Anti-wrinkle woven strip
By employing a hollow structure and deformation zone design in the woven material, the issues of comfort and aesthetics in the woven material are solved, achieving lightweighting and cost reduction, adapting to the needs of different woven scenarios, and improving the overall performance of woven products.
Patent Information
- Application Number
- CN202422386611.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-29
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2034-09-29
AI Technical Summary
Existing woven materials suffer from poor comfort and high production costs. Solid materials are hard and consume a lot of material, while hollow materials are prone to wrinkles during the weaving process, affecting aesthetics and stability.
The anti-wrinkle woven strip adopts a hollow structure, with a first deformation zone and a second deformation zone inside. The main body is covered with a woven layer. The deformation zone design enhances the flexibility and support of the material, preventing wrinkles from forming.
It improves the comfort and aesthetics of woven products, reduces production costs, uses lightweight and portable materials, adapts to different weaving needs, and enhances the overall quality and visual appeal of products.
Smart Images

Figure CN223672017U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of furniture woven materials, specifically a kind of wrinkle-resistant woven strip. BACKGROUND
[0002] Woven materials are widely used in daily life, especially in furniture, decorations and daily necessities, which are favored by people for their flexibility and aesthetics. However, the existing woven materials on the market have many technical defects during use, which seriously affect their comfort and aesthetics.
[0003] Firstly, although the existing solid woven materials have strong strength and stability, the surface hardness of the material itself is high, and the woven surface after weaving is also too hard. This hard surface directly affects the user's riding experience, resulting in poor comfort of woven products. Especially in products such as seats, cushions and other products that need to be in contact with the human body for a long time, the woven material with too high hardness not only cannot provide enough softness, but also may cause discomfort to the body. In addition, another significant disadvantage of solid materials is that the material usage is large, which consumes more raw materials, resulting in an increase in the overall weight of the product, affecting its portability and use convenience. At the same time, excessive material consumption directly increases production costs, which is not conducive to large-scale commercial production.
[0004] On the other hand, although hollow woven materials have the advantage of reducing production costs due to their lower material consumption and lighter weight, they also have obvious problems in actual application. Hollow materials lack internal support structure, especially when encountering corners or complex structures during weaving, the surface of the woven material is prone to wrinkles. These wrinkles not only affect the flatness of the woven surface and reduce the overall aesthetics of the product, but also may further deteriorate during long-term use, resulting in a shortened product life. In addition, due to the unstable structure of hollow materials, the woven products are prone to deformation during use, further weakening their functionality and visual effect.
[0005] Therefore, the existing woven materials, whether solid or hollow, have different degrees of defects. The high hardness and high material consumption of solid materials result in poor comfort and high production costs, while hollow materials are prone to wrinkles during weaving, resulting in uneven and unattractive woven surfaces. These defects seriously limit the application and promotion of woven materials in modern life, so it is necessary to make further improvements. SUMMARY
[0006] The utility model discloses a kind of anti-wrinkle braids, which include the main body in strip shape, the first deformation area is hollowly arranged in the inside of main body, and a plurality of second deformation areas are distributed in the periphery of first deformation area, and first deformation area and second deformation area are arranged in mutual separation in main body.
[0007] The utility model discloses a kind of anti-wrinkle braids, which include the main body in strip shape, the first deformation area is hollowly arranged in the inside of main body, and a plurality of second deformation areas are distributed in the periphery of first deformation area, and first deformation area and second deformation area are arranged in mutual separation in main body.
[0008] Further, the first deformation area and the second deformation area extend along the axial direction of the main body, penetrate the front and rear end surfaces of the main body, and form a hollow circular tube cross section.
[0009] Further, the main body is made of rubber material into an unlimited length long rope.
[0010] Further, the braiding layer is woven from chemical fiber wire.
[0011] Further, the main body is set in a cylindrical shape, the first deformation area is set in a triangular shape, and the second deformation area is set in a long-waisted shape.
[0012] Further, the first deformation area is arranged at the center position of the main body, and the second deformation area is arranged in a ring array outside the first deformation area.
[0013] The utility model has the advantages of simple structure, low production cost and improved market competitiveness.
