A tensile-resistant jacquard fabric
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-06
- Publication Date
- 2026-08-11
AI Technical Summary
[0003]然而提花面料在日常穿戴的过程中会随着肢体的运动被频繁拉扯,使得面料上的花纹容易失去弹性而松弛变形,且表面凸起的花纹会先与外物接触摩擦,使得用于形成花纹的纱线容易磨损断裂,从而影响了提花面料的使用寿命
[0012]综上所述,本实用新型具有以下有益效果:由氨纶纤维形成的若干抵触条具有较高的弹性和耐磨性,通过若干抵触条提高了基布层纵向的回弹性,同时较厚的抵触条能先与外物接触,从而降低散湿块一、散湿块二和散湿条的磨损程度,将亚麻纤维包覆在氨纶纤维上制成的散湿纱能在保证弹性的同时获得良好的散湿性能,使得形成的若干散湿块一、散湿块二和散湿条提高了基布层横向的回弹性,同时能及时吸收基布层和抵触条中的水分并快速散湿,由锦纶纤维制成的基布层不易磨损,使得制成的面料能具有良好的保型性和耐磨性。
Smart Images

Figure CN224620156U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of textile technology, and more specifically, to a tensile-resistant jacquard fabric. Background Technology
[0002] Jacquard fabric is a type of textile that creates raised patterns through variations in the warp and weft weave. It has a strong three-dimensional appearance and is characterized by its novel style, high-end beauty, and textured feel. Different patterns can be woven from different base fabrics, making it widely used in garment manufacturing.
[0003] However, jacquard fabrics are frequently stretched during daily wear due to body movements, causing the patterns on the fabric to easily lose elasticity and become loose and deformed. Furthermore, the raised patterns on the surface will come into contact with and rub against external objects first, making the yarns used to form the patterns prone to wear and breakage, thus affecting the lifespan of the jacquard fabric.
[0004] Therefore, a new solution is needed to address this problem. Utility Model Content
[0005] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a tensile-resistant jacquard fabric, which improves the abrasion resistance and shape retention of the jacquard fabric through a new structural design.
[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a tensile jacquard fabric, comprising a base fabric layer, wherein a plurality of abutment strips are arranged in a transverse array on one side of the base fabric layer, and a plurality of moisture-wicking blocks are connected to both sides of the length of the abutment strips. The cross-section of the plurality of moisture-wicking blocks is semi-circular and symmetrically connected to both sides of the length of the abutment strips. A plurality of moisture-wicking blocks and a plurality of moisture-wicking strips are provided between adjacent abutment strips. The width of the moisture-wicking blocks is concave on both sides in an arc shape. The thickness of the moisture-wicking blocks, the moisture-wicking blocks, and the moisture-wicking strips is the same and less than the thickness of the abutment strips.
[0007] The present invention is further configured such that the distance between adjacent abutment strips is the same as the length of the moisture-dissipating strip, and the two ends of the width of the moisture-dissipating strip are perpendicularly connected to the abutment strips on both sides.
[0008] The present invention is further configured such that: a plurality of moisture-wicking strips and a plurality of moisture-wicking blocks are staggered along the longitudinal direction of the base fabric layer, and a plurality of moisture-wicking blocks I and a plurality of moisture-wicking blocks II are arranged in the transverse direction of the base fabric layer and are located on the same straight line. The moisture absorption of the moisture-wicking blocks I, the moisture-wicking blocks II, and the moisture-wicking strips is greater than that of the base fabric layer and the contact strip.
[0009] The present invention is further configured such that: the weaving structure of the base fabric layer is a warp-patterned weave, and the yarns used to weave the base fabric layer include abrasion-resistant yarn, elastic yarn and moisture-wicking yarn, wherein the abrasion-resistant yarn is the ground weave yarn of the warp-patterned weave, and the elastic yarn and moisture-wicking yarn are the pattern yarns of the warp-patterned weave.
[0010] The present invention is further configured such that: a plurality of the elastic yarns are arranged to form a first group of patterned yarns, a plurality of the wet-dissipating yarns are arranged to form a second group of patterned yarns, and the plurality of the first group of patterned yarns and the plurality of the second group of patterned yarns are alternately arranged.
[0011] The present invention is further configured such that: the diameter of the rebound yarn is twice the diameter of the moisture-dissipating yarn; a plurality of the contact strips are formed by the first group of patterned yarns; and a plurality of the moisture-dissipating blocks one, two, and strips are all formed by the second group of patterned yarns.
