High-toughness wear-resistant oxford fabric

By designing the anti-slip inner layer and wear-resistant outer layer in Oxford fabric and using limit balls to support the raised structure of the anti-slip parts, the problem of poor anti-slip properties of Oxford fabric is solved, achieving higher anti-slip effect and wear resistance, and improving the dining experience.

CN223001217UActive Publication Date: 2025-06-20HANGZHOU XIAOSHAN WENFA CLOTH CO LTD
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Patent Information

Application Number
CN202421446752.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-24
Publication Date
2025-06-20
Estimated Expiration
2034-06-24

AI Technical Summary

Technical Problem

Oxford fabrics have poor anti-slip properties during use, which can easily cause the tablecloth to slide, the bowls and dishes to pour out or the soup to sprinkle, affecting the dining experience.

Method used

A high tough wear-resistant Oxford fabric is designed, including an anti-slip inner layer and a wear-resistant outer layer that is fixedly connected to each other. The anti-slip inner layer is equipped with a through groove, and the wear-resistant outer layer is fixedly connected to the anti-slip inner layer on one side of the wear-resistant outer layer. The anti-slip member partly penetrates the through groove, forming a raised structure to improve the anti-slip effect. The limit ball is thermoplasticized by polystyrene to support a deformation cavity between the anti-slip inner layer and the wear-resistant outer layer, reducing friction and improving wear resistance.

Benefits of technology

Through the action of the limit ball, the anti-slip raised structure of the anti-slip part is maintained stably, improving the anti-slip effect and wear resistance of the fabric, reducing the sliding and friction of the tablecloth, and ensuring the safety and comfort of the dining environment.

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Abstract

The utility model discloses a high-toughness wear-resistant oxford fabric, relates to the technical field of oxford fabrics, and aims to solve the problem of poor skid resistance of the oxford fabric. According to the technical scheme, a plurality of through grooves are formed in an anti-skid inner layer, a wear-resisting outer layer is fixedly connected with a plurality of anti-skid pieces, the anti-skid pieces partially penetrate out of the through grooves, a plurality of first containing grooves are formed in the anti-skid pieces, a plurality of second containing grooves are formed in the wear-resisting outer layer, and a plurality of limiting balls are fixedly connected into the second containing grooves. The center axis of the limiting ball is the same as the center axis of the first containing groove in the thickness direction of the fabric, the limiting ball presses the anti-skid piece downwards due to the gravity of the limiting ball, the protruding part of the anti-skid piece penetrates out of the through groove and protrudes out of the end face of the anti-skid inner layer, and therefore the anti-skid effect of the fabric is improved; according to the ramie anti-skid fabric, the characteristic that the surface of the ramie fiber is rough is utilized, so that the overall anti-skid effect of the fabric is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of Oxford fabrics, and more specifically, to high-toughness and wear-resistant Oxford fabrics. Background Art

[0002] Oxford fabric is a kind of fabric with multiple functions and wide uses. There are mainly the following varieties on the market: checked, full stretch, nylon, lattice, etc. The tablecloths made of Oxford fabric are widely used in hotels and guesthouses.

[0003] Tablecloths need to be washed and sterilized frequently. Therefore, Oxford cloth with high toughness, wear resistance, wash resistance and corrosion resistance is generally used, and it can also prevent the penetration of water or oil, so that the table under the tablecloth remains clean and fresh. For the convenience of tidying up the dining table, ordinary tablecloths usually do not take anti-slip measures and are easily pulled and twitched. The sliding of the tablecloth may cause the dishes to fall or the soup to spill, which will cause trouble to the diners. Therefore, a structure is needed to solve the problem of poor anti-slip performance of Oxford fabric. Content of the Utility Model

[0004] Aiming at the deficiencies of the existing technology, the purpose of the utility model is to provide a high-toughness and wear-resistant Oxford fabric to solve the problem of poor anti-slip performance of Oxford cloth.

[0005] The above technical purpose of the utility model is achieved through the following technical solutions:

[0006] The high-toughness and wear-resistant Oxford fabric includes a non-slip inner layer and a wear-resistant outer layer that are fixedly connected to each other. The non-slip inner layer is provided with a plurality of through grooves. On the side of the wear-resistant outer layer close to the non-slip inner layer, a plurality of anti-slip members are fixedly connected. Part of the anti-slip members penetrate out of the through grooves. The anti-slip members are provided with a plurality of receiving grooves I. On the side of the wear-resistant outer layer close to the non-slip inner layer, a plurality of receiving grooves II are provided. A plurality of limiting balls are fixedly connected in the receiving grooves II. The central axes of the limiting balls and the receiving grooves I along the thickness direction of the fabric are the same.

