Sports socks with high resilience force

By incorporating high-density layers, reinforcements, nylon fiber layers, and rubber coatings into sports socks, the problem of poor elasticity recovery in existing sports socks has been solved, resulting in a sports sock design with high resilience and abrasion resistance.

CN224084690UActive Publication Date: 2026-04-07HAINING DONGPO TRADE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-29
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing sports socks have poor stretch and elastic recovery capabilities, making them prone to deformation and ill-fitting during wear.

Method used

The socks are made of pure cotton yarn, with a high-density layer at the cuff and evenly spaced reinforcements on the outside, including elastic bands and an outer layer. The outer wall of the socks is bonded with Velcro, and the bottom of the socks has a nylon fiber layer and a polyester fiber layer. Key parts of the socks are reinforced with rubber coating and padding to improve elasticity and abrasion resistance.

Benefits of technology

It improves the elasticity and toughness of the socks, increases their tensile strength, prevents marks caused by localized pressure, maintains comfort and stability, and enhances their deformation recovery and abrasion resistance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to sports socks with high resilience force, and relates to the field of sports socks. The sock comprises a sock body, the sock body is formed by weaving pure cotton threads, the sock collar of the sock body is provided with a peripheral edge surrounding an opening, the opening is used for containing the foot of a wearer, a high-density layer is arranged on the outer side of the opening of the sock body, and a plurality of reinforcing pieces are evenly arranged on the outer portion of the sock body at intervals. Each reinforcing part comprises an elastic band and an outer wrapping layer, the elastic band is wrapped with the outer wrapping layer, hook-and-loop fasteners are horizontally fixed to the two ends of the outer wrapping layer and adhere to the outer wall of the sock body, and a rubber pad is fixed to the position, located at the ankle, of the outer wall of the sock body. The elasticity and toughness of the socks are improved, and the stretch resistance of the socks is greatly improved.
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Description

Technical Field

[0001] This application relates to the technical field of sports socks, and in particular to a high-resilience sports sock. Background Technology

[0002] As people's living standards improve, consumers' requirements for socks are no longer limited to foot protection; attractive appearance and comfort are also becoming increasingly important.

[0003] The existing announcement number is CN201813855U, entitled "A Kind of Sports Sock," which includes a sock body. Its characteristic feature is that one side of the front end of the sock body has a hole suitable for the big toe to pass through, and the edge of the hole is overlocked. This utility model of sports sock allows the big toe to be exposed outside the sock, avoiding localized wear and tear on the big toe area of ​​the sock from shoes. This type of sports sock is durable, wear-resistant, and economical.

[0004] Regarding the aforementioned technologies, the inventors discovered that the existing sports socks have poor stretching and elastic recovery capabilities, making them prone to deformation during wear. Combined with their poor deformation recovery ability, this results in the socks becoming too big and eventually not fitting properly. Utility Model Content

[0005] In order to overcome the poor stretch and elastic recovery ability of existing sports socks, which makes the socks very easy to deform during wearing, and their poor deformation recovery ability leads to the socks getting bigger and bigger and eventually not fitting properly, this application provides a sports sock with high elasticity.

[0006] The high-resilience sports socks provided in this application adopt the following technical solution:

[0007] A high-resilience sports sock includes a sock body made of pure cotton yarn. The sock body has a perimeter edge around an opening at the collar, and the opening is for receiving the wearer's foot. A high-density layer is provided on the outer side of the opening of the sock body. Multiple reinforcing members are evenly spaced on the outside of the sock body. The reinforcing members include elastic bands and an outer layer. The elastic bands are covered by the outer layer, and both ends of the outer layer are horizontally fixed with Velcro. The Velcro is attached to the outer wall of the sock body. A rubber pad is fixed to the outer wall of the sock body at the ankle.

