Seamless anti-static garment

CN224722748UActive Publication Date: 2026-09-08SHISHI RUILISEN GARMENT CO LTD
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Patent Information

Application Number
CN202522183868.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-15
Publication Date
2026-09-08
Estimated Expiration
2035-10-15

AI Technical Summary

Technical Problem

外套使用一段时间后,缝线的缝隙会扩大,导致保温填充材料偶有漏出,影响使用

Benefits of technology

[0010] By adopting the above technical solution, the beneficial effects of this utility model are as follows: The first adhesive area of ​​this utility model bonds the first inner layer and the first outer layer of the main body together to form a seamless structure, and the second adhesive area bonds the second inner layer and the second outer layer of the sleeve together to form a seamless structure, preventing the insulation filling from leaking out. Static electricity generated by the clothing is sequentially discharged from the first inner layer, the conductive strip inside the sleeve, and the conductive strip outside the sleeve. When the wearer's sleeve comes into contact with an external object, the static electricity is discharged and will not accumulate inside the clothing.

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Abstract

The seamless anti-static clothes comprises a body, two sleeves, a first inner layer, a first outer layer, a second inner layer, a second outer layer, a conductive fabric, a sleeve outer conductive band and a sleeve inner conductive band, wherein the two sleeves are respectively arranged on the left and right sides of the body, the inner side of the first inner layer is provided with the conductive fabric, the lower end of the sleeve is provided with the sleeve outer conductive band, the sleeve outer conductive band is wound on the outer surface of the sleeve, the lower end of the sleeve inner conductive band is connected with the sleeve outer conductive band after being wound outwards through the sleeve cuff, and the upper end of the sleeve inner conductive band is connected with the conductive fabric. The first adhesive area is used for bonding the first inner layer and the first outer layer of the body together to form a seamless structure, the second adhesive area is used for bonding the second inner layer and the second outer layer of the sleeve together to form a seamless structure, and the heat preservation filler cannot leak out. The static electricity generated by the clothes is sequentially conducted out from the first inner layer, the sleeve inner conductive band and the sleeve outer conductive band. When the sleeve of the wearer contacts an external object, the static electricity is conducted out and cannot be accumulated in the clothes.
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Description

Technical Field

[0001] This utility model relates to the field of clothing, and in particular to seamless antistatic clothing. Background Technology

[0002] Winter coats typically have multiple cavities sewn between the inner and outer layers, filled with insulating material to provide warmth. After a period of use, the gaps in the seams widen, sometimes causing leakage of the insulating material, affecting its usability. Furthermore, winter coats are generally made of synthetic fibers, which accumulate static electricity when worn. This static electricity easily attracts dust, and contact with metal objects can result in electric shocks. Utility Model Content

[0003] The purpose of this invention is to overcome the above-mentioned shortcomings and provide seamless antistatic clothing that can reduce static electricity accumulation.

[0004] To achieve the above objectives, the technical solution of this utility model is: seamless antistatic clothing, including a body and two sleeves, the two sleeves being respectively disposed on the left and right sides of the body, the body including a first inner layer and a first outer layer, the inner side of the first inner layer being provided with conductive fabric; The sleeve includes a second inner layer and a second outer layer. Between the second inner layer and the second outer layer, there is a third bonding area and multiple second bonding areas that bond the second inner layer and the second outer layer together. The multiple second bonding areas are arranged in a row along the length of the sleeve. The third bonding area is arranged along the length of the sleeve and connected to the multiple second bonding areas. Two adjacent second bonding areas form a second filling cavity between the second inner layer and the second outer layer. The second filling cavity is filled with heat-insulating filling material. The inner side of the third bonding area is provided with an inner sleeve conductive strip. The lower end of the sleeve is provided with an external conductive strip that wraps around the outer surface of the sleeve. The lower end of the internal conductive strip goes outward around the cuff of the sleeve and connects to the external conductive strip. The upper end of the internal conductive strip is connected to the conductive fabric.

[0005] The second bonding zone bonds the second outer layer and the second inner layer together without stitches, forming a seamless structure. The insulating filling is locked within the second filling cavity to prevent leakage. The second outer layer and the second inner layer are bonded together through heat pressing to form the second bonding zone. Static electricity generated inside the garment is sequentially discharged through the first inner layer, the conductive strip inside the sleeve, and the conductive strip outside the sleeve. When the wearer's sleeve comes into contact with an object, the static electricity is discharged and does not accumulate inside the garment.

