Sneaker with damping structure
By designing multi-layered shock-absorbing structures and components in athletic shoes, the problem of insufficient shock absorption in the horizontal and torsional directions of traditional athletic shoes is solved, achieving an all-round shock absorption effect and improving sports comfort and safety.
Patent Information
- Application Number
- CN202520230512.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-13
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-02-13
AI Technical Summary
Traditional athletic shoes neglect the need for shock absorption in both horizontal and torsional directions, which can easily lead to foot injuries under combined forces, affecting athletic performance and comfort.
The system employs a multi-layered damping structure, comprising a triangular structure consisting of a first damping chamber, a connecting plate, and a buffer spring, which are used for damping in both vertical and horizontal directions. It is combined with anti-slip components, protective components, and functional components to improve the overall damping performance.
It provides all-around shock absorption protection in both vertical and horizontal directions, improving the comfort and safety of athletic shoes, especially providing stable grip and cushioning protection in complex terrain and high-intensity sports.
Smart Images

Figure CN223860289U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of sports shoes, especially to a sports shoe with a shock-absorbing structure. BACKGROUND
[0002] Traditional sports shoes often focus on single-direction shock-absorbing treatment in shock-absorbing design, such as mainly focusing on vertical shock-absorbing effect and ignoring the shock-absorbing demand in the horizontal direction. However, in actual sports, especially when running, jumping or walking on uneven ground, sports shoes will not only be subjected to impact force in the vertical direction, but also be subjected to friction force and torsional force from the horizontal direction. The action of these combined forces is easy to cause foot injury and affect sports performance and comfort.
[0003] The shock-absorbing design of sports shoes in the prior art usually adopts air cushions, foam materials or spring structures to realize vertical shock absorption. However, these designs have limited effect when dealing with forces in the horizontal and torsional directions, and cannot provide comprehensive shock-absorbing protection for wearers.
[0004] Therefore, in view of the above problems, the present application provides a sports shoe with a shock-absorbing structure, which simultaneously deals with vertical and horizontal impact forces to provide comprehensive shock-absorbing protection for wearers. SUMMARY
[0005] In order to overcome the problem of insufficient shock-absorbing effect of traditional sports shoes in the horizontal and torsional directions in the process of using traditional sports shoes in daily life.
[0006] The technical scheme of the utility model is as follows: a sports shoe with a shock-absorbing structure, comprising a shoe body, a sole, a shock-absorbing assembly, an anti-skid assembly, a protective assembly and a functional assembly, the sole is arranged below the shoe body, the shock-absorbing assembly is arranged on the inner side of the sole, the anti-skid assembly is arranged below the sole, the protective assembly is arranged on one side of the sole, the functional assembly is arranged on the inner side of the shoe body, the shock-absorbing assembly comprises a first shock-absorbing cavity, a first connecting plate, a first buffer spring, a second connecting plate, a second shock-absorbing cavity, a first connecting block, a second buffer spring, a second connecting block, a third buffer spring and a third connecting block, the first shock-absorbing cavity is arranged on the inner side of the sole, the first connecting plate is arranged on the inner side of the first shock-absorbing cavity, the first connecting plate is provided in multiple groups, the first buffer spring is arranged above the first connecting plate, one end of the first buffer spring is provided with the second connecting plate, the second shock-absorbing cavity is arranged on the inner side of the sole, the first connecting block is arranged on the inner side of the second shock-absorbing cavity, the second buffer spring is arranged on one side of the first connecting block, one end of the second buffer spring is provided with the second connecting block, the third buffer spring is arranged on one side of the second connecting block, and one end of the third buffer spring is provided with the third connecting block.
[0007] Preferably, when the shoe sole is subjected to pressure from the up-down direction, the first connecting plate and the second connecting plate are subjected to pressure and generate relative movement in the vertical direction, and at the same time, the first connecting plate and the second connecting plate are subjected to buffering and shock absorption treatment by the first buffering spring, so that the sports shoes are subjected to vertical direction shock absorption treatment by the first shock absorption cavity; when the shoe sole is subjected to force from the horizontal direction, a triangular structure is formed between the second buffering spring and the third buffering spring, so that the sports shoes are subjected to horizontal direction shock absorption treatment by the second shock absorption cavity; when the user wears the sports shoes and walks, horizontal frictional force is generated between the bottom surface of the shoes and the ground, and the shock absorption protection performance of the sports shoes can be improved by the horizontal direction shock absorption treatment of the sports shoes.