[0014] 2. The utility model adopts a hollow design, and the first deformation area and a plurality of second deformation areas are arranged in the inside of the main body, which not only reduces the weight of the material, but also enhances the flexibility of the material through the design of the deformation area. Compared with the high surface hardness and poor comfort of traditional solid braiding materials, the anti-wrinkle braiding material of the utility model can effectively improve the comfort of braided products, making the product more soft and suitable for long-term use.
[0015] 3. The utility model reduces the amount of raw materials used by arranging the hollow deformation area in the main body. Compared with solid materials, the utility model significantly reduces material consumption under the premise of maintaining sufficient strength, thereby reducing production cost. Lightweight design also makes the product more convenient to carry and transport.
[0016] 4、Traditional hollow materials are prone to wrinkles at the weaving corner due to lack of internal support, affecting the neatness and aesthetics of the woven surface. The utility model discloses a mutual separation structure of the first deformation zone and the second deformation zone, which enhances the supportability of the material and avoids the wrinkle problem generated during weaving. Even in a complex weaving structure, the material can still maintain flatness and tightness, ensuring the aesthetics and consistency of the woven product.
[0017] 5、The deformation zone of the utility model is designed as a triangle, a long waist shape or other specific shapes, so that the supporting force of the material in different directions is balanced, which can meet the flexibility requirements during weaving and provide sufficient structural support. The arrangement mode of the first deformation zone and the second deformation zone is flexible and diverse, which can be adjusted according to specific application scenarios to adapt to the needs of different woven products, and has wide adaptability.
[0018] 6、By adopting a hollow structure and combining with reasonable deformation zone design, the utility model can maintain surface flatness during the use of the woven material, avoiding the surface irregularity phenomenon caused by material deformation or lack of support. Therefore, the woven surface of the final product is smoother and more beautiful, and has higher visual appeal. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 It is a structural schematic diagram of the utility model.
[0020] Figure 2 It is an exploded view of the structure of the utility model.
[0021] Figure 3 It is a sectional view of the structure of the utility model DETAILED DESCRIPTION
[0022] The utility model will be further described in detail below in combination with the drawings. An anti-wrinkle weaving strip includes a main body 1 arranged in a strip shape, a first deformation zone 2 is hollowly arranged in the main body 1, a plurality of second deformation zones 3 are distributed on the periphery of the first deformation zone 2, the first deformation zone 2 and the second deformation zone 3 are arranged in a mutual separation mode in the main body 1, and the outer surface of the main body 1 is covered with a weaving layer 4.
[0023] In one embodiment, the first deformation zone 2 and the second deformation zone 3 extend along the axial direction of the main body 1 and penetrate the front and rear end surfaces of the main body 1, forming a hollow circular pipe cross section.
[0024] In one embodiment, the main body 1 is made of rubber material into an unlimited long rope shape.
[0025] In one embodiment, the weaving layer 4 is woven by a chemical fiber wire.
[0026] In one of the embodiments: the main body 1 is set in a cylindrical shape, the first deformation area 2 is set in a triangular shape, and the second deformation area 3 is set in a long-waisted shape.
[0027] In one of the embodiments: the first deformation area 2 is set at the center of the main body 1, and the second deformation area 3 is arranged in a ring array outside the first deformation area 2.
[0028] Working principle: the main body part of the utility model is a hollow structure, and the first deformation area 2 and the second deformation area 3 are arranged inside. The first deformation area is located at the center of the main body and plays a core supporting role; and the second deformation areas are arranged at the periphery of the first deformation area in a relatively independent manner. The design of the deformation area allows the material to deform to a certain extent when subjected to external force, thereby having excellent flexibility.
[0029] During the weaving process, the deformation area provides moderate support, so that the material is not prone to wrinkles during weaving, especially at corners or complex structures. The separation design of the second deformation area and the first deformation area ensures the mechanical stability of the material inside, effectively avoiding the problem that the traditional hollow material is prone to irregular wrinkles during the force process.
[0030] Therefore, compared with the traditional technology, through the design of the hollow deformation area in the case, the utility model not only maintains the flexibility of the material and can adapt to the complex deformation demand during weaving, but also avoids the common wrinkling problem in the weaving process through the support of multiple deformation areas. Especially when the woven fabric needs to turn corners or bend, the support structure inside the material can effectively maintain the flatness and aesthetics of the surface.
