Basketball shoes capable of improving ground pedaling explosive power
By using a combination of low-density and high-density foam midsole and anti-torsion plate structure in basketball shoes, the problem of insufficient absorption and cushioning performance of the push-off force during the push-off movement is solved, achieving high comfort and powerful push-off explosive effect.
Patent Information
- Application Number
- CN202520011439.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-03
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2035-01-03
AI Technical Summary
Existing basketball shoes have problems such as low reaction force and severe energy loss when pushing off the ground, due to the soft foam midsole absorbing the force of the push-off. Alternatively, when using hard foam materials, the cushioning performance is poor and the wearing comfort is low.
It adopts a combination of low-density and high-density foam midsole, combined with anti-torsion plate and concave plate structure. The deformation of the concave plate generates elastic propulsion. Combined with anti-stepping layer, heel stabilizer plate, anti-torsion plate and other designs, it improves the explosive power and comfort of pushing off the ground.
While maintaining a soft midsole, it provides powerful acceleration and high comfort, reduces power loss during push-off, and enhances explosive power.
Smart Images

Figure CN223503780U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of footwear technology, specifically to a basketball shoe that improves the explosive power of pushing off the ground. Background Technology
[0002] Shoes are footwear worn on the feet to protect them and facilitate walking. Traditional shoes are made of materials such as leather, cloth, and rubber. Modern shoes mostly consist of a foam midsole and an upper sewn onto the midsole to wrap around the foot. Basketball shoes are a type of shoe specifically designed for basketball. They feature a highly cushioned midsole, a relatively thick outsole, and a supportive upper to accommodate the repetitive and varied movement trajectories and frequent push-offs from different directions in basketball. They also offer good protection, greatly reducing the probability of foot injuries for athletes during basketball.
[0003] While the aforementioned existing technologies can solve the corresponding technical problems, they still have certain drawbacks: When wearing existing basketball shoes, if higher cushioning performance is required, a softer foam midsole is needed. However, when performing push-off movements while wearing basketball shoes with a softer foam midsole, the push-off force generated by the foot is largely absorbed by the soft foam midsole, resulting in lower reaction force and a loss of power, leading to poor explosive acceleration. On the other hand, while using a midsole made of harder foam material can ensure the acceleration effect, its cushioning performance is poor and the wearing comfort is low. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings and deficiencies of existing technologies by providing a basketball shoe that offers enhanced comfort, improved explosive power, and better ground-pushing performance.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: a basketball shoe that improves the explosive power of pushing off the ground, comprising an upper and a sole sewn and bonded to the underside of the upper. The upper also has an integrally formed entry at the heel position of the foot. The sole includes a midsole and an outsole disposed on the bottom surface of the midsole. An anti-torsion plate is also fixed between the midsole and the outsole. The anti-torsion plate includes an anti-torsion plate body and a concave plate integrally formed on the anti-torsion plate body at the forefoot position. Stepping on the concave plate deforms it and generates elasticity, which provides propulsion.
[0006] A further improvement is that the upper body has an anti-stepping layer connected by heat fusion at the edge of the forefoot, and the upper body has a heel stabilizer at the heel.
[0007] A further improvement is that the upper body is provided with an upper pull ring at the heel position.
[0008] A further improvement is that a shoelace extending towards the forefoot is threaded through the opening.
[0009] A further improvement is that a mesh-like side covering is sewn and fixed to the side of the shoe upper where it is located on the foot.
[0010] A further improvement is that the middle section of the anti-torsion plate, located at the arch of the foot, has an upwardly protruding arch support plate integrally formed, and the middle section of the anti-torsion plate, located at the arch of the foot, also has an upwardly folded arch side protection plate integrally formed.
[0011] A further improvement is that the anti-torsion plate is integrally formed with a metatarsal extension plate at the position of the metatarsal bone on the forefoot.
[0012] A further improvement is that a carburized plate is provided on the bottom surface of the middle section of the anti-torsion plate, and the carburized plate is provided with reinforcing ribs.
[0013] A further improvement is that the midsole includes a low-density foam midsole located in the forefoot area and a high-density foam midsole located in the heel area.
[0014] A further improvement is that the midsole has several protrusions at the forefoot position, and the anti-torsion plate has several through holes at the forefoot position that cooperate with the protrusions.