[0007] The utility model is further provided that: the anti-slip members are woven from yarns formed by twisting a plurality of ramie fibers.

[0008] The utility model is further provided that: the limiting balls are formed by thermoplastic molding of polystyrene.

[0009] The utility model is further provided that: the roughness of the anti-slip members is greater than that of the non-slip inner layer.

[0010] The utility model is further provided that: the non-slip inner layer is woven from non-slip yarns, and the wear-resistant outer layer is woven from wear-resistant yarns.

[0011] The present utility model is further configured as follows: the warp tissue points of the anti-slip inner layer are set as floats, the weft tissue points of the anti-slip inner layer are set as sinks, and the tissue cycle of the composite twill weave of the anti-slip inner layer is arranged in sequence from left to right and from bottom to top as follows: float float float sink sink sink float sink, float float sink sink float sink float sink, float sink sink float sink float sink float, sink sink float sink float sink float float, sink sink float float sink float float sink, sink float sink float float sink sink float, float sink float float sink sink sink sink, sink float float sink sink float sink float.

[0012] The present utility model is further configured as follows: the anti-slip yarn is formed by twisting a first strand and a second strand. The first strand is formed by twisting a plurality of ramie fibers, and the second strand is formed by twisting a plurality of nylon fibers.

[0013] The present utility model is further configured as follows: the wear-resistant yarn includes a core yarn and a covering yarn. The core yarn is formed by twisting a plurality of spandex fibers, the covering yarn is formed by twisting a plurality of nylon profiled fibers with a triangular cross-section, and the covering yarn is spirally wound around the outside of the core yarn.

[0014] In summary, the present utility model has the following beneficial effects:

[0015] Due to its own gravity, the limiting ball presses down on the anti-slip member, causing the protruding part of the anti-slip member to pass through the through groove and protrude from the end face of the anti-slip inner layer. The protruding anti-slip member makes the surface of the fabric rough, thereby improving the anti-slip effect of the fabric. When the wear-resistant outer layer is rubbed by external substances, due to the support of the limiting ball, a deformation cavity is formed between the anti-slip inner layer and the wear-resistant outer layer. The wear-resistant outer layer deforms towards the anti-slip inner layer direction, thereby reducing the direct friction force received by the wear-resistant outer layer, and thus improving the overall wear resistance of the fabric. The setting of the limiting ball not only reduces the relative displacement between the anti-slip inner layer and the wear-resistant outer layer, but also can stably maintain the protruding structure of the anti-slip member, thereby improving the overall anti-slip effect of the fabric. Description of the Drawings

[0016] Figure 1 is a structural schematic diagram of the present utility model;

[0017] Figure 2 is a cross-sectional view of the present utility model;

[0018] Figure 3 is a tissue diagram of the composite twill weave in the present utility model;

[0019] Figure 4 is a sectional view of the anti-slip yarn;

[0020] Figure 5 is a sectional view of the wear-resistant yarn.

[0021] In the figure: 1, anti-slip inner layer; 2, wear-resistant outer layer; 3, through groove; 4, anti-slip member; 5, first receiving groove; 6, second receiving groove; 7, limiting ball; 8, anti-slip yarn; 9, wear-resistant yarn; 10, first strand; 11, second strand; 12, core yarn; 13, covered yarn. Specific implementation manner

[0022] The following combines the drawings and embodiments to describe the present utility model in detail.

[0023] Embodiment:

