Antibacterial anti-wrinkle sweater

CN224522408UActive Publication Date: 2026-07-21ZHUHAI WISEMAN FASHION CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHUHAI WISEMAN FASHION CO LTD
Filing Date
2025-09-10
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing sweaters are prone to deformation and wrinkling, affecting wearing comfort and appearance, and they do not have antibacterial properties, making them easy to breed bacteria.

Method used

The garment uses a blend of silver ion yarn, cupro fiber, and modal fiber, along with a twisted polyester weaving method. Combined with semi-perforated jacquard and single-sided jacquard weaving techniques, it forms a porous and breathable fabric layer. Ribbed weaving technology enhances the comfort and elasticity of the collar and hem.

Benefits of technology

It achieves antibacterial, wrinkle-resistant, and breathable properties for sweaters, improves wearing comfort and warmth, and enhances the durability and skin-friendliness of clothing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of antibacterial and wrinkle-resistant sweater, comprising: body and sleeve, body and sleeve are sutured connection;Body has first fabric layer and second fabric layer, first fabric layer is woven by first yarn through half-hole jacquard weaving method, second fabric layer is woven by second yarn through single-side jacquard weaving method;Sleeve is woven by third yarn through single-side jacquard weaving method;Wherein, first yarn is silver ion yarn, second yarn is formed by copper ammonia fiber and modal fiber blending, third yarn is formed by the twist of second yarn and polyester.The antibacterial and wrinkle-resistant sweater provided by the utility model has good antibacterial and wrinkle resistance, and provides comfortable wearing experience.
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Description

Technical Field

[0001] This utility model relates to the field of clothing and accessories technology, and more specifically, to an antibacterial and wrinkle-resistant sweater. Background Technology

[0002] Because of their soft texture and comfortable fit, sweaters are increasingly favored by consumers. With economic development and improved living standards, people also have higher expectations for the various functions of sweaters.

[0003] Existing sweaters tend to deform and wrinkle with repeated wear and washing. Furthermore, creases easily appear when folded and stored in a closet, affecting both comfort and appearance. In addition, existing sweaters lack antibacterial properties, making them prone to bacterial growth. Utility Model Content

[0004] The present invention aims to solve the above-mentioned problems existing in the prior art and provide an antibacterial and wrinkle-resistant sweater, which has good antibacterial and wrinkle-resistant properties and provides a comfortable wearing experience.

[0005] To solve the above problems, this utility model provides an antibacterial and wrinkle-resistant sweater, comprising: a body and sleeves, wherein the body and sleeves are sewn together.

[0006] The garment body has a first fabric layer and a second fabric layer. The first fabric layer is woven from a first yarn using a semi-perforated jacquard knitting method, and the second fabric layer is woven from a second yarn using a single-sided jacquard knitting method.

[0007] The sleeves are woven from a third yarn using a single-sided jacquard knitting method;

[0008] The first yarn is a silver ion yarn, the second yarn is formed by blending cupro fiber and modal fiber, and the third yarn is formed by twisting the second yarn and polyester.

[0009] Furthermore, the first fabric layer is located on the outer layer of the garment, and the second fabric layer is located on the inner layer of the garment.

[0010] Furthermore, the first fabric layer includes a plurality of perforation areas arranged along the longitudinal direction. Each perforation area includes a first perforation unit and a second perforation unit arranged adjacent to each other along the longitudinal direction. The first perforation unit is formed by the first yarn moving across the needle in a first direction, and the second perforation unit is formed by the first yarn moving across the needle in a second direction. The first direction and the second direction are opposite directions.

[0011] Furthermore, the first perforation unit includes a plurality of first ventilation holes spaced apart in the lateral direction, and the second perforation unit includes a plurality of second ventilation holes spaced apart in the lateral direction, with the first ventilation holes and the second ventilation holes alternately distributed on the surface of the first fabric layer.

[0012] Furthermore, the distance between any two adjacent first vent holes is equal to the distance between any two adjacent second vent holes.

