Hiking socks
By designing differentiated ankle protection zones and elastic modulus zones in hiking socks, combined with breathable, cushioning, and anti-slip features, the problem of insufficient ankle protection in hiking socks is solved, achieving effective ankle support and improved comfort.
Patent Information
- Application Number
- CN202520340684.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-02-28
AI Technical Summary
Existing hiking socks lack effective ankle protection, which can easily lead to ankle sprains, especially in complex and varied terrain.
A hiking sock was designed with a first connecting area at the bottom of the sock. The ankle area includes an inner ankle protection area and an outer ankle protection area. The elastic modulus values of the inner ankle protection area and the outer ankle protection area are different. The inner ankle protection area is smaller to support the inner side of the ankle. The elastic modulus values of the first connecting area and the second connecting area are larger to adapt to walking deformation. The sock body has a breathable area, a cushioning area and an anti-slip area to improve comfort.
It effectively supports the ankle, especially the inner ankle, to prevent ankle sprains, improving comfort and safety during hiking, while also providing good breathability, moisture wicking and warmth.
Smart Images

Figure CN223860228U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of clothing technology, and in particular to a hiking sock. Background Technology
[0002] Hiking socks are a type of sock designed for specific applications. They are typically thicker and more durable than regular socks, offering a variety of features suitable for outdoor activities. Currently, most hiking socks on the market are designed for warmth and cushioning. However, actual hiking involves complex terrain and changeable weather, requiring comprehensive protection. Especially in complex and varied terrain, users are prone to ankle sprains. However, most hiking socks on the market are not specifically designed to prevent ankle sprains. Utility Model Content
[0003] The embodiments of this application aim to provide a hiking sock to solve the technical problem that hiking socks in the prior art lack ankle protection.
[0004] The technical problem solved by the embodiments of this application is addressed by the following technical solution:
[0005] A hiking sock is provided, comprising:
[0006] The sock cuff has a first connecting area at its bottom;
[0007] The ankle portion has one end connected to the first connecting area. The ankle portion is provided with an inner ankle protection area and an outer ankle protection area corresponding to the user's inner and outer ankles, as well as a second connecting area connecting the inner ankle protection area and the outer ankle protection area. The elastic modulus value a of the inner ankle protection area, the elastic modulus value b of the outer ankle protection area, the elastic modulus value c of the second connecting area, and the elastic modulus value d of the first connecting area satisfy: a≤b<d<c;
[0008] The sock body, connected to the other end of the ankle section, is used to wrap around the user's foot area.
[0009] Through the aforementioned structure, the medial and lateral ankle protection zones provide support for the inner and outer sides of the ankle, respectively. The medial and lateral ankle protection zones have relatively low elastic moduli, requiring greater external force for deformation to support the ankle and prevent sprains. Simultaneously, due to the human ankle bone structure, which makes the ankle more prone to inversion sprains, the medial ankle protection zone has an even lower elastic modulus, providing stronger support for the inner side of the ankle to prevent inversion sprains. The elastic moduli at the first and second connection points are greater than those of the medial and lateral ankle protection zones to accommodate the frequent deformations that occur during walking, improving comfort.
[0010] In some embodiments, the area of the medial malleolus protection zone is larger than the area of the lateral malleolus protection zone.
[0011] Through the above structure, the medial malleolus is more prone to inversion sprain than the lateral malleolus, and therefore increasing the medial malleolus protection area can improve the protection of the medial malleolus and avoid the medial malleolus from being sprained.
[0012] In some embodiments, the area of the lateral malleolus protection area is greater than the area of the second connecting area;
[0013] The height value E of the medial malleolus protection area in the direction of the extension of the sock tube gradually decreases from the middle of the medial malleolus protection area to both sides in the circumferential direction;
[0014] The height value F of the lateral malleolus protection area in the direction of the extension of the sock tube gradually decreases from the middle of the medial malleolus protection area to both sides in the circumferential direction;
[0015] The height value G of the second connecting area in the direction of the extension of the sock tube gradually increases from the middle of the medial malleolus protection area to both sides in the circumferential direction;
[0016] And: Emax, Fmax, Gmax satisfy: Emax≥Fmax>Gmax.