[0015] After adopting the above technical solution, the beneficial effects of this utility model are as follows: When stepping on the ground, the stepping force can be absorbed by the concave plate, which will deform and generate elasticity. After stepping, the elasticity will push the foot back to improve the stepping explosive effect. Thus, it can provide strong stepping acceleration performance while keeping the midsole relatively soft, with high wearing comfort and better stepping explosive effect. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a three-dimensional structural diagram of the basketball shoe of this utility model;
[0018] Figure 2 This is a structural schematic diagram of the basketball shoe of this utility model viewed from below;
[0019] Figure 3 This is a schematic diagram of the structure of the basketball shoe of this utility model, viewed from below after the outsole has been removed.
[0020] Figure 4 This is a structural schematic diagram of the front view cross-section of the anti-torsion plate of this utility model. Detailed Implementation
[0021] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments.
[0022] See Figure 1-4 As shown, the technical solution adopted in this specific embodiment is: a basketball shoe that improves the explosive power of pushing off the ground, including an upper body 1 and a sole 2 sewn and bonded to the underside of the upper body 1. The upper body 1 also has an integrally formed inlet 11 at the heel position. The sole 2 includes a midsole 21 and an outsole 22 disposed on the bottom surface of the midsole 21. The midsole 21 includes a low-density foam midsole 212 located at the forefoot position and a high-density foam midsole 211 located at the heel position. An anti-torsion plate 23 is also fixed between the midsole 21 and the outsole 22. The anti-torsion plate 23 includes an anti-torsion plate body 31 and a concave plate 37 integrally formed on the anti-torsion plate body 31 at the forefoot position. Stepping on the concave plate 37 deforms it to generate elasticity, and the elasticity of the concave plate 37 provides a boost. In use, the foot is transmitted between the sole 2 and the upper body 1 through the inlet 11, and then... The upper 1 wraps around the foot, making the foot and basketball shoe a unified whole. After the foot is worn for a stepping motion, the low-density foam midsole 212 provides good cushioning, while the high-density foam midsole 211 provides cushioning and maintains landing stability. When pushing off the ground to accelerate, the stepping force is applied to the forefoot and is absorbed by the concave plate 37 and the low-density foam midsole 212. Because the concave plate 37 is concave, the low-density foam midsole 212 in this position is thinner and easier to compact, thus preventing a large amount of energy loss. When the concave plate 37 is stepped on and squeezed, it will have a tendency to straighten, thus deforming and generating elasticity. After the stepping is finished, its elasticity pushes the foot back to improve the stepping and explosive effect. Thus, it can provide strong stepping and acceleration performance while keeping the midsole 21 relatively soft, resulting in high wearing comfort and better stepping and explosive effect.
[0023] The upper body 1 has an anti-stepping layer 3 connected by heat fusion at the edge of the forefoot. The upper body 1 has a heel stabilizer 5 at the heel. The anti-stepping layer 3 helps to improve the support and rigidity of the forefoot and prevent serious damage after being stepped on. The heel stabilizer 5 can improve the stability of the heel, so that the heel is not easily twisted or deformed when running and jumping, and the stability is higher.
[0024] The upper body 1 is provided with an upper pull ring 6 at the heel position, which makes it easier to put on the shoes by using the upper pull ring 6;
[0025] The shoelace 7 extending towards the forefoot is threaded through the opening 11, which is beneficial for adjusting the covering effect of the upper body 1 through the shoelace 7, thereby making the tightness and wrapping adjustable.
[0026] The upper body 1 has a mesh-like side covering 4 sewn and fixed on the side of the foot, which helps to reinforce the side of the upper body 1, making the upper body 1 more resistant to lateral forces, while maintaining the breathability of the upper body 1 through its mesh-like structure.
[0027] The anti-torsion plate 31 has an integrally formed arch support plate 38 at the arch of the foot in the middle section, and an integrally formed arch side protection plate 33 at the arch of the foot in the middle section. This helps to support the arch and prevent high arch users from experiencing rapid foot fatigue and soreness. At the same time, the lateral arch side protection plate 33 protects the side of the arch, thus providing sufficient stability to support the arch during lateral movement and further preventing the arch from twisting and causing sprains during lateral movement.
[0028] The anti-torsion plate 31 is integrally formed with a metatarsal extension plate 34 at the position of the metatarsal bone on the forefoot. This is beneficial for absorbing the force exerted by the metatarsal bone during stepping, thereby increasing the deformation range of the concave plate 37 and providing higher propulsive elasticity.
[0029] The bottom surface of the middle section of the anti-torsion plate 31 is provided with a carburized plate 32, and the carburized plate 32 is provided with reinforcing ribs 36, which helps to improve the torsional strength of the middle section of the anti-torsion plate 31 and make it more stable in use.
