel fiber 105 and the second stainless steel fiber 106, a wrapping edge 101 is connected to the outer sides of the first flame-retardant polyester fiber 102, the second flame-retardant polyester fiber 103, the first stainless steel fiber 105, the second stainless steel fiber 106 and the glass fiber 107 near the edge, and a silicon-based coating 104 is arranged on the outer sides of the first flame-retardant polyester fiber 102, the second flame-retardant polyester fiber 103 and the glass fiber 107; a limiting sleeve 201 is connected to the outer side of the limiting baffle 2.

[0022] Refer to Figures 1 - 4 , the woven fabric made of stainless steel fiber metal has heat absorption during combustion, which easily causes the combustion of other fibers mixed in the woven fabric and is relatively difficult to extinguish. The first stainless steel fiber 105, the second stainless steel fiber 106 and the glass fiber 107 form warp and weft yarns, and the first stainless steel fiber 105, the second stainless steel fiber 106 and the glass fiber 107 are interwoven perpendicular to each other in two directions of warp and weft. The silicon-based coating 104 forms a silicon oxide layer on the outer sides of the first flame-retardant polyester fiber 102, the second flame-retardant polyester fiber 103 and the glass fiber 107 to block the entry of oxygen and slow down the combustion rate, and forms a flame-retardant protective layer on the surfaces of the first flame-retardant polyester fiber 102, the second flame-retardant polyester fiber 103 and the glass fiber 107 to slow down the combustion process and prevent the release of molten droplets.

[0023] Refer to Figures 1 - 4, the edge binding 101 is pasted on the outside near the edge of the first flame-retardant polyester fiber 102, the second flame-retardant polyester fiber 103, the first stainless steel fiber 105, the second stainless steel fiber 106 and the glass fiber 107. The woven fabric 1 is wound around the rotating shaft 3. Both ends of the rotating shaft 3 pass through the limit baffle 2 and are sleeved and connected with the limit sleeve 201. The limit sleeve 201 is bolted to the rotating shaft 3 and the limit baffle 2. The glass fiber 107 has good insulation, high temperature resistance and good corrosion resistance. The first flame-retardant polyester fiber 102 and the second flame-retardant polyester fiber 103 have excellent flame retardancy. When encountering fire, they only melt and do not burn. The glass fiber 107, the first flame-retardant polyester fiber 102 and the second flame-retardant polyester fiber 103 are used in combination with the first stainless steel fiber 105 and the second stainless steel fiber 106, and can form a covering layer outside the first stainless steel fiber 105 and the second stainless steel fiber 106 to become a barrier, which not only isolates oxygen and prevents the diffusion of combustible gases, but also blocks heat conduction and heat radiation, reduces the heat fed back to the first stainless steel fiber 105 and the second stainless steel fiber 106, and reduces heat accumulation while achieving flame retardancy.

[0024] Working principle: The first stainless steel fiber 105, the second stainless steel fiber 106 and the glass fiber 107 of the flame-retardant stainless steel fiber metal woven fabric form warp and weft yarns. The first stainless steel fiber 105, the second stainless steel fiber 106 and the glass fiber 107 are interwoven perpendicular to each other in the warp and weft directions. The silicon-based coating 104 forms a silicon oxide layer outside the first flame-retardant polyester fiber 102, the second flame-retardant polyester fiber 103 and the glass fiber 107 to block the entry of oxygen and slow down the combustion rate. A flame-retardant protective layer is formed on the surfaces of the first flame-retardant polyester fiber 102, the second flame-retardant polyester fiber 103 and the glass fiber 107 to slow down the combustion process and prevent the release of molten droplets. The edge binding 101 is pasted on the outside near the edge of the first flame-retardant polyester fiber 102, the second flame-retardant polyester fiber 103, the first stainless steel fiber 105, the second stainless steel fiber 106 and the glass fiber 107. The woven fabric 1 is wound around the rotating shaft 3. Both ends of the rotating shaft 3 pass through the limit baffle 2 and are sleeved and connected with the limit sleeve 201. The limit sleeve 201 is bolted to the rotating shaft 3 and the limit baffle 2. The glass fiber 107 has good insulation, high temperature resistance and good corrosion resistance. The first flame-retardant polyester fiber 102 and the second flame-retardant polyester fiber 103 have excellent flame retardancy. When encountering fire, they only melt and do not burn. The glass fiber 107, the first flame-retardant polyester fiber 102 and the second flame-retardant polyester fiber 103 are used in combination with the first stainless steel fiber 105 and the second stainless steel fiber 106, and can form a covering layer outside the first stainless steel fiber 105 and the second stainless steel fiber 106 to become a barrier, which not only isolates oxygen and prevents the diffusion of combustible gases, but also blocks heat conduction and heat radiation, reduces the heat fed back to the first stainless steel fiber 105 and the second stainless steel fiber 106, and reduces heat accumulation while achieving flame retardancy.

[0025] Although embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.

Claims

1. A flame retardant stainless steel fiber metal woven fabric, comprising a woven fabric (1), characterized in that: A rotating shaft (3) is connected in the middle of the woven fabric (1), and both ends of the rotating shaft (3) are connected to limit baffles (2); The woven fabric (1) is composed of a binding (101), a first flame-retardant polyester fiber (102), a second flame-retardant polyester fiber (103), a silicon-based coating (104), a first stainless steel fiber (105), a second stainless steel fiber (106), and a glass fiber (107); the first stainless steel fiber (105) and the second stainless steel fiber (106) are provided with glass fibers (107) on both sides of the outside; the first flame-retardant polyester fiber (102) and the second flame-retardant polyester fiber (103) are connected between the first stainless steel fiber (105) and the second stainless steel fiber (106); the first flame-retardant polyester fiber (102), the second flame-retardant polyester fiber (103), the first stainless steel fiber (105), the second stainless steel fiber (106), and the glass fiber (107) are connected with a binding (101) near the edge of the outside; and the first flame-retardant polyester fiber (102), the second flame-retardant polyester fiber (103), and the glass fiber (107) are provided with a silicon-based coating (104) on the outside; The outer side of the limit baffle (2) is connected to a limit sleeve (201).

2. The flame retardant stainless steel fiber metal woven fabric according to claim 1, characterized in that: The first stainless steel fibers (105), the second stainless steel fibers (106), and the glass fibers (107) form warp yarns and weft yarns, and the first stainless steel fibers (105), the second stainless steel fibers (106), and the glass fibers (107) are interwoven perpendicularly to each other in warp and weft directions.

3. The flame retardant stainless steel fiber metal woven fabric according to claim 1, characterized in that: The hemming (101) is adhered to the outside of the first flame-retardant polyester fiber (102), the second flame-retardant polyester fiber (103), the first stainless steel fiber (105), the second stainless steel fiber (106), and the glass fiber (107) near the edge.

4. The flame retardant stainless steel fiber metal woven fabric according to claim 1, characterized in that: The silicon-based coating (104) forms a silicon oxide layer outside the first flame-retardant polyester fiber (102), the second flame-retardant polyester fiber (103), and the glass fiber (107).

5. The flame retardant stainless steel fiber metal woven fabric according to claim 1, characterized in that: The woven fabric (1) is wound on a rotating shaft (3).

6. The flame retardant stainless steel fiber metal woven fabric according to claim 1, characterized in that: The two ends of the rotating shaft (3) pass through the limiting baffle (2) and are sleeve-connected with the limiting sleeve (201); the limiting sleeve (201) and the rotating shaft (3) and the limiting baffle (2) are connected by bolts.