[0017] Through the above structure, since the height of the human body medial malleolus is greater than the height of the lateral malleolus, the height of the medial malleolus protection area is designed to be greater than the height of the lateral malleolus protection area. The height of the connecting area between the medial malleolus protection area and the lateral malleolus protection area is less than the height of the two protection areas, which is suitable for the deformation of the user during walking, avoids the feeling of foreign matter, and improves the comfort of use.
[0018] In some embodiments, the first connecting area is woven with mesh by cotton yarn, and the medial malleolus protection area, the lateral malleolus protection area, and the second connecting area are all woven with rib jacquard by cotton yarn and nylon.
[0019] Through the above structure, the first connecting area is woven with mesh by cotton yarn, which can improve the ventilation effect of the hiking socks while keeping warm. At the same time, the medial malleolus protection area, the lateral malleolus protection area, and the second connecting area are also woven with nylon to improve the support performance of the ankle part.
[0020] In some embodiments, the ankle part includes a plurality of rubber bands arranged at intervals in the direction of the extension of the sock tube, and adjacent two rubber bands form a groove on the medial side of the ankle part to constitute a first exhaust channel to guide the hot air in the user's foot area to the direction of the sock body.
[0021] And / or, the sock body includes an arch part arranged corresponding to the position of the user's arch, the arch part is arranged along the circumferential direction of the sock body, and the circumferential pressure of the arch part is greater than that of other areas of the sock body.
[0022] Through the above structure, the elastic strips not only form the first air exhaust channel to guide the hot air to be exhausted, but also improve the support performance of the ankle part. Meanwhile, the arch part can provide pressure to the arch position of the user to relieve the cramp phenomenon caused by the lack of support of the arch.
[0023] In some embodiments, the bottom of the leg part corresponding to the foot region is provided with an anti-skid area, and the anti-skid area comprises a plurality of anti-skid strips arranged along the circumferential direction of the leg part.
[0024] Through the above structure, the anti-skid area of the leg part can increase the moving friction of the foot bottom during hiking to prevent the slipping phenomenon between the socks and the insole after the foot bottom of the user sweats.
[0025] In some embodiments, the bottom of the leg part corresponding to the foot region is further provided with a shock absorption area, and the shock absorption area comprises a plurality of shock absorption strips arranged along the circumferential direction of the leg part, and the arch part is located between the shock absorption area and the anti-skid area.
[0026] Through the above structure, the shock absorption strips can absorb part of the impact force of the foot bottom when the user moves to reduce the walking pressure of the user during outdoor hiking and improve the user experience comfort.
[0027] In some embodiments, the instep of the leg part corresponding to the foot region is provided with a breathable area, and the breathable area is provided with a plurality of breathable meshes.
[0028] Through the above structure, the foot region of the leg part is provided with breathable meshes, so that part of the moisture of the foot bottom can be exhausted through the breathable area, further improving the moisture removal performance of the hiking socks.
[0029] In some embodiments, the breathable area is arranged opposite to the shock absorption area, and a groove is formed between adjacent shock absorption strips in the shock absorption area to constitute a second air exhaust channel to guide and exhaust the heat of the shock absorption area to the breathable area.
[0030] Through the above structure, the second air exhaust channel is formed between any two adjacent shock absorption strips in the transverse direction to connect the left and right sides of the foot bottom, so that the moisture generated by the foot bottom can be guided to the breathable area through the second air exhaust channel and exhausted, to keep the foot bottom dry and comfortable.
[0031] In some embodiments, the leg part is made of hollow structure fiber material.
[0032] Through the above structure, the leg part made of hollow structure fiber material can improve the warmth retention performance of the hiking socks to meet the warmth retention needs of the user during outdoor hiking.
[0033] Compared with the prior art, in the hiking socks provided in the present application, the medial malleolus protection area and the lateral malleolus protection area support the medial side and the lateral side of the ankle respectively, the elastic modulus values of the medial malleolus protection area and the lateral malleolus protection area are relatively small, and the external force required for deformation is larger, so as to support the ankle and avoid ankle sprain. At the same time, due to the human ankle bone structure, the human body is more prone to ankle varus sprain, therefore, the elastic modulus of the medial malleolus protection area is smaller, and the support for the medial side of the ankle is stronger, so as to avoid ankle varus sprain of the user. The elastic modulus of the first connecting part and the second connecting part is larger than that of the medial malleolus protection area and the lateral malleolus protection area, so as to adapt to the frequent deformation in the walking process of the user and improve the comfort. BRIEF DESCRIPTION OF DRAWINGS
[0034] One or more embodiments are illustrated by way of example in the figures that are part of this disclosure and which are illustrative, but not restrictive, of the present embodiments, wherein elements having the same reference number designates like elements throughout the various figures, and the figures are not necessarily to scale as exemplified by the following figures in which:
[0035] Figure 1 is a perspective view of a right foot hiking sock provided by one of the embodiments of the present application;
[0036] Figure 2 is a perspective view of a left foot hiking sock provided by one of the embodiments of the present application.