[0013] Furthermore, the first vent hole and the second vent hole are staggered in any of the perforation areas.

[0014] Furthermore, the upper part of the garment body has a collar, which is woven from the second yarn using a rib knitting method.

[0015] Furthermore, the lower part of the garment body has a hem, which is woven from the second yarn using a rib knitting method.

[0016] Furthermore, the two sleeves are located on both sides of the garment body, the first end of the sleeve is sewn to the garment body, and the second end of the sleeve is provided with a cuff, which is woven from the second yarn using a rib knitting method.

[0017] The antibacterial and wrinkle-resistant sweater of this invention features a first fabric layer woven from a first yarn using a semi-perforated jacquard knitting method. This creates a porous and breathable structure, wicking away moisture and enhancing breathability, preventing excessive sweat from affecting comfort. The first yarn is also silver ion yarn, which possesses excellent antibacterial properties, effectively inhibiting bacterial growth. The second fabric layer is woven from a second yarn using a single-sided jacquard knitting method, providing warmth. This second yarn is a blend of cupro and modal fibers, improving antistatic and moisture-wicking properties, accelerating the absorption and release of moisture from the body. The combination of the first and second fabric layers, with their excellent moisture absorption and breathability, enables bidirectional temperature regulation, enhancing the sweater's comfort and providing both comfort and antibacterial properties. Furthermore, the use of two different knitting methods for the first and second fabric layers improves the garment's wrinkle resistance. The sleeves are woven from a third yarn using a single-sided jacquard knitting method, which gives the sleeves good warmth. The third yarn is formed by twisting the second yarn and polyester together. The polyester can enhance the wrinkle resistance of the third yarn, thereby improving the phenomenon that the sleeves are prone to wrinkling. Attached Figure Description

[0018] Figure 1This is a structural schematic diagram of the antibacterial and wrinkle-resistant sweater provided in the embodiment of the present utility model, wherein A is the front of the antibacterial and wrinkle-resistant sweater and B is the back of the antibacterial and wrinkle-resistant sweater;

[0019] Figure 2 This is a schematic diagram of the first fabric layer structure provided in an embodiment of the present utility model;

[0020] Figure 3 This is a schematic diagram of the structure of a semi-perforated jacquard weave fabric produced by the semi-perforated jacquard weave method provided in this embodiment of the present utility model.

[0021] Figure 4 This is a schematic diagram of the structure of a single-sided jacquard weave produced by the single-sided jacquard weave method provided in this embodiment of the present invention.

[0022] Figure 5 This is a schematic diagram of the structure of the ribbed weave fabric produced by the ribbed weave method provided in the embodiments of this utility model. Detailed Implementation

[0023] The technical solution of this utility model will now be described clearly and in detail with reference to the accompanying drawings. In the description of this utility model, it should be noted that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of the stated features.

[0024] In this specification, the term "based on the above embodiments" means that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one preferred embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same implementation or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0025] Combination Figures 1 to 5As shown, this embodiment provides an antibacterial and wrinkle-resistant sweater, which includes: a body 1 and sleeves 2, the body 1 and sleeves 2 are sewn together, and the body 1 is made of a front piece and a back piece sewn together;

[0026] The garment body 1 has a first fabric layer 11 and a second fabric layer, which are sewn together. The first fabric layer 11 is woven from a first yarn using a semi-perforated jacquard knitting method, and the second fabric layer is woven from a second yarn using a single-sided jacquard knitting method. The sleeves are woven from a third yarn using a single-sided jacquard knitting method. Figure 3 As shown, it illustrates a schematic diagram of the structure of a semi-perforated jacquard weave 100 woven using a semi-perforated jacquard weave method. (See diagram for reference.) Figure 4 As shown, it illustrates a structural schematic diagram of a single-sided jacquard weave 200 woven using a single-sided jacquard weave method.

[0027] The first yarn is a silver ion yarn, the second yarn is a blend of cupro fiber and modal fiber, and the third yarn is a twisted combination of the second yarn and polyester.