[0024] As Figure 1 - Figure 2 shown, the high-tenacity wear-resistant Oxford fabric includes an anti-slip inner layer 1 and a wear-resistant outer layer 2 that are fixedly connected to each other by stitching with yarns. The anti-slip inner layer 1 is provided with a plurality of through grooves 3. A plurality of anti-slip members 4 are fixedly stitched on the side of the wear-resistant outer layer 2 close to the anti-slip inner layer 1. The anti-slip members 4 are woven from yarns formed by twisting a plurality of ramie fibers. Ramie fibers have good hygroscopicity and rough surfaces. Compared with dry fabrics, wet fabrics have better anti-slip performance. Part of the anti-slip member 4 extends out of the through groove 3. The roughness of the anti-slip member 4 is greater than that of the anti-slip inner layer 1. The part of the anti-slip member 4 protruding from the end face of the anti-slip inner layer 1 can increase the roughness of the anti-slip inner layer 1, thereby improving the overall anti-slip and wear-resistant effect of the fabric. The anti-slip member 4 is hot-pressed to form a plurality of first receiving grooves 5. A plurality of second receiving grooves 6 are hot-pressed on the side of the wear-resistant outer layer 2 close to the anti-slip inner layer 1. The cross-sections of the first receiving groove 5 and the second receiving groove 6 are both inferior arcs. Therefore, the limiting balls 7 support the anti-slip inner layer 1 and the wear-resistant outer layer 2 to form a deformed cavity. When the wear-resistant outer layer 2 is subjected to external frictional force, it deforms towards the anti-slip inner layer 1, reducing the direct frictional force received by the wear-resistant outer layer 2, thereby weakening the wear on the wear-resistant outer layer 2, and thus improving the overall wear resistance of the fabric. A plurality of limiting balls 7 are fixed in the second receiving groove 6. The limiting balls 7 are formed by thermoplastic molding of polystyrene. The central axes of the limiting balls 7 and the first receiving groove 5 along the fabric thickness direction are the same. The limiting balls 7 penetrate into the first receiving groove 5 due to their own gravity, which can not only prevent the anti-slip inner layer 1 and the wear-resistant outer layer 2 from being displaced and misaligned during use, but also stably maintain the convex structure of the anti-slip member 4, ensure the normal use of the anti-slip inner layer 1, and thus improve the anti-slip effect of the anti-slip inner layer 1.

[0025] As Figure 1 and Figure 3As shown, the anti-slip inner layer 1 is woven from anti-slip yarn 8. The warp tissue points of the anti-slip inner layer 1 are set as floats, and the weft tissue points of the anti-slip inner layer 1 are set as sinks. The tissue cycle of the compound twill weave of the anti-slip inner layer 1 is set in sequence from left to right and from bottom to top as follows: float float float sink sink sink sink float, float float sink sink sink float sink float, float sink sink sink sink float sink float, sink sink sink sink float sink float float, sink sink float sink float float sink float, sink float sink float float sink sink float, float sink float float sink sink sink float, sink float float sink sink sink float sink. Feed the anti-slip yarn 8 into the air-jet loom in the above manner, and shuttle-weave to obtain the anti-slip inner layer 1 with a tight texture.

[0026] As Figure 4 shown, the anti-slip yarn 8 is formed by twisting a number of ramie fibers through a twisting machine to form the first strand 10 and a number of nylon fibers through a twisting machine to form the second strand 11. The nylon fibers have good wear resistance. By utilizing the good wear resistance of the ramie fibers and the rough surface of the ramie fibers, the wear resistance and anti-slip effect of the anti-slip inner layer 1 are improved.

[0027] As Figure 1 and Figure 5 shown, the wear-resistant outer layer 2 is woven from wear-resistant yarn 9. The wear-resistant yarn 9 includes a core yarn 12 and a covering yarn 13. The core yarn 12 is twisted by a number of spandex fibers, and the covering yarn 13 is twisted by a number of nylon profiled fibers with a triangular cross-section. The covering yarn 13 spirally winds around the outside of the core yarn 12. By utilizing the excellent elasticity of the spandex fibers and the good wear resistance of the nylon profiled fibers, the wear-resistant yarn 9 has the characteristics of good toughness and good wear resistance. The cross-section of the nylon profiled fiber is set as a triangle, and the triangular cross-section has good bending resistance and wear fastness, which can further improve the toughness and wear resistance of the wear-resistant outer layer 2.