[0008] Preferably, the anti-skid assembly comprises a first connecting layer and an anti-skid layer, and the first connecting layer is arranged below the shoe sole, and the anti-skid layer is arranged below the first connecting layer.
[0009] Preferably, the anti-skid assembly further comprises a connecting groove and a threaded pipe, and the connecting groove is arranged in the inner side of the first connecting layer, and the threaded pipe is arranged in the inner side of the connecting groove.
[0010] Preferably, the anti-skid assembly further comprises an anti-skid nail, and the anti-skid nail is arranged in the inner side of the threaded pipe and is threadedly connected with the threaded pipe.
[0011] Preferably, the protection assembly comprises a second connecting layer, a mounting rope and an AFC layer, the second connecting layer is arranged on one side of the shoe sole, the mounting rope is arranged in the inner side of the second connecting layer, and the AFC layer is arranged in the inner side of the second connecting rope.
[0012] Preferably, the functional assembly comprises a tongue and a shoelace, and the tongue is arranged in the inner side of the shoe body, and the shoelace is arranged in the inner side of the shoe body.
[0013] Preferably, the functional assembly further comprises a ventilation hole, and the ventilation hole is arranged on one side of the shoe body, and a plurality of groups of ventilation holes are arranged.
[0014] The utility model discloses the beneficial effects of:
[0015] Preferably, when the shoe sole is subjected to pressure from the up-down direction, the first connecting plate and the second connecting plate are subjected to pressure and generate relative movement in the vertical direction, and at the same time, the first connecting plate and the second connecting plate are subjected to buffering and shock absorption treatment by the first buffering spring, so that the sports shoes are subjected to vertical direction shock absorption treatment by the first shock absorption cavity; when the shoe sole is subjected to force from the horizontal direction, a triangular structure is formed between the second buffering spring and the third buffering spring, so that the sports shoes are subjected to horizontal direction shock absorption treatment by the second shock absorption cavity; when the user wears the sports shoes and walks, horizontal frictional force is generated between the bottom surface of the shoes and the ground, and the shock absorption protection performance of the sports shoes can be improved by the horizontal direction shock absorption treatment of the sports shoes. Attached Figure Description
[0016] Figure 1 The diagram shown is a first three-dimensional structural schematic of the sports shoe with shock-absorbing structure according to this utility model;
[0017] Figure 2 The diagram shown is a second three-dimensional structural schematic of the sports shoe with shock-absorbing structure according to this utility model;
[0018] Figure 3 The diagram shown is a three-dimensional cross-sectional view of the sports shoe with shock-absorbing structure according to this utility model.
[0019] Figure 4 The diagram shown is a three-dimensional cross-sectional view of the sports shoe with shock-absorbing structure according to this utility model.
[0020] Explanation of reference numerals in the attached drawings: 1. Shoe body; 2. Shoe sole; 101. First shock-absorbing chamber; 102. First connecting plate; 103. First cushioning spring; 104. Second connecting plate; 105. Second shock-absorbing chamber; 106. First connecting block; 107. Second cushioning spring; 108. Second connecting block; 109. Third cushioning spring; 110. Third connecting block; 201. First connecting layer; 202. Anti-slip layer; 203. Connecting groove; 204. Threaded tube; 205. Anti-slip stud; 301. Second connecting layer; 302. Installation rope; 303. AFC layer; 401. Tongue; 402. Shoelace; 403. Ventilation hole. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Please see Figure 1This utility model provides an embodiment: a sports shoe with a shock-absorbing structure, including a shoe body 1, a sole 2, a shock-absorbing component, an anti-slip component, a protective component, and a functional component. The sole 2 is disposed on the lower part of the shoe body 1, the shock-absorbing component is disposed on the inner side of the sole 2, the anti-slip component is disposed on the lower part of the sole 2, the protective component is disposed on one side of the sole 2, and the functional component is disposed on the inner side of the shoe body 1. The shock-absorbing component includes a first shock-absorbing cavity 101, a first connecting plate 102, a first buffer spring 103, a second connecting plate 104, a second shock-absorbing cavity 105, a first connecting block 106, a second buffer spring 107, a second connecting block 108, a third buffer spring 109, and a third connecting block 110. The inner side of the sole 2... A first shock-absorbing cavity 101 is provided, and a first connecting plate 102 is provided on the inner side of the first shock-absorbing cavity 101. Multiple sets of first connecting plates 102 are provided. A first buffer spring 103 is provided above the first connecting plate 102. A second connecting plate 104 is provided at one end of the first buffer spring 103. A second shock-absorbing cavity 105 is provided on the inner side of the sole 2. A first connecting block 106 is provided on the inner side of the second shock-absorbing cavity 105. A second buffer spring 107 is provided on one side of the first connecting block 106. A second connecting block 108 is provided at one end of the second buffer spring 107. A third buffer spring 109 is provided on one side of the second connecting block 108. A third connecting block 110 is provided at one end of the third buffer spring 109.