[0012] In summary, this utility model has the following beneficial effects: the several contact strips formed by spandex fibers have high elasticity and abrasion resistance. The longitudinal resilience of the base fabric layer is improved by the several contact strips. At the same time, the thicker contact strips can contact the external object first, thereby reducing the wear of moisture-wicking block one, moisture-wicking block two and moisture-wicking strips. The moisture-wicking yarn made by wrapping flax fibers on spandex fibers can obtain good moisture-wicking performance while ensuring elasticity. The several moisture-wicking blocks one, moisture-wicking block two and moisture-wicking strips improve the transverse resilience of the base fabric layer. At the same time, they can absorb moisture in the base fabric layer and contact strips in time and quickly wick away moisture. The base fabric layer made of nylon fibers is not easy to wear, so that the fabric has good shape retention and abrasion resistance. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the structure of this utility model;
[0014] Figure 2 A cross-sectional view of this utility model Figure 1 ;
[0015] Figure 3 A cross-sectional view of this utility model Figure 2 ;
[0016] Figure 4 This is a diagram of the weaving structure of the base fabric layer in this utility model.
[0017] In the diagram: 1. Base fabric layer; 2. Contact strip; 3. Moisture-dissipating block one; 4. Moisture-dissipating block two; 5. Moisture-dissipating strip. Detailed Implementation
[0018] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0019] Example: A tensile-resistant jacquard fabric, such as Figures 1-3As shown, the device includes a base fabric layer 1. Several abutment strips 2 are arranged in a transverse array along one side of the base fabric layer 1. Several moisture-dissipating blocks 3 are connected to both sides of the length of the abutment strips 2. The cross-section of the moisture-dissipating blocks 3 is semi-circular and symmetrically connected to both sides of the length of the abutment strips 2. Several moisture-dissipating blocks 4 and several moisture-dissipating strips 5 are arranged between adjacent abutment strips 2. The width of the moisture-dissipating blocks 4 is concave on both sides in an arc shape. The cross-section of the moisture-dissipating strips 5 is rectangular. The distance between adjacent abutment strips 2 is the same as the length of the moisture-dissipating strip 5. The width of the moisture-dispersing strip 5 is perpendicularly connected to the two ends of the abutment strips 2 on both sides. Several moisture-dispersing strips 5 and several moisture-dispersing blocks 2 are staggered along the longitudinal direction of the base fabric layer 1. Several moisture-dispersing blocks 1 3 and several moisture-dispersing blocks 2 4 are arranged in the transverse direction of the base fabric layer 1 and are located on the same straight line. The thickness of moisture-dispersing blocks 1 3, moisture-dispersing blocks 2 4 and moisture-dispersing strip 5 is the same and less than the thickness of the abutment strip 2, so that several abutment strips 2 can be contacted by external objects first, thereby reducing the wear degree of moisture-dispersing blocks 1 3, moisture-dispersing blocks 2 4 and moisture-dispersing strip 5.
[0020] like Figures 1-4 As shown, the weaving structure of the base fabric layer 1 is set as a warp-patterned weave. The yarns used to weave the base fabric layer 1 include abrasion-resistant yarn, elastic yarn, and moisture-wicking yarn. The abrasion-resistant yarn serves as the ground weave yarn of the warp-patterned weave, while the elastic yarn and moisture-wicking yarn serve as the starting yarns of the warp-patterned weave. Several elastic yarns are arranged to form the first group of starting yarns, and several moisture-wicking yarns are arranged to form the second group of starting yarns. Several first group of starting yarns and several second group of starting yarns are interleaved. The abrasion-resistant yarn, elastic yarn, and moisture-wicking yarn are fed into the multi-arm loom and woven using the warp-patterned weave method. The ground weave of the warp-patterned weave is set as a plain weave. The base fabric is woven from the ground weave of the warp-patterned weave. Several abutment strips 2 are formed by the first group of starting yarns floating on the ground weave of the warp-patterned weave. Several moisture-wicking blocks 1 3, moisture-wicking blocks 2 4, and moisture-wicking strips 5 are formed by the second group of starting yarns floating on the ground weave of the warp-patterned weave.
[0021] like Figures 1-3As shown, the diameter of the rebound yarn is twice the diameter of the moisture-wicking yarn, making the thickness of moisture-wicking block 1 (3), moisture-wicking block 2 (4), and moisture-wicking strip 5 the same and less than the thickness of the contact strip 2. The rebound yarn is formed by twisting multiple strands of the first strand using a twisting machine. The first strand is formed by twisting spandex fibers using a twisting machine. Spandex fibers have strong elasticity and abrasion resistance, making the thicker contact strip 2 have good abrasion resistance and not easily worn or broken. At the same time, the contact strips 2 improve the longitudinal resilience of the base fabric layer 1. The contact strips 2 and moisture-wicking block 1... 3. The pattern on the surface of the base fabric layer 1, which consists of moisture-wicking block 2, moisture-wicking strip 5, and abrasion-reducing strip 2, is made less prone to wear because the abrasion strip 2 can contact the external object first to reduce the wear of moisture-wicking block 1, moisture-wicking block 2, and moisture-wicking strip 5. The abrasion-resistant yarn is made by twisting multiple strands of second strands of yarn through a twisting machine. The second strand of yarn is made by twisting nylon fibers through a twisting machine. Nylon fibers have strong abrasion resistance, which makes the base fabric layer 1 able to resist frequent friction with the skin, thereby ensuring the strength of the fabric.