[0030] The midsole 21 has several protrusions at the forefoot position, and the anti-torsion plate 31 has several through holes 35 at the forefoot position that cooperate with the protrusions, which helps to make the connection between the midsole 21 and the anti-torsion plate 31 more firm and stable.
[0031] The working principle of this invention is as follows: When in use, the foot is inserted through the inlet 11 between the sole 2 and the upper 1. The upper 1 then covers the foot, forming a unified whole with the basketball shoe. After pedaling, the low-density foam midsole 212 provides good cushioning, while the high-density foam midsole 211 provides cushioning while maintaining stability upon landing. During acceleration, the pedaling force is applied to the forefoot and then absorbed by the concave plate 37 and the low-density foam midsole. The bottom 212 absorbs energy simultaneously. Because the concave plate 37 is recessed downwards, the low-density foam midsole 212 at this location is thinner and easier to compact, thus preventing a large amount of energy loss. When the concave plate 37 is stepped on and squeezed, it will have a tendency to straighten, thereby deforming and generating elasticity. After stepping, its elasticity pushes the foot back to improve the explosive effect of pushing off the ground. Thus, it can provide strong acceleration performance while keeping the midsole 21 relatively soft, resulting in high wearing comfort and better explosive effect of pushing off the ground.
[0032] This utility model aims to protect the structure of the product. The model numbers of the components are not the focus of this utility model's protection, as they are common technology. Any component on the market that can achieve the functions described above can be used as an option. Therefore, the model numbers and other parameters of the components are not described in detail in this utility model. The contribution of this utility model lies in the scientific combination of the various components.
[0033] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions provided are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection of this utility model as defined by the appended claims and their equivalents. Any aspects of this utility model not detailed herein are well-known to those skilled in the art.
Claims
1. A basketball shoe for improving explosive power during push-off, comprising an upper (1) and a sole (2) sewn and bonded to the underside of the upper (1), wherein the upper (1) has an integrally formed entry (11) at the heel position of the foot, and the sole (2) comprises a midsole (21) and an outsole (22) disposed on the bottom surface of the midsole (21), wherein an anti-torsion plate (23) is fixedly disposed between the midsole (21) and the outsole (22), characterized in that: The anti-torsion plate (23) includes an anti-torsion plate body (31) and a concave plate (37) integrally formed on the anti-torsion plate body (31) at the forefoot position. Stepping on the concave plate (37) deforms it and generates elastic force, which provides propulsion.
2. The basketball shoe for improving explosive power during push-off as described in claim 1, characterized in that: The upper body (1) has an anti-stepping layer (3) connected by heat fusion at the edge of the forefoot, and the upper body (1) has a heel stabilizer (5) at the heel.
3. The basketball shoe for improving explosive power upon pushing off the ground according to claim 1, characterized in that: The upper body (1) is provided with an upper pull ring (6) at the heel position.
4. The basketball shoe for improving explosive power during push-off as described in claim 1, characterized in that: The opening (11) is threaded with a shoelace (7) extending toward the forefoot.
5. The basketball shoe for improving explosive power during push-off as described in claim 1, characterized in that: The upper body (1) has a mesh-like side covering piece (4) sewn and fixed on the side of the foot.
6. The basketball shoe for improving explosive power during push-off as described in claim 1, characterized in that: The anti-torsion plate (31) has an upwardly protruding arch support plate (38) integrally formed in the middle section of the foot arch position, and an upwardly turned arch side protection plate (33) integrally formed in the middle section of the anti-torsion plate (31) at the foot arch position.
7. The basketball shoe for improving explosive power during push-off as described in claim 1, characterized in that: The anti-torsion plate (31) is integrally formed with a metatarsal extension plate (34) at the position of the metatarsal bone of the forefoot.
8. A basketball shoe for improving explosive power during push-off as described in claim 1, characterized in that: The bottom surface of the middle section of the anti-torsion plate (31) is provided with a carburized plate (32), and the carburized plate (32) is provided with reinforcing ribs (36).
9. A basketball shoe for improving explosive power during push-off as described in claim 1, characterized in that: The midsole (21) includes a low-density foam midsole (212) located in the forefoot and a high-density foam midsole (211) located in the heel.
10. A basketball shoe for improving explosive power during push-off as described in claim 1 or 9, characterized in that: The midsole (21) has several protrusions at the forefoot position, and the anti-torsion plate (31) has several through holes (35) that cooperate with the protrusions at the forefoot position.