[0028] The antibacterial and wrinkle-resistant sweater provided in this embodiment has a first fabric layer woven from a first yarn using a semi-perforated jacquard knitting method. This gives the first fabric layer a porous and breathable structure, enabling moisture wicking and greater breathability, preventing excessive sweat from affecting the comfort of the wearer. Simultaneously, the first yarn is a silver ion yarn, which has excellent antibacterial properties, effectively inhibiting bacterial growth. The second fabric layer is woven from a second yarn using a single-sided jacquard knitting method, providing warmth. This second yarn is a blend of cupro fiber and modal fiber, enhancing its antistatic and moisture-wicking properties, accelerating the absorption and release of moisture emitted by the body. The combination of the first and second fabric layers, through excellent moisture absorption and breathability, enables bidirectional temperature regulation, improving the sweater's comfort and providing both comfort and antibacterial properties. Furthermore, the first and second fabric layers are woven using two different knitting methods, improving the wrinkle resistance of the garment. The sleeves are woven from a third yarn using a single-sided jacquard knitting method, which gives the sleeves good warmth. The third yarn is formed by twisting the second yarn and polyester together. The polyester can enhance the wrinkle resistance of the third yarn, thereby improving the phenomenon that the sleeves are prone to wrinkling.

[0029] In this embodiment, the silver ion yarn can be silver fiber antibacterial cotton yarn, such as that sold by Shandong KangKang New Material Technology Co., Ltd. This silver ion antibacterial cotton yarn has strong broad-spectrum antibacterial properties and maintains an antibacterial rate of over 90% after 50 to 100 washes, providing long-lasting antibacterial protection. Furthermore, the silver ion antibacterial cotton yarn can inhibit odor-causing substances such as propionic acid and isovaleric acid in sweat, thus preventing odor. Simultaneously, the surface of this silver ion antibacterial cotton yarn can form hydrophilic-hydrophobic microdomains, accelerating sweat evaporation and improving wearing comfort. Other silver ion yarns produced and / or sold by other companies can also be used; examples are not provided here.

[0030] In this embodiment, the yarn formed by blending cupro fiber and modal fiber can be cupro cotton yarn sold by companies such as Changyi Shengmian Textile Co., Ltd. Besides the inherent comfort and breathability of modal fiber, this cupro cotton yarn also possesses the antistatic properties and excellent moisture absorption of cupro fiber. The antistatic properties of cupro fiber improve moisture absorption and release efficiency, and its low resistance makes it more comfortable to wear. Cupro fiber can quickly absorb and release moisture emitted by the human body, and its high moisture regain rate further enhances its moisture absorption capabilities. Furthermore, cupro fiber has a silk-like feel, and its surface pH value is close to that of human skin, providing excellent skin affinity. The aforementioned cupro fiber is soft, comfortable, breathable, and moisture-wicking, enhancing wearing comfort. Cupro cotton yarn can also be made from other companies' products and / or products sold; examples are not provided here.

[0031] In this embodiment, the second yarn formed by blending cupro fiber and modal fiber is twisted together with polyester to make the third yarn. Polyester, also known as polyester fiber, has the characteristics of high modulus, high strength and high elasticity, and its abrasion resistance is outstanding. It is not easily deformed after repeated stretching, thus giving it excellent wrinkle resistance. However, its moisture absorption is poor. Twisting the second yarn and polyester together can improve the moisture absorption of polyester, so that the third yarn has both good moisture absorption and wrinkle resistance.

[0032] Based on the above embodiments, as an optional implementation, the first fabric layer 11 is located on the outer layer of the garment body 1, and the second fabric layer is located on the inner layer of the garment body 1. Therefore, when worn, the second fabric layer is in direct contact with the skin. The second fabric layer, woven from the second yarn using a single-sided jacquard knitting method, is softer, more breathable, and skin-friendly, thus improving wearing comfort.