[0037] Figure 3 is a front view of a right foot hiking sock provided by one of the embodiments of the present application;
[0038] Figure 4 is a front view of a left foot hiking sock provided by one of the embodiments of the present application.
[0039] REFERENCE NUMERALS:
[0040] 100, hiking sock;
[0041] 10, sock tube; 110, first connecting area;
[0042] 20, ankle part; 210, medial malleolus protection area; 220, lateral malleolus protection area; 230, second connecting area; 201, elastic band; 202, first air exhaust channel;
[0043] 30, sock body; 310, arch part; 320, anti-skid area; 321, anti-skid strip; 330, shock absorption area; 331, shock absorption strip; 332, second air exhaust channel; 340, air permeation area; 341, air permeation mesh. DETAILED DESCRIPTION
[0044] For the convenience of understanding the present application, the present application will be described in more detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that when an element is described as "connected" to another element, it can be directly connected to the other element, or one or more intervening elements can be present therebetween. The terms "upper", "lower", "left", "right", "top", "bottom", "top", "bottom", and the like used in the specification indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second", and the like are only for the purpose of description and cannot be understood as indicating or implying relative importance.
[0045] Unless otherwise defined, all technical and scientific terms used in the specification have the same meaning as commonly understood by one of ordinary skill in the art to which the present application belongs. The terms used in the specification of the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application.
[0046] A hiking sock provided by the embodiment of the present application will be described in detail below in conjunction with the accompanying drawings and specific embodiments.
[0047] Please refer to Figure 1 With Figure 2 , Figure 1 is a perspective view of a right foot hiking sock provided by one of the embodiments of the present application, Figure 2 is a perspective view of a left foot hiking sock provided by one of the embodiments of the present application. The embodiment of the present application provides a hiking sock 100, which includes a sock tube 10, an ankle part 20, and a sock body 30. The bottom of the sock tube 10 is provided with a first connecting area 110; one end of the ankle part 20 is connected to the first connecting area 110, and the ankle part 20 is provided with an inner malleolus protection area 210 and an outer malleolus protection area 220 corresponding to the inner malleolus and the outer malleolus of the user, and a second connecting area 230 connecting the inner malleolus protection area 210 and the outer malleolus protection area 220, the elastic modulus value a of the inner malleolus protection area 210, the elastic modulus value b of the outer malleolus protection area 220, the elastic modulus value c of the second connecting area 230, and the elastic modulus value d of the first connecting area 110, and satisfy: a≤b<d<c; the other end of the sock body 30 is connected to the ankle part 20, and is used for wrapping the foot area of the user.
[0048] Through the above structure, the medial malleolus protection area 210 and the lateral malleolus protection area 220 support the medial side and the lateral side of the ankle respectively, the elastic modulus values of the medial malleolus protection area 210 and the lateral malleolus protection area 220 are relatively small, and the external force required for deformation is larger, so as to support the ankle and avoid ankle sprain. At the same time, since the human ankle bone structure makes the human body more prone to ankle varus sprain, the elastic modulus of the medial malleolus protection area 210 is smaller, and the support for the medial side of the ankle is stronger, so as to avoid the user's ankle varus sprain. The elastic modulus of the first connection and the second connection is greater than that of the medial malleolus protection area 210 and the lateral malleolus protection area 220, so as to adapt to the frequent deformation in the user's walking process and improve the comfort.
[0049] Specifically, the sock tube 10 is a tubular structure for wrapping the part above the ankle joint of the hiking sock 100, and the sock tube 10 is arranged to gradually decrease the inner diameter of the tube opening in the vertical downward direction, so as to adapt to the muscle shape of the lower leg to the ankle joint and reduce the muscle lactic acid generated by movement. At the tube opening of the part of the sock tube 10 close to the lower leg, an annular support seam is also arranged to support the lower leg and prevent the sock tube 10 from falling off. The bottom of the sock tube 10 is provided with a first connection area 110 to connect the ankle part 20. The elastic modulus d of the first connection area 110 is relatively large, that is, the first connection area 110 is relatively soft and easy to deform, so as to adapt to the frequent deformation of the first connection area 110 in the user's walking process and avoid the user feeling constrained and foreign body sensation.