[0006] Preferably, the external conductive strip includes a strip body and a row of metal buckles. Each metal buckle includes a base and a tip. The tip is positioned on the base, which is fixed to the strip body. The tip faces outward from the strip body, and its outer end extends outward from the strip body. The metal buckles are used to release static electricity. Since the metal buckles are located on the outside of the sleeve, they will not cause static electricity to the arm.

[0007] Preferably, a plurality of first adhesive areas are provided between the first inner layer and the first outer layer. Two adjacent first adhesive areas form a first filling cavity between the first inner layer and the first outer layer, and the first filling cavity contains thermal insulation material. The first inner layer and the first outer layer are bonded together by the first adhesive areas to form a seamless structure. The thermal insulation material will not leak out from the first filling cavity.

[0008] Preferably, the main body includes a back area, a left half area, and a right half area. The left and right half areas are respectively located on the left and right sides of the back area. A first conductive strip is provided on the first adhesive area of ​​the left and right half areas inside the main body. The first conductive strip is connected to a conductive fabric, and a conductive buckle is provided on the first conductive strip. One end of the conductive buckle passes through the first adhesive area and protrudes from the outside of the main body. The conductive buckle protruding from the outside of the main body can release static electricity outwards, reducing static electricity accumulation.

[0009] Preferably, a second conductive strip is provided on the inner side of the sleeve within the second adhesive area, and the second conductive strip is connected to the conductive strip inside the sleeve. The second conductive strip is used to conduct static electricity from the arm into the conductive strip inside the sleeve.

[0010] By adopting the above technical solution, the beneficial effects of this utility model are as follows: The first adhesive area of ​​this utility model bonds the first inner layer and the first outer layer of the main body together to form a seamless structure, and the second adhesive area bonds the second inner layer and the second outer layer of the sleeve together to form a seamless structure, preventing the insulation filling from leaking out. Static electricity generated by the clothing is sequentially discharged from the first inner layer, the conductive strip inside the sleeve, and the conductive strip outside the sleeve. When the wearer's sleeve comes into contact with an external object, the static electricity is discharged and will not accumulate inside the clothing. Attached Figure Description

[0011] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 This is a schematic diagram of the structure of this utility model after it has been opened; Figure 3 This is a structural schematic diagram of the longitudinal section of the main body of this utility model; Figure 4 This is a schematic diagram of the cross-section of the sleeve area of ​​this utility model; Figure 5 This is a schematic diagram of the external conductive strip of the present invention; Figure 6 This is a structural schematic diagram of the conductive buckle position of this utility model.

[0012] Explanation of key figure labels: Body 1; Back area 11; Left half area 12; Right half area 13; First conductive strip 14; Conductive buckle 15; First inner layer 16; First outer layer 17; First adhesive area 18; Sleeve 2; Second inner layer 21; Second outer layer 22; Second adhesive area 23; Inner sleeve conductive strip 24; Outer sleeve conductive strip 25; Metal buckle 251; Thermal insulation filling 3. Detailed Implementation

[0013] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0014] like Figures 1-6 As shown, this utility model of seamless antistatic clothing includes a main body 1 and two sleeves 2, which are respectively located on the left and right sides of the main body 1. The main body 1 includes a first inner layer 16 and a first outer layer 17. The inner side of the first inner layer 16 is provided with conductive fabric. The first inner layer 16 is a graphene conductive fabric. Figure 3 As shown, a plurality of first adhesive areas 18 are provided between the first inner layer 16 and the first outer layer 17. Two adjacent first adhesive areas 18 form a first filling cavity between the first inner layer 16 and the first outer layer 17. The first filling cavity is provided with heat-insulating filler.

[0015] like Figure 4 As shown, the sleeve 2 includes a second inner layer 21 and a second outer layer 22. Between the second inner layer 21 and the second outer layer 22, there is a third adhesive area and multiple second adhesive areas 23 that bond the second inner layer 21 and the second outer layer 22 together. The multiple second adhesive areas 23 are arranged in a row along the length of the sleeve. The third adhesive area is located along the length of the sleeve and connected to the multiple second adhesive areas. Two adjacent second adhesive areas form a second filling cavity between the second inner layer 21 and the second outer layer 22. The second filling cavity contains insulating filler 3. An inner conductive strip 24 is provided on the inner side of the third adhesive area. A second conductive strip is provided on the inner side of the sleeve 2 within the second adhesive area 23, and the second conductive strip is connected to the inner conductive strip 24.