[0022] like Figures 1-3 As shown, the moisture-wicking yarn is made by spirally winding a third strand of yarn onto a first strand of yarn using a ring spinning machine. The moisture-wicking yarn, with spandex fiber as its core, achieves good elasticity. This allows several moisture-wicking blocks (3, 4, and 5) to enhance the lateral resilience of the base fabric layer 1. Therefore, when these blocks are stretched along with the base fabric layer 1, they generate significant resilience in both the lateral and longitudinal directions. This allows the base fabric layer 1 to quickly return to its original shape when the tension is removed, resulting in good shape retention and making the manufactured fabric suitable for various applications. Used in environments with frequent stretching and friction, the third strand is made by twisting flax fibers using a twisting machine. Flax fibers have good moisture absorption and wicking properties due to their special porous structure, and can form a moisture-absorbing layer on the surface of the moisture-wicking yarn. Therefore, the moisture absorption of several moisture-wicking blocks 1 3, moisture-wicking block 2 4, and moisture-wicking strip 5 formed by the moisture-wicking yarn is greater than that of the base fabric layer 1 and the contact strip 2. Thus, the moisture absorbed in the base fabric layer 1 and the contact strip 2 can be transferred to the moisture-wicking blocks 1 3, moisture-wicking block 2 4, and moisture-wicking strip 5 in a timely manner to quickly wick away moisture, thereby keeping the base fabric layer 1 and the skin dry and improving wearing comfort.
[0023] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.
Claims
1. A tensile-resistant jacquard fabric, comprising a base fabric layer (1), characterized in that: The base fabric layer (1) has several abutment strips (2) arranged in a transverse array on one side. Several moisture-dissipating blocks (3) are connected to both sides of the length of the abutment strips (2). The cross-section of the moisture-dissipating blocks (3) is semi-circular and symmetrically connected to both sides of the length of the abutment strips (2). Several moisture-dissipating blocks (4) and several moisture-dissipating strips (5) are arranged between adjacent abutment strips (2). The width of the moisture-dissipating blocks (4) is concave on both sides. The thickness of the moisture-dissipating blocks (3), moisture-dissipating blocks (4), and moisture-dissipating strips (5) is the same and less than the thickness of the abutment strips (2).
2. The tensile-resistant jacquard fabric according to claim 1, characterized in that: The distance between adjacent abutment strips (2) is the same as the length of the moisture-dissipating strip (5), and the width of the moisture-dissipating strip (5) is perpendicularly connected to the abutment strips (2) on both sides.
3. The tensile-resistant jacquard fabric according to claim 2, characterized in that: Several moisture-wicking strips (5) and several moisture-wicking blocks (4) are staggered along the longitudinal direction of the base fabric layer (1). Several moisture-wicking blocks (3) and several moisture-wicking blocks (4) are arranged in the transverse direction of the base fabric layer (1) and are located on the same straight line. The moisture absorption of the moisture-wicking blocks (3), moisture-wicking blocks (4), and moisture-wicking strips (5) is greater than that of the base fabric layer (1) and the contact strip (2).
4. The tensile-resistant jacquard fabric according to claim 1, characterized in that: The weaving structure of the base fabric layer (1) is set as a warp patterned weave, and the yarns used to weave the base fabric layer (1) include abrasion-resistant yarn, elastic yarn and moisture-wicking yarn. The abrasion-resistant yarn is the ground weave yarn of the warp patterned weave, and the elastic yarn and moisture-wicking yarn are the patterned yarns of the warp patterned weave.
5. The tensile-resistant jacquard fabric according to claim 4, characterized in that: A plurality of the aforementioned elastic yarns are arranged to form a first group of patterned yarns, and a plurality of the aforementioned loose-wet yarns are arranged to form a second group of patterned yarns, with the plurality of the first group of patterned yarns and the plurality of the second group of patterned yarns being alternately arranged.
6. The tensile-resistant jacquard fabric according to claim 5, characterized in that: The diameter of the rebound yarn is twice the diameter of the moisture-dispersing yarn. Several of the contact strips (2) are formed by the first group of patterned yarns, and several of the moisture-dispersing blocks one (3), moisture-dispersing blocks two (4), and moisture-dispersing strips (5) are formed by the second group of patterned yarns.