[0023] Please see Figures 2-4 In this embodiment, the anti-slip component includes a first connecting layer 201 and an anti-slip layer 202. The first connecting layer 201 is disposed below the sole 2, and the anti-slip layer 202 is disposed below the first connecting layer 201. In use, the anti-slip layer 202 improves the anti-slip performance of the sports shoe. The anti-slip component also includes a connecting groove 203 and a threaded tube 204. The connecting groove 203 is provided on the inner side of the first connecting layer 201, and the threaded tube 204 is disposed on the inner side of the connecting groove 203. In use, the position of the threaded tube 204 is fixed by the connecting groove 203. The anti-slip component also includes an anti-slip stud 205. The anti-slip stud 205 is disposed on the inner side of the threaded tube 204, and the stud and the threaded tube 204 are threadedly connected. In use, the anti-slip stud 205 can be quickly installed and removed through the threaded connection between the threaded tube 204 and the anti-slip stud 205. The anti-slip stud 205 can improve the anti-slip performance of the shoe when walking on mountainous or other terrain surfaces.
[0024] The protective components include a second connecting layer 301, a mounting rope 302, and an AFC layer 303. The second connecting layer 301 is provided on one side of the sole 2, the mounting rope 302 is provided on the inner side of the second connecting layer 301, and the AFC layer 303 is provided on the inner side of the second connecting rope. In use, the AFC layer 303 provides cushioning protection for the toe area. The functional components include a tongue 401 and a shoelace 402. The tongue 401 is provided on the inner side of the shoe body 1, and the shoelace 402 is provided on the inner side of the shoe body 1. The functional components also include ventilation holes 403. Multiple sets of ventilation holes 403 are provided on one side of the shoe body 1. In use, the ventilation holes 403 improve the breathability of the sports shoe.
[0025] During operation, the sole 2 is designed with a first shock-absorbing chamber 101 and a second shock-absorbing chamber 105 to cope with vertical and horizontal impacts, respectively. Within the first shock-absorbing chamber 101, a first connecting plate 102 and a second connecting plate 104 are connected by a first buffer spring 103. When the sole 2 is subjected to vertical pressure, the two connecting plates move relative to each other, and the buffer spring effectively absorbs the impact, achieving vertical shock absorption. Within the second shock-absorbing chamber 105, a first connecting block 106, a second connecting block 108, and a third connecting block 110 form a triangular structure via a second buffer spring 107 and a third buffer spring 109. Utilizing the stability of a triangle, when the sole 2 is subjected to a horizontal force, the triangular structure can disperse and absorb the impact, achieving horizontal shock absorption. Furthermore, the anti-slip component beneath the sole 2 is tightly bonded to the anti-slip layer 202 via a first connecting layer 201, providing excellent anti-slip performance. The anti-slip layer 202 uses highly wear-resistant materials to ensure stable grip on various terrains.
[0026] The anti-slip studs 205 are connected to the first connecting layer 201 via threaded tubes 204, allowing users to quickly install and remove them as needed. In complex terrains such as mountains and mud, the anti-slip studs 205 can penetrate deep into the ground, providing additional grip and ensuring safety during exercise. Meanwhile, the protective components on one side of the sole 2 are constructed via the second connecting layer 301, mounting cord 302, and AFC layer 303. The high-performance cushioning material of the AFC layer 303 effectively absorbs the impact on the toe box during walking or running, protecting the wearer's toes from injury.