[0028] As Figure 1 - Figure 5As shown in the figure, when making this fabric, first, a number of ramie fibers and nylon fibers are respectively put into a twisting machine to form a first strand of yarn 10 and a second strand of yarn 11, and then twisted to form an anti-slip yarn 8. Then, the anti-slip yarn 8 is woven by an air-jet loom according to the weaving method of a compound twill weave to form an anti-slip inner layer 1. A number of through slots 3 are laser engraved on the end face of the anti-slip inner layer 1 by a laser engraving machine. The notch shape of the through slots 3 is circular. The ramie fabric woven from the yarn formed by twisting ramie fibers is cut into a number of strip-shaped anti-slip pieces 4 by a cutting machine. The anti-slip pieces 4 are laid above the anti-slip inner layer 1, and then the anti-slip pieces 4 are hot-pressed by a hot press to form a first accommodating groove 5, and the anti-slip pieces 4 are made to pass through the through slots 3 and protrude from the end face of the anti-slip inner layer 1. A number of spandex fibers are put into a twisting machine to be twisted to form a core yarn 12. A number of nylon profiled fibers with a triangular cross-section are put into a twisting machine to be twisted to form a covering yarn 13. The core yarn 12 and the covering yarn 13 are spirally wound by a mule spinning process to form a wear-resistant yarn 9. Then, the wear-resistant yarn 9 is woven by an air-jet loom to form a wear-resistant outer layer 2. The wear-resistant outer layer 2 is hot-pressed by a hot press to form a second accommodating groove 6. Polystyrene is put into a thermoplastic machine to be thermoplasted into a limiting ball 7. Glue is sprayed into the second accommodating groove 6, a number of limiting balls 7 are scattered onto the wear-resistant outer layer 2, and the wear-resistant outer layer 2 is shaken, so that the limiting balls 7 fall into the second accommodating groove 6. Then, the excess limiting balls 7 are shaken off or blown off. Finally, the wear-resistant outer layer 2 and the anti-slip inner layer 1 are sewn together by a sewing machine to finally form this fabric.

[0029] The above are only the preferred embodiments of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be pointed out that for those of ordinary skill in the art in this technical field, without departing from the principle of the present invention, several improvements and refinements should also be regarded as the protection scope of the present invention.

Claims

1. A high-toughness, wear-resistant Oxford fabric, comprising a non-slip inner layer (1) and a wear-resistant outer layer (2) fixedly connected to each other, characterized in that: The anti-skid inner layer (1) is provided with a plurality of through grooves (3); a side of the wear-resistant outer layer (2) close to the anti-skid inner layer (1) is fixedly connected with a plurality of anti-skid parts (4); the anti-skid parts (4) partially pass through the through grooves (3); the anti-skid parts (4) are provided with a plurality of first receiving grooves (5); a side of the wear-resistant outer layer (2) close to the anti-skid inner layer (1) is provided with a plurality of second receiving grooves (6); a plurality of limiting balls (7) are fixedly connected in the second receiving grooves (6); the limiting balls (7) and the first receiving grooves (5) have the same central axis along the thickness direction of the fabric.

2. The high-toughness wear-resistant Oxford fabric according to claim 1, characterized in that: The anti-slip part (4) is woven from yarns formed by twisting a plurality of ramie fibers.

3. The high-toughness wear-resistant Oxford fabric according to claim 1, characterized in that: The limiting ball (7) is thermoplastically formed from polystyrene.

4. The high-toughness wear-resistant Oxford fabric according to claim 2, characterized in that: The roughness of the anti-slip part (4) is greater than the roughness of the anti-slip inner layer (1).

5. The high-toughness wear-resistant Oxford fabric according to claim 4, characterized in that: The anti-skid inner layer (1) is woven from anti-skid yarns (8), and the wear-resistant outer layer (2) is woven from wear-resistant yarns (9).

6. The high-toughness wear-resistant Oxford fabric according to claim 5, characterized in that: The warp yarn tissue points of the anti-slip inner layer (1) are set to float, the weft yarn tissue points of the anti-slip inner layer (1) are set to sink, and the tissue cycles of the composite twill tissue of the anti-slip inner layer (1) are set from left to right and from bottom to top in sequence: floating, floating, sinking, sinking, floating ...

7. The high-toughness wear-resistant Oxford fabric according to claim 6, characterized in that: The anti-slip yarn (8) is formed by twisting a first strand (10) and a second strand (11), wherein the first strand (10) is formed by twisting a plurality of ramie fibers, and the second strand (11) is formed by twisting a plurality of nylon fibers.

8. The high-toughness wear-resistant Oxford fabric according to claim 6, characterized in that: The wear-resistant yarn (9) comprises a core yarn (12) and a covering yarn (13), wherein the core yarn (12) is formed by twisting a plurality of spandex fibers, and the covering yarn (13) is formed by twisting a plurality of nylon shaped fibers with triangular cross-sections, and the covering yarn (13) is spirally wound around the outer side of the core yarn (12).