[0016] The lower end of sleeve 2 is provided with an external conductive strip 25, which wraps around the outer surface of the lower part of sleeve 2. The lower end of the internal conductive strip 24 extends outward around the cuff of sleeve 2 and connects to the external conductive strip 25. The upper end of the internal conductive strip 24 is connected to the conductive fabric of the first inner layer 16. Figure 5 As shown, the sleeve outer conductive strip 25 includes a strip body and a row of metal buckles 251. The metal buckle 251 includes a base and a tip. The tip is disposed on the base and the base is fixed to the strip body. The tip faces the outside of the strip body and the outer end of the tip extends out of the strip body.

[0017] like Figure 2As shown, the main body 1 includes a back area 11, a left half area 12, and a right half area 13. The left half area 12 and the right half area 13 are respectively located on the left and right sides of the back area 11. A first conductive strip 14 is provided on the first adhesive area of ​​the left and right half areas inside the main body 1. The first conductive strip 14 is connected to the conductive fabric on the first inner layer, and a conductive buckle 15 is provided on the first conductive strip 14. Figure 6 As shown, one end of the conductive buckle 15 protrudes from the outside of the body 1 through the first adhesive area.

[0018] The first bonding area bonds the first inner layer 16 and the first outer layer 17 of the main body 1 together to form a seamless structure. The second bonding area bonds the second inner layer 11 and the second outer layer 12 of the sleeve together to form a seamless structure. The insulating filling is locked in the first and second filling cavities and will not leak out. Static electricity generated by wearing the clothing is sequentially discharged from the first inner layer 16, the conductive strip 24 inside the sleeve, and the conductive strip 25 outside the sleeve. When the wearer's sleeve comes into contact with an external object, the static electricity is discharged from the metal buckle 151 and will not accumulate inside the clothing.

[0019] The above description is merely a preferred embodiment of the present utility model and does not limit the scope of implementation of the present utility model. All equivalent changes and modifications made in accordance with the scope of the patent application of the present utility model shall still fall within the scope of the present utility model.

Claims

1. Seamless antistatic clothing, characterized in that, It includes a main body and two sleeves, which are respectively located on the left and right sides of the main body. The main body includes a first inner layer and a first outer layer, and the inner side of the first inner layer is provided with conductive fabric. The sleeve includes a second inner layer and a second outer layer. Between the second inner layer and the second outer layer, there is a third bonding area and multiple second bonding areas that bond the second inner layer and the second outer layer together. The multiple second bonding areas are arranged in a row along the length of the sleeve. The third bonding area is arranged along the length of the sleeve and connected to the multiple second bonding areas. Two adjacent second bonding areas form a second filling cavity between the second inner layer and the second outer layer. The second filling cavity is filled with heat-insulating filling material. The inner side of the third bonding area is provided with an inner sleeve conductive strip. The lower end of the sleeve is provided with an external conductive strip that wraps around the outer surface of the sleeve. The lower end of the internal conductive strip goes outward around the cuff of the sleeve and connects to the external conductive strip. The upper end of the internal conductive strip is connected to the conductive fabric.

2. The seamless antistatic clothing according to claim 1, characterized in that, The sleeve outer conductive strip includes a strip body and a row of metal buckles. The metal buckles include a base and a tip. The tip is set on the base and the base is fixed to the strip body. The tip faces the outside of the strip body and the outer end of the tip extends out of the strip body.

3. The seamless antistatic clothing according to claim 1, characterized in that, A plurality of first adhesive areas are provided between the first inner layer and the first outer layer. Two adjacent first adhesive areas form a first filling cavity between the first inner layer and the first outer layer. The first filling cavity is provided with thermal insulation filler.

4. The seamless antistatic clothing according to claim 3, characterized in that, The main body includes a back area, a left half area, and a right half area. The left half area and the right half area are respectively located on the left and right sides of the back area. A first conductive strip is provided on the first adhesive area of ​​the left and right half areas inside the main body. The first conductive strip is connected to the conductive fabric. A conductive buckle is provided on the first conductive strip. One end of the conductive buckle passes through the first adhesive area and protrudes from the outside of the main body.

5. The seamless antistatic garment according to claim 1, characterized in that, A second conductive strip is provided on the inside of the sleeve within the second adhesive area, and the second conductive strip is connected to the conductive strip inside the sleeve.