[0050] The ankle part 20 is mainly used to wrap the ankle joint to support and protect the ankle. The medial malleolus protection area 210 and the lateral malleolus protection area 220 of the ankle part 20 are respectively used to protect the medial malleolus and the lateral malleolus. And the elastic modulus of the medial malleolus protection area 210 is smaller than that of the lateral malleolus protection area 220, so the support performance of the medial malleolus protection area 210 is stronger, so as to reduce the risk of the user's ankle varus sprain. The second connection area 230 connects the medial malleolus protection area 210 and the lateral malleolus protection area 220, covers the front side of the ankle joint, and will also deform frequently when the user walks, so the area of the second connection area 230 is relatively small, so that the medial malleolus protection area 210, the second connection area 230 and the lateral malleolus protection area 220 as a whole are in U shape, avoiding the user from feeling foreign body sensation when touching the second connection area 230 during walking and reducing the use experience. In this embodiment, the medial malleolus protection area 210, the second connection area 230 and the lateral malleolus protection area 220 as a whole are high-elasticity compression bands, so as to limit and support the movement of the ankle joint. For example, when the ankle joint moves within the normal range of movement, the elastic support force is relatively weak and does not affect the normal movement. When the ankle joint moves beyond the normal range of movement, the elastic support force increases with the increase of the moving distance, so as to prevent the ankle joint from continuing to move, thereby avoiding the ankle joint from turning inward or outward and spraining, and realizing the support and protection of the ankle joint.
[0051] In some embodiments, the area of the medial malleolus protection zone 210 is larger than the area of the lateral malleolus protection zone 220.
[0052] Because of the above structure, the inner side of the ankle is more prone to inversion sprains than the outer side. Therefore, increasing the area of the medial ankle protection zone 210 can improve the protection of the inner side of the ankle and prevent inversion sprains.
[0053] In some embodiments, the area of the lateral ankle protection region 220 is larger than the area of the second connecting region 230;
[0054] The height E of the medial ankle protection zone 210 in the direction of extension of the sock 10 gradually decreases from the middle of the medial ankle protection zone 210 in the circumferential direction to both sides.
[0055] The height F of the lateral ankle protection zone 220 in the direction of extension of the sock 10 gradually decreases from the middle of the medial ankle protection zone 210 in the circumferential direction to both sides.
[0056] The height value G of the second connecting area 230 in the extending direction of the sock 10 gradually increases from the middle of the inner ankle protection area 210 along the circumferential direction to both sides;
[0057] Furthermore, Emax, Fmax, and Gmax satisfy the condition: Emax ≥ Fmax > Gmax.
[0058] With the above structure, since the height of the inner ankle is greater than that of the outer ankle, the height of the medial ankle protection zone 210 is appropriately set to be greater than that of the lateral ankle protection zone 220 during the design process. The height connecting the medial ankle protection zone 210 and the lateral ankle protection zone 220 is less than the height of the two side protection zones to accommodate the deformation of the user during walking, avoid foreign body sensation, and improve user comfort.
[0059] Specifically, because the height of the medial ankle is greater than that of the lateral ankle, the maximum height Emax of the medial ankle protection zone 210 is greater than the Fmax of the lateral ankle protection zone 220. Meanwhile, to minimize the area of the second connecting zone 230, its height gradually increases circumferentially from the center to connect the medial ankle protection zone and the lateral ankle protection zone 220, while ensuring that the maximum height Fmax of the lateral ankle protection zone 220 is still greater than the maximum height Gmax of the second connecting zone 230.
[0060] In some embodiments, the first connecting area 110 is made of cotton yarn woven through a mesh, and the medial ankle protection area 210, the lateral ankle protection area 220 and the second connecting area 230 are all made of cotton yarn and nylon woven through rib jacquard.
[0061] Through the above structure, the first connecting area 110 uses cotton yarn woven mesh, which can improve the breathability of the hiking sock 100 while keeping it warm. At the same time, the inner ankle protection area 210, the outer ankle protection area 220 and the second connecting area 230 are also woven with nylon to improve the support performance of the ankle 20.