[0008] By adopting the above technical solution, a high-density layer is provided at the opening of the sock body, and the high-density layer is located at the sock body's cuff. Multiple reinforcing members are evenly spaced on the outside of the sock body. Each reinforcing member has an elastic band wrapped in its outer layer, and both ends of the outer layer are attached with Velcro. The Velcro adheres to the outer wall of the sock body, ensuring the stability of the reinforcing members on the outside of the sock body. During use, the high elasticity of the elastic band itself improves the support stability of the sock body, allowing it to be tied around the foot. Simultaneously, multiple reinforcing members are evenly spaced on the sock body. A nylon fiber layer is fixedly connected to the lower end face of the sock body at the foot position, and another nylon fiber layer is fixedly connected to the heel position. The lower end face of the sock body is located between the nylon fiber layers. The sock features a polyester fiber layer at the joint, while the nylon fiber layer boasts superior abrasion resistance. Placed at the foot and heel, it enhances the sock's overall durability. The nylon fiber layer also quickly recovers its original shape after stretching, exhibiting excellent elastic recovery. The polyester fiber layer, often used as an inner or interlayer, utilizes its quick-drying and lightweight properties to rapidly wick away sweat and keep the body dry. Reinforcing members are evenly distributed at the heel, significantly improving the sock's elasticity and resilience, thus greatly enhancing its tensile strength. A high-density woven layer at the cuff ensures a snug fit while effectively preventing constriction and marks caused by localized pressure. Furthermore, a polyester fiber layer is interspersed between the nylon fiber layers to enhance elastic support for the foot and improve the sock's deformation recovery.

[0009] Optionally, the outer sheath is knitted from multiple bundles of Lycra fibers, which are made by spirally weaving multiple Lycra threads.

[0010] By adopting the above technical solution, the outer layer is knitted with multiple Lycra fiber bundles and woven with multiple Lycra yarns in a spiral shape. The spiral structure has good stiffness and recovery, is not easy to deform, and increases the resilience of the socks to deformation.

[0011] Optionally, the toe and heel of the socks are fitted with a rubber coating.

[0012] By adopting the above technical solution, the toe and heel of the sock body are provided with rubber coatings. The rubber coatings at both ends of the sole are used to reduce the impact on the foot and provide support during exercise.

[0013] Optionally, the high-density layer adopts a double-layer structure, and multiple elastic bands are bonded to the double-layer structure of the high-density layer.

[0014] By adopting the above technical solution, the high-density layer adopts a double-layer structure with multiple elastic bands bonded inside. The high-density layer is densely woven, which not only ensures the fit at the sock opening, but also allows the elastic bands to tightly bind the legs, effectively avoiding the restraint caused by local pressure and thus preventing marks.

[0015] Optionally, the bottom of the sock body is provided with a foot, and both the foot and heel are made of nylon fiber.

[0016] By adopting the above technical solution, a polyester fiber layer is connected between the nylon fiber layers on the lower end face of the sock body. The nylon fiber layer has super abrasion resistance and is placed at the foot and heel to improve the abrasion resistance of the sock body. At the same time, the nylon fiber layer can quickly return to its original shape after stretching, with a high elastic recovery rate. The polyester fiber layer is often used as an inner layer or interlayer, utilizing its quick-drying and lightweight properties to quickly wick away sweat and keep the body dry.

[0017] Optionally, multiple toe pads are evenly fixed laterally on the front of the foot below the toes, and each toe pad corresponds to the bottom of the toes.

[0018] By adopting the above technical solution, multiple toe pads fixed at the front of the foot correspond one-to-one with the bottom of the toes, providing impact-resistant support for the toes.

[0019] Optionally, the finger pads are made of rubber and have multiple raised dots evenly distributed on the bottom surface.

[0020] By adopting the above technical solution, the finger pad is made of rubber material, which has the advantage of strong impact resistance. At the same time, the multiple protrusions on the finger pad are used to increase the massage bearing capacity of the finger pad for the toes.

[0021] Optionally, pads are fixed to the middle and rear of the foot, and rubber suction cups are embedded in the bottom surface of the pads.