[0033] Based on the above embodiments, as an optional implementation, the first fabric layer 11 includes a plurality of perforation areas arranged along the longitudinal direction. Each perforation area includes a first perforation unit 111 and a second perforation unit 112 arranged adjacent to each other along the longitudinal direction. The first perforation unit 111 is formed by the first yarn moving across the needle to the left (i.e., in the first direction), and the second perforation unit 112 is formed by the first yarn moving across the needle to the right (i.e., in the second direction). The first perforation unit 111 and the second perforation unit 112 form alternately distributed ventilation holes on the surface of the first fabric layer 11. Of course, the first perforation unit 111 can also be formed by the first yarn moving across the needle to the right, and the second perforation unit 112 can be formed by the first yarn moving across the needle to the left. Therefore, by setting the first perforation unit 111 and the second perforation unit 112 on the surface of the first fabric layer 11, the surface of the first fabric layer 11 can form alternately distributed breathable holes, which can improve the breathability of the first fabric layer 11, as well as improve the tensile strength of the first fabric layer 11, so that the first fabric layer 11 has structural stability and improves the long-term durability of the antibacterial and wrinkle-resistant sweater.

[0034] Based on the above embodiments, as an optional implementation, the first perforation unit 111 includes a plurality of first ventilation holes 1111 spaced apart in the transverse direction, and the second perforation unit 112 includes a plurality of second ventilation holes 1121 spaced apart in the transverse direction. The first ventilation holes 1111 and the second ventilation holes 1121 are alternately distributed on the surface of the first fabric layer 11. Specifically, in the first perforation unit 111, the first yarn moves at least one needle position to the left in the transverse direction to perform loop transfer knitting to form the left-facing first ventilation hole 1111; in the second perforation unit 112, the first yarn moves at least one needle position to the right in the transverse direction to perform loop transfer knitting to form the right-facing second ventilation hole 1112. The distance between any two adjacent first ventilation holes 1111 is equal to the distance between any two adjacent second ventilation holes 1121, that is, if the distance between any two adjacent first ventilation holes 1111 is a, then the distance between any two adjacent second ventilation holes 1121 is also a. Therefore, by setting the first ventilation hole 1111 and the second ventilation hole 1121 in the above manner, the first ventilation hole 1111 and the second ventilation hole 1121 can be evenly distributed on the surface of the first fabric layer 11, thereby improving the breathability and heat dissipation of the garment body 1.

[0035] It should be noted that, in this embodiment, the specific numerical range of the distance a between any two adjacent first vent holes 1111 and the distance a between any two adjacent second vent holes 1121 is not further limited, and those skilled in the art can make adjustments according to the actual situation.

[0036] Based on the above embodiments, as an optional implementation, the first ventilation hole 1111 and the second ventilation hole 1121 in any one perforation area are staggered, that is, the first ventilation hole 1111 and the second ventilation hole 1121 in any one perforation area are not located in the same column. The first ventilation hole 1111 and the second ventilation hole 1121 in all perforation areas are arranged in a regular pattern, which enables the first fabric layer 11 to have both breathability and structural stability.

[0037] Based on the above embodiments, as an optional implementation, the first fabric layer 11 further includes a first weaving area 113 and a second weaving area 114. Along the longitudinal direction, at least one row of first weaving areas 113 is provided between any two adjacent perforation areas. Along the transverse direction, at least one column of second weaving areas 114 is provided between any two adjacent first ventilation holes 1111, and the second weaving area 114 is also located between any two adjacent second ventilation holes 1121. Thus, by providing the first weaving area 113 and the second weaving area 114, a stable connection can be achieved in both the transverse and longitudinal directions of the first fabric layer 11, improving the structural stability of the first fabric layer 11.

[0038] Based on the above embodiments, as an optional implementation, the upper part of the garment body 1 has a collar 3, which is woven from a second yarn using a rib knitting method. For example... Figure 5 The diagram shows a schematic of the ribbed weave 300. Therefore, using a second yarn for the collar 3 improves its comfort and skin-friendliness, preventing itchiness and enhancing wearing comfort. Furthermore, the ribbed weave of the collar 3 provides better elasticity, allowing it to better conform to and wrap around the neck, preventing cold air from entering the garment 1 from the collar 3, and contributing to the warmth of an antibacterial and wrinkle-resistant sweater.