[0031] In addition, unlike traditional solid woven materials, the utility model realizes the hollow design of the material by arranging the deformation area inside the main body. Due to the reduction of material consumption of the solid structure, the weight of the entire woven material is greatly reduced. This design not only reduces the amount of raw materials used in production, but also makes the final product more lightweight, convenient for transportation and use.
[0032] In addition, the utility model reduces the production cost by reducing the amount of material used, making the material more economical. At the same time, the lightweight design also improves the use convenience of the woven product, especially suitable for outdoor products or scenes with high portability requirements.
[0033] It needs to be noted that: the first deformation zone of the utility model is a triangle, and the second deformation zone is a long waist shape. These different shapes make the material form a more uniform distribution in the stress direction, enhancing the material's anti-deformation ability. For example, the triangular deformation zone has high structural stability and can maintain its basic form unchanged when the material is subjected to external force, while the long waist-shaped second deformation zone provides additional support during the weaving process, making the material more stable when bending and stretching. At the same time, the design of deformation zones of different shapes makes the material balanced in each direction, thereby improving the material's durability and anti-deformation ability. At the same time, this design allows the material to maintain good form and functionality in different use environments, further improving the overall quality of the woven product.
[0034] Further: the utility model in the main body outside cladding a layer of weaving layer, is woven from chemical fiber wire rod. This weaving layer not only enhances the appearance of the material, but also provides additional protection against damage to the main material in the external environment. The combination of the weaving layer and the internal deformation zone makes the surface of the woven product more smooth and beautiful, while having certain waterproofness and wear resistance. At the same time, the setting of the weaving layer improves the appearance of the product, making the finished woven surface more smooth and neat, enhancing the user's visual experience. At the same time, the durability of the weaving layer improves the service life of the material, preventing the material from being damaged by the external environment during long-term use.
[0035] It needs to be supplemented that: the hollow design and multi-deformation zone structure of the utility model not only improve the flexibility and wrinkle resistance of the material, but also make the material design highly flexible. The number, shape and distribution of the first deformation zone and the second deformation zone can be adjusted according to specific needs to adapt to different types of woven products. Therefore, the structural design of the utility model has high customizability and can be flexibly adjusted according to different application scenarios and needs to adapt to the size and structure requirements of different woven products. This makes the material have wide application prospects in the fields of woven furniture, decorations, outdoor products, etc.
[0036] The above shows and describes the basic principles and main features of the utility model and the advantages of the utility model. Those skilled in the art should understand that the utility model is not limited to the above examples, and the above examples and descriptions in the specification are only to illustrate the principles of the utility model. Without departing from the spirit and scope of the utility model, the utility model can have various changes and improvements, and these changes and improvements all fall within the scope of the claimed utility model.
Claims
1. An anti-crease woven strip, characterized by: It includes the main body (1) arranged in strip, the inside of main body (1) is hollow and is provided with first deformation area (2), several second deformation areas (3) are distributed in the periphery of first deformation area (2), first deformation area (2) and second deformation area (3) are separated from each other in main body (1), the outer surface of main body (1) is covered with braided layer (4).
2. A wrinkle-resistant woven strip according to claim 1, wherein: The first deformation area (2) and the second deformation area (3) extend along the axial direction of the main body (1), and pass through the front and rear end surfaces of the main body (1), forming a hollow circular tube cross section.
3. A wrinkle-resistant woven strip according to claim 1, wherein: The main body (1) is made of rubber material into a long rope without length limit.
4. A wrinkle-resistant woven strip according to claim 1, wherein: The braided layer (4) is woven by chemical fiber wire.
5. A wrinkle-resistant woven strip according to claim 1, wherein: The main body (1) is arranged in a cylindrical shape, the first deformation area (2) is arranged in a triangular shape, and the second deformation area (3) is arranged in a long-waisted shape.
6. A wrinkle-resistant braid strip according to claim 5, wherein: The first deformation area (2) is arranged at the center of the main body (1), and the second deformation area (3) is arranged in a ring array outside the first deformation area (2).