[0022] By adopting the above technical solution, pads are set in the heel and arch of the foot to improve the effectiveness of foot support for the heel and arch. At the same time, rubber suction cups are attached to the inside of the shoe to ensure the stability of the sock itself in the shoe.

[0023] In summary, this application includes at least one of the following beneficial technical effects: a high-density layer is provided at the opening of the sock body, the high-density layer is located at the sock body opening, multiple reinforcing members are evenly spaced on the outside of the sock body, the multiple reinforcing members are evenly spaced on the outside of the sock body, an elastic band is wrapped in the outer layer of the reinforcing member, and both ends of the outer layer are glued with Velcro, the Velcro is adhered to the outer wall of the sock body, completing the assembly stability of the reinforcing members on the outside of the sock body, during use, the elastic band itself has high elasticity, which can improve the support stability of the sock body, binding the sock body to the foot, while multiple reinforcing members are evenly spaced on the sock body, the reinforcing members are evenly distributed on the sock body, a nylon fiber layer is fixedly connected to the lower end face of the sock body at the foot position, a nylon fiber layer is fixedly connected to the end face of the sock body at the heel position, and the lower end face of the sock body has a nylon fiber layer and a nylon fiber layer. Polyester fiber layers are interspersed between the nylon fiber layers. These nylon fiber layers, with their superior abrasion resistance, are placed at the foot and heel to enhance the sock's overall durability. The nylon fiber layers also quickly recover their original shape after stretching, exhibiting excellent elastic recovery. Polyester fiber layers, often used as inner or interlayer layers, utilize their quick-drying and lightweight properties to rapidly wick away sweat and keep the body dry. Reinforcing members are evenly distributed at the heel, significantly improving the sock's elasticity and resilience, thus greatly enhancing its tensile strength. A high-density woven layer at the cuff ensures a snug fit while effectively preventing constriction and marks caused by localized pressure. The polyester fiber layers between the nylon fiber layers further enhance elastic support for the foot, improving the sock's deformation recovery. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the overall structure of the sock body according to an embodiment of this application;

[0025] Figure 2 This is a schematic diagram of the foot in an exploded state according to an embodiment of this application;

[0026] Figure 3 This is a schematic diagram of the structure of the reinforcing member in the exploded state according to an embodiment of this application;

[0027] Figure 4 This is a schematic diagram of the structure of the support pad in the disassembled state according to an embodiment of this application;

[0028] Figure 5 This is a schematic diagram of the structure of the pad in the disassembled state according to an embodiment of this application;

[0029] Figure 6 This is a schematic diagram of the outer sheath in the disassembled state of an embodiment of this application.

[0030] Explanation of reference numerals in the attached diagram: 1. Sock body; 2. Reinforcing component; 21. Elastic band; 22. Outer layer; 23. Velcro; 3. Rubber coating; 4. High-density layer; 5. Rubber pad; 6. Foot; 61. Toe pad; 611. Dot; 62. Support pad; 621. Rubber suction cup; 7. Lycra fiber bundle; 71. Lycra thread. Detailed Implementation

[0031] The present application will be further described in detail below with reference to the accompanying drawings.

[0032] This application discloses a high-resilience sports sock. (See also...) Figure 1 and Figure 3 A high-resilience sports sock includes a sock body 1, which is knitted from pure cotton yarn. The collar of the sock body 1 has a perimeter edge surrounding an opening for receiving the wearer's foot. A high-density layer 4 is provided on the outer side of the opening of the sock body 1. Multiple reinforcing members 2 are evenly spaced on the outside of the sock body 1. The reinforcing members 2 include elastic bands 21 and outer coverings 22. The elastic bands 21 are covered by the outer coverings 22. Both ends of the outer coverings 22 are horizontally fixed with Velcro 23, which are attached to the outer wall of the sock body 1. A rubber pad 5 is fixed to the outer wall of the sock body 1 at the ankle.