[0039] Based on the above embodiments, as an optional implementation, the lower part of the garment body 1 has a hem 4, which is woven from a second yarn using a rib knitting method. Therefore, using a second yarn as the hem 4 improves both the moisture absorption and breathability of the hem 4, as well as its comfort and skin-friendliness. Furthermore, the rib knitting method gives the hem 4 good elasticity, allowing it to better conform to and wrap around the waist and hips, preventing cold air from entering the garment body 1 from the hem 4.

[0040] Based on the above embodiments, as an optional implementation, two sleeves 2 are located on both sides of the garment body 1. The first end of the sleeve 2 is sewn to the garment body 1, and the second end of the sleeve 2 is provided with a cuff 21. The cuff 21 is woven from a second yarn using a rib knitting method. Therefore, using a second yarn as the cuff 21 improves the skin-friendliness of the cuff 21 and enhances the comfort of direct contact with the wrist. Simultaneously, the rib knitting method at the cuff 21 provides good elasticity, allowing for a better fit and wrapping of the consumer's wrist, preventing cold air from entering the sleeve 2 from the cuff 21.

[0041] Although the disclosure is as stated above, the scope of protection of this disclosure is not limited thereto. Those skilled in the art can make various changes and modifications without departing from the spirit and scope of this disclosure, and all such changes and modifications will fall within the protection scope of this utility model.

Claims

1. An antibacterial and wrinkle-resistant sweater, characterized in that, include: The garment body and sleeves are sewn together; The garment body has a first fabric layer and a second fabric layer. The first fabric layer is woven from a first yarn using a semi-perforated jacquard knitting method, and the second fabric layer is woven from a second yarn using a single-sided jacquard knitting method. The sleeves are woven from a third yarn using a single-sided jacquard knitting method; The first yarn is a silver ion yarn, the second yarn is formed by blending cupro fiber and modal fiber, and the third yarn is formed by twisting the second yarn and polyester.

2. The antibacterial and wrinkle-resistant sweater according to claim 1, characterized in that, The first fabric layer is located on the outer layer of the garment, and the second fabric layer is located on the inner layer of the garment.

3. The antibacterial and wrinkle-resistant sweater according to claim 1, characterized in that, The first fabric layer includes a plurality of perforation areas arranged along the longitudinal direction. Each perforation area includes a first perforation unit and a second perforation unit arranged adjacent to each other along the longitudinal direction. The first perforation unit is formed by the first yarn moving across the needle in a first direction, and the second perforation unit is formed by the first yarn moving across the needle in a second direction. The first direction and the second direction are opposite directions.

4. The antibacterial and wrinkle-resistant sweater according to claim 3, characterized in that, The first perforation unit includes a plurality of first ventilation holes spaced apart in the lateral direction, and the second perforation unit includes a plurality of second ventilation holes spaced apart in the lateral direction. The first ventilation holes and the second ventilation holes are alternately distributed on the surface of the first fabric layer.

5. The antibacterial and wrinkle-resistant sweater according to claim 4, characterized in that, The distance between any two adjacent first vent holes is equal to the distance between any two adjacent second vent holes.

6. The antibacterial and wrinkle-resistant sweater according to claim 4, characterized in that, In any one of the perforated areas, the first vent and the second vent are staggered.

7. The antibacterial and wrinkle-resistant sweater according to claim 1, characterized in that, The upper part of the garment body has a collar, which is woven from the second yarn using a rib knitting method.

8. The antibacterial and wrinkle-resistant sweater according to claim 1, characterized in that, The lower part of the garment body has a hem, which is woven from the second yarn using a rib knitting method.

9. The antibacterial and wrinkle-resistant sweater according to claim 1, characterized in that, The two sleeves are located on both sides of the garment body. The first end of the sleeve is sewn to the garment body, and the second end of the sleeve is provided with a cuff, which is woven from the second yarn using a rib knitting method.