[0062] Specifically, cotton yarn is a fabric with certain breathability and heat retention properties, so using cotton yarn in the first connecting area 110 can achieve both breathability and heat retention. Mesh weaving further enhances the breathability of the first connecting area 110. The medial ankle protection area 210, lateral ankle protection area 220, and second connecting area 230 are woven with a mixture of nylon and cotton yarn, which can further enhance the support performance of the ankle 20 by utilizing the high strength of the nylon material.
[0063] Please refer to the following: Figure 3 and Figure 4 , Figure 3 This is a front view of a hiking sock for the right foot provided in one embodiment of this application. Figure 4 This is a front view of a hiking sock for the left foot provided in one embodiment of this application. In some embodiments, the ankle portion 20 includes a plurality of elastic bands 201 spaced apart in the extending direction of the sock sleeve 10, and two adjacent elastic bands 201 form a groove on the inner side of the ankle portion 20 to form a first ventilation channel 202 to guide hot air from the user's foot area to be discharged towards the sock body 30;
[0064] And / or, the sock body 30 includes an arch portion 310 corresponding to the user's arch position, the arch portion 310 being arranged circumferentially along the sock body 30, and the circumferential pressure of the arch portion 310 being greater than that of other areas of the sock body 30.
[0065] Through the above structure, the elastic bands, in addition to forming the first ventilation channel 202 through intervals to guide heat out and improve the moisture-wicking performance of the hiking socks 100, can also be used to improve the support performance of the ankle 20. At the same time, the arch support 310 can provide pressure to the user's arch to alleviate cramps caused by lack of arch support.
[0066] Specifically, the elastic bands are made of rubber material with certain breathability. The elastic bands are placed inside the hiking socks 100. When moisture such as sweat is generated on the soles of the feet, it usually moves upward and is guided upward through the first exhaust channel 202 formed by the intervals of the elastic bands to keep the soles of the feet dry.
[0067] In some embodiments, the bottom of the sock body 30 corresponding to the foot area is provided with an anti-slip area 320, the anti-slip area 320 including a plurality of anti-slip strips 321 spaced apart along the circumferential direction of the sock body 30.
[0068] With the above structure, the anti-slip zone 320 on the sock body 30 can increase the friction of the foot during hiking, so as to prevent the sock from slipping between the sock and the insole after the user's feet sweat.
[0069] Specifically, the anti-slip strip 321 is made of low-F-number polyester and nylon materials, which can further increase the friction during movement.
[0070] In some embodiments, the bottom of the sock body 30 corresponding to the foot area is further provided with a cushioning zone 330, the cushioning zone 330 including a plurality of cushioning strips 331 spaced apart along the circumferential direction of the sock body 30, and the arch portion 310 is located between the cushioning zone 330 and the anti-slip zone 320.
[0071] Through the above structure, the shock-absorbing strip 331 can absorb part of the impact force on the user's feet when moving, so as to reduce the walking pressure of the user when hiking outdoors and improve the user's comfort.
[0072] Specifically, the shock-absorbing strip 331 is also made of low-F-number polyester and nylon materials, and works together with the anti-slip strip 321 to increase the friction of movement.
[0073] In some embodiments, the instep of the sock body 30 corresponding to the foot area is provided with a breathable area 340, and the breathable area 340 is provided with a plurality of breathable mesh 341.
[0074] With the above structure, the foot area of the sock body 30 is provided with a breathable mesh 341, which allows some of the moisture on the sole of the foot to be discharged through the breathable area 340, further improving the moisture-wicking performance of the hiking sock 100.
[0075] In some embodiments, the ventilated area 340 is disposed opposite to the shock-absorbing area 330, and a groove is formed between adjacent shock-absorbing strips 331 in the shock-absorbing area 330 to form a second exhaust channel 332, so as to guide the heat of the shock-absorbing area 330 to the ventilated area 340 and discharge it.
[0076] Through the above structure, a second horizontal exhaust channel 332 is formed between any two adjacent shock-absorbing strips 331 to connect the left and right sides of the sole of the foot, so that the moisture generated on the sole of the foot can be guided to the breathable area 340 and discharged through the second exhaust channel 332 to keep the sole of the foot dry and comfortable.
[0077] In some embodiments, the stocking 10 is made of a hollow fiber material.