[0033] By adopting the above technical solution, a high-density layer 4 is provided at the opening of the sock body 1. The high-density layer 4 is located at the sock cuff of the sock body 1. Multiple reinforcing members 2 are evenly spaced on the outside of the sock body 1. The multiple reinforcing members 2 are evenly spaced on the outside of the sock body 1. An elastic band 21 is wrapped in the outer layer 22 of the reinforcing member 2. Both ends of the outer layer 22 are glued with Velcro 23. The Velcro 23 is adhered to the outer wall of the sock body 1, which completes the assembly stability of the reinforcing members 2 on the outside of the sock body 1. In use, the elastic band 21 itself has high elasticity, which can improve the support stability of the sock body 1 and bind the sock body 1 to the foot. At the same time, multiple reinforcing members 2 are evenly spaced on the sock body 1. The lower end face of the sock body 1 at the foot position is fixedly connected with a nylon fiber layer. The lower end face of the sock body 1 is fixedly connected with a nylon fiber layer. A polyester fiber layer is connected between the nylon fiber layers. The nylon fiber layer has excellent abrasion resistance and is placed at the foot and heel to improve the abrasion resistance of the sock body 1. At the same time, the nylon fiber layer can quickly return to its original shape after stretching, with a high elastic recovery rate. The polyester fiber layer is often used as an inner layer or interlayer, utilizing its quick-drying and lightweight properties to quickly wick away sweat and keep the body dry. The sock body 1 has reinforcement members 2 evenly distributed at the heel. By evenly distributing the reinforcement members 2 in the sock body 1, the elasticity and toughness of the sock are greatly improved, and the tensile strength of the sock is greatly improved. At the same time, a high-density layer is densely woven at the sock cuff. The high density of the high-density layer not only ensures the fit at the sock cuff, but also effectively avoids the restraint caused by local pressure and the formation of marks. In addition, the polyester fiber layer is placed between the nylon fiber layers to improve the elastic support for the bottom of the foot and improve the deformation recovery of the sock.

[0034] Reference Figure 6 The outer layer 22 is knitted from multiple bundles of Lycra fibers 7, which are woven from multiple Lycra yarns 71 in a spiral pattern. The spiral structure provides good resilience and resistance to deformation, increasing the socks' ability to recover from deformation.

[0035] Reference Figure 1 The sock body 1 has a rubber coating 3 at both the toe and heel. The rubber coating 3 at both ends of the sole is used to reduce impact on the foot and provide support during exercise.

[0036] Reference Figure 1The high-density layer 4 adopts a double-layer structure, and multiple elastic bands are bonded within the double-layer structure of the high-density layer 4. The high-density layer 4 adopts a double-layer structure, and multiple elastic bands are bonded inside. The high density of the high-density layer not only ensures a close fit at the sock opening, but also effectively avoids the restraint caused by local pressure and the formation of marks due to the elastic bands tightly binding the legs.

[0037] Reference Figure 1 The bottom surface of the sock body 1 has a foot 6, and both the foot 6 and the heel are made of nylon fiber. A polyester fiber layer is connected between the nylon fiber layers on the lower surface of the sock body 1. The nylon fiber layer has excellent abrasion resistance and is placed at the foot and heel to improve the abrasion resistance of the sock body 1. Simultaneously, the nylon fiber layer can quickly return to its original shape after stretching, exhibiting a high elastic recovery rate. The polyester fiber layer is often used as an inner or interlayer layer, utilizing its quick-drying and lightweight properties to quickly wick away sweat and keep the body dry.

[0038] Reference Figure 2 and Figure 5 Multiple toe pads 61 are evenly fixed laterally at the front end of the foot 6, located below the toes, with each toe pad 61 corresponding to a specific bottom of the toe. These multiple toe pads 61 at the front end of the foot 6 correspond to a specific bottom of the toe, providing impact-resistant support for the toes.

[0039] Reference Figure 2 and Figure 5 The toe pad 61 is made of rubber, and multiple raised dots 611 are evenly distributed on the bottom surface of the toe pad 61. The rubber material of the toe pad 61 has the advantage of strong impact resistance, and the multiple raised dots 611 on the toe pad 61 are used to increase the massage bearing capacity of the toe pad 61.