[0027] The functional components on the inner side of the shoe body 1 include the tongue 401, shoelaces 402, and ventilation holes 403; the tongue 401 is made of soft material, conforms to the instep, and provides a comfortable wearing experience; the shoelaces 402 are made of high-strength fiber material to ensure the tightness of the athletic shoe, while also being easy to adjust; multiple sets of ventilation holes 403 are evenly distributed on the side of the shoe body 1 to effectively expel moisture from the shoe and keep the feet dry; this design is especially suitable for wearing during long-term exercise or in high-temperature environments, effectively reducing foot fatigue and odor.
[0028] Through the above steps, when the sole 2 is subjected to pressure from the vertical direction, the first connecting plate 102 and the second connecting plate 104 are subjected to pressure and generate relative vertical movement. At the same time, the first buffer spring 103 provides buffering and shock absorption between the first connecting plate 102 and the second connecting plate 104. Thus, the first shock-absorbing cavity 101 provides vertical shock absorption for the athletic shoe. When the sole 2 is subjected to force from the horizontal direction, the second buffer spring 107 and the third buffer spring 109 form a triangular structure. The second shock-absorbing cavity 105 provides horizontal shock absorption for the athletic shoe when the sole 2 is subjected to horizontal force. When the user walks in the athletic shoe, horizontal friction is generated between the sole of the shoe and the ground. By providing horizontal shock absorption for the athletic shoe, the shock absorption and protection performance of the athletic shoe can be improved.
[0029] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A sports shoe with a shock-absorbing structure, comprising a shoe upper (1) and a sole (2), characterized in that: It also includes shock-absorbing components, anti-slip components, protective components, and functional components. A sole (2) is located below the shoe body (1). A shock-absorbing component is located on the inner side of the sole (2). An anti-slip component is located below the sole (2). A protective component is located on one side of the sole (2). A functional component is located on the inner side of the shoe body (1). The shock-absorbing component includes a first shock-absorbing cavity (101), a first connecting plate (102), a first buffer spring (103), a second connecting plate (104), a second shock-absorbing cavity (105), a first connecting block (106), a second buffer spring (107), a second connecting block (108), a third buffer spring (109), and a third connecting block (110). The first shock-absorbing cavity (101) is located on the inner side of the sole (2). A first connecting plate (102) is provided on the inner side of the sole (2). Multiple sets of the first connecting plate (102) are provided. A first buffer spring (103) is provided above the first connecting plate (102). A second connecting plate (104) is provided at one end of the first buffer spring (103). A second shock-absorbing cavity (105) is provided on the inner side of the sole (2). A first connecting block (106) is provided on the inner side of the second shock-absorbing cavity (105). A second buffer spring (107) is provided on one side of the first connecting block (106). A second connecting block (108) is provided at one end of the second buffer spring (107). A third buffer spring (109) is provided on one side of the second connecting block (108). A third connecting block (110) is provided at one end of the third buffer spring (109).
2. A sports shoe with a shock-absorbing structure according to claim 1, characterized in that: The anti-slip component includes a first connecting layer (201) and an anti-slip layer (202). The first connecting layer (201) is disposed below the sole (2), and the anti-slip layer (202) is disposed below the first connecting layer (201).
3. A sports shoe with a shock-absorbing structure according to claim 2, characterized in that: The anti-slip component also includes a connecting groove (203) and a threaded tube (204). The connecting groove (203) is provided on the inner side of the first connecting layer (201), and the threaded tube (204) is provided on the inner side of the connecting groove (203).
4. A sports shoe with a shock-absorbing structure according to claim 3, characterized in that: The anti-slip assembly also includes anti-slip studs (205), and the inner side of the threaded tube (204) is provided with anti-slip studs (205), and the anti-slip studs and the threaded tube (204) are threadedly connected.
5. A sports shoe with a shock-absorbing structure according to claim 1, characterized in that: The protective component includes a second connecting layer (301), an installation rope (302), and an AFC layer (303). The second connecting layer (301) is provided on one side of the sole (2), the installation rope (302) is provided on the inner side of the second connecting layer (301), and the AFC layer (303) is provided on the inner side of the second connecting rope.
6. A sports shoe with a shock-absorbing structure according to claim 1, characterized in that: The functional components include a tongue (401) and a lace (402). The tongue (401) is provided on the inside of the shoe body (1), and the lace (402) is provided on the inside of the shoe body (1).
7. A sports shoe with a shock-absorbing structure according to claim 6, characterized in that: The functional components also include ventilation holes (403), and ventilation holes (403) are provided on one side of the shoe body (1), with multiple sets of ventilation holes (403).