[0078] Through the above structure, the hollow fiber material used in the sock body 30 can improve the warmth retention of the hiking sock 100, so as to meet the user's warmth retention needs when hiking outdoors.
[0079] In summary, in the hiking socks 100 provided in this application, the medial ankle protection zone 210 and the lateral ankle protection zone 220 provide support for the medial and lateral sides of the ankle, respectively. The medial ankle protection zone 210 and the lateral ankle protection zone 220 have relatively low elastic moduli, requiring greater external force for deformation to support the ankle and prevent ankle sprains. Simultaneously, due to the bone structure of the human ankle, which makes the human ankle more prone to inversion sprains, the medial ankle protection zone 210 has an even lower elastic modulus, providing stronger support for the medial side of the ankle to prevent inversion sprains. The elastic modulus at the first and second connection points is greater than that of the medial ankle protection zone 210 and the lateral ankle protection zone 220 to accommodate the frequent deformations that occur during walking, thus improving comfort.
[0080] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and not to limit them; under the concept of this application, the technical features of the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other variations of different aspects of this application as described above, which are not provided in detail for the sake of brevity; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
Claims
1. A hiking sock, characterized in that, include: The sock cuff has a first connecting area at its bottom; The ankle portion has one end connected to the first connecting area. The ankle portion is provided with an inner ankle protection area and an outer ankle protection area corresponding to the user's inner and outer ankles, as well as a second connecting area connecting the inner ankle protection area and the outer ankle protection area. The elastic modulus value a of the inner ankle protection area, the elastic modulus value b of the outer ankle protection area, the elastic modulus value c of the second connecting area, and the elastic modulus value d of the first connecting area satisfy: a≤b<d<c; The sock body, connected to the other end of the ankle section, is used to wrap around the user's foot area.
2. The hiking socks according to claim 1, characterized in that, The area of the medial malleolus protection zone is larger than the area of the lateral malleolus protection zone.
3. The hiking socks according to claim 2, characterized in that, The area of the lateral ankle protection zone is larger than the area of the second connecting zone; The height value E of the medial ankle protection zone in the sock extension direction gradually decreases from the middle of the medial ankle protection zone along the circumferential direction to both sides. The height value F of the lateral ankle protection zone in the sock extension direction gradually decreases from the middle of the medial ankle protection zone along the circumferential direction to both sides. The height G of the second connecting area in the sock extension direction gradually increases from the middle of the medial ankle protection area along the circumferential direction to both sides; Furthermore, Emax, Fmax, and Gmax satisfy the condition: Emax ≥ Fmax > Gmax.
4. The hiking socks according to claim 1, characterized in that, The first connecting area is made of cotton yarn woven through a mesh, and the medial ankle protection area, lateral ankle protection area and the second connecting area are all made of cotton yarn and nylon woven through rib jacquard.
5. The hiking socks according to claim 1, characterized in that, The ankle section includes multiple elastic bands spaced apart in the sock extension direction, with two adjacent elastic bands forming a groove on the inner side of the ankle section to form a first ventilation channel to guide the hot air from the user's foot area to be discharged towards the sock body; And / or, the sock body includes an arch portion corresponding to the user's arch position, the arch portion being arranged circumferentially along the sock body, and the circumferential pressure of the arch portion being greater than that of other areas of the sock body.
6. The hiking socks according to claim 5, characterized in that, The bottom of the sock body corresponding to the foot area is provided with an anti-slip zone, which includes multiple anti-slip strips spaced apart along the circumferential direction of the sock body.
7. The hiking socks according to claim 6, characterized in that, The bottom of the sock body corresponding to the foot area is also provided with a cushioning zone, which includes multiple cushioning strips spaced apart along the circumferential direction of the sock body. The arch of the foot is located between the cushioning zone and the anti-slip zone.
8. The hiking socks according to claim 7, characterized in that, The sock body has a breathable area on the instep corresponding to the foot area, and the breathable area is provided with multiple breathable mesh openings.
9. The hiking socks according to claim 8, characterized in that, The breathable zone is positioned opposite to the shock-absorbing zone. A groove is formed between adjacent shock-absorbing strips in the shock-absorbing zone to form a second exhaust channel, so as to guide the heat of the shock-absorbing zone to the breathable zone and exhaust it.
10. The hiking socks according to claim 1, characterized in that, The socks are made of hollow fiber material.