[0040] Reference Figure 2 and Figure 6 The foot 6 has pads 62 fixed to its middle and rear ends, and rubber suction cups 621 are embedded and fixed to the bottom surface of the pads 62. The pads 62 are set for the heel and arch of the foot 6 to improve the effectiveness of the foot 6 in supporting the heel and arch of the foot. At the same time, the rubber suction cups 621 are attached to the inside of the shoe to ensure the stability of the sock body 1 in the shoe.

[0041] The implementation principle of a high-resilience sports sock according to this application embodiment is as follows: During use, the elastic band 21 itself has high elasticity, which can improve the support stability of the sock body 1. The sock body 1 is tied to the foot. Simultaneously, multiple reinforcing members 2 are evenly distributed on the sock body 1. A nylon fiber layer is fixedly connected to the lower end face of the sock body 1 at the foot position, and a nylon fiber layer is fixedly connected to the heel end face of the sock body 1. A connection is made between the nylon fiber layers on the lower end face of the sock body 1. The sock body 1 is equipped with a polyester fiber layer and a nylon fiber layer, which have excellent abrasion resistance. These layers are placed at the foot and heel to enhance the abrasion resistance of the sock body 1. At the same time, the nylon fiber layer can quickly return to its original shape after stretching, with a high elastic recovery rate. The polyester fiber layer is often used as an inner layer or interlayer, utilizing its quick-drying and lightweight properties to quickly wick away sweat and keep the body dry. The sock body 1 is equipped with reinforcement members 2 evenly distributed at the heel. By evenly distributing the reinforcement members 2 in the sock body 1, the elasticity and toughness of the sock are greatly improved, resulting in a significant increase in the tensile strength of the sock.

[0042] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A high-resilience sports sock, characterized in that, The sock body (1) is made of pure cotton yarn. The collar of the sock body (1) has a perimeter edge around the opening, and the opening is for receiving the wearer's foot. A high-density layer (4) is provided on the outside of the opening of the sock body (1). Multiple reinforcing members (2) are evenly spaced on the outside of the sock body (1). The reinforcing member (2) includes an elastic band (21) and an outer layer (22). The elastic band (21) is covered by the outer layer (22). Both ends of the outer layer (22) are horizontally fixed with Velcro (23), and the Velcro (23) is attached to the outer wall of the sock body (1). A rubber pad (5) is fixed on the outer wall of the sock body (1) at the ankle.

2. The high-resilience sports sock according to claim 1, characterized in that: The outer layer (22) is knitted from multiple Lycra fiber bundles (7), which are made by spirally weaving multiple Lycra yarns (71).

3. The high-resilience sports sock according to claim 1, characterized in that: The sock body (1) is provided with a rubber coating (3) at the toe and heel.

4. A high-resilience sports sock according to claim 1, characterized in that: The high-density layer (4) is configured with a double-layer structure, and multiple rubber bands are bonded to the double-layer structure of the high-density layer (4).

5. A high-resilience sports sock according to claim 1, characterized in that: The bottom surface of the sock body (1) is provided with a foot (6), and both the foot (6) and the heel are made of nylon fiber.

6. A high-resilience sports sock according to claim 5, characterized in that: The front end of the foot (6) is horizontally and evenly fixed with multiple finger pads (61) on the underside of the toes, and the multiple finger pads (61) correspond one-to-one with the bottom of the toes.

7. A high-resilience sports sock according to claim 6, characterized in that: The finger pad (61) is made of rubber, and multiple protrusions (611) are evenly arranged on the bottom surface of the finger pad (61).

8. A high-resilience sports sock according to claim 5, characterized in that: The foot (6) is fixed with a pad (62) at the middle and rear ends, and a rubber suction cup (621) is embedded and fixed on the bottom surface of the pad (62).

Citation Information

Patent Citations

  • Sport sock

    CN201813855U