Anti-puncture anti-skid shoe sole
By introducing a rubber layer, a steel sheet layer, and a nylon thread weave structure into the anti-slip sole, combined with the outsole design and midsole cushioning layer, the safety and comfort issues of puncture-resistant soles are solved, achieving higher puncture resistance and service life.
Patent Information
- Application Number
- CN202520612247.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-02
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2035-04-02
AI Technical Summary
Existing puncture-resistant and slip-resistant shoe soles suffer from reduced puncture resistance when the weave density is insufficient, reduced comfort when the weave density is high, and easy damage to the 3D mesh layer, resulting in reduced safety and service life.
The shoe features a puncture-resistant component combining rubber and steel layers, a midsole structure with interwoven nylon threads, a support platform and raised drainage channels on the bottom of the outsole, a cushioning and shock-absorbing layer inside the midsole, and Velcro fasteners connecting the insole.
It improves the puncture resistance of the sole, enhances structural stability and comfort, extends service life, improves slip resistance and stability, and reduces discomfort and risk of damage.
Smart Images

Figure CN223817049U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of anti-slip shoe sole technology, specifically to an anti-puncture anti-slip shoe sole. Background Technology
[0002] Puncture-resistant soles refer to soles that are specially designed or made of materials to resist puncture by sharp objects, thus providing foot safety protection. However, existing puncture-resistant and slip-resistant soles still have certain defects in use, such as:
[0003] For example, a novel puncture-resistant sole and puncture-resistant shoe with publication number CN216853954U, the sole body includes an anti-slip and wear-resistant layer and a 3D mesh layer arranged sequentially from bottom to top. The anti-slip and wear-resistant layer and the 3D mesh layer account for 30% and 70% of the total thickness of the sole body, respectively. By setting the 3D mesh layer, the puncture and cut resistance of the sole is increased, making the sole lightweight and stable.
[0004] However, the new puncture-resistant sole and puncture-resistant shoes still have the following drawbacks in actual use:
[0005] To enhance the puncture and cut resistance of the sole, a 3D mesh layer is used. However, in actual use, the 3D mesh layer needs to be woven relatively tightly to increase its puncture and cut resistance. If the weave is not tight enough, the overall puncture resistance will be reduced, thus reducing overall safety. On the other hand, a relatively tight weave will reduce the comfort of the sole, which may cause discomfort to the user. Furthermore, after long-term use, the 3D mesh layer may be damaged or cracked, thereby reducing its protective effect and significantly shortening its overall lifespan.
[0006] To address the aforementioned issues, there is an urgent need for innovative designs based on existing puncture-resistant and slip-resistant soles. Therefore, we proposed that puncture-resistant and slip-resistant soles can effectively solve these problems. Utility Model Content
[0007] The purpose of this invention is to provide a puncture-resistant and non-slip sole to address the problem mentioned in the background art: currently, the puncture and cut resistance of soles is increased through 3D mesh layers. However, in actual use, the 3D mesh layer needs to be woven relatively tightly to increase its puncture and cut resistance. If the weaving is not tight enough, the overall puncture resistance will be reduced, thus reducing overall safety. On the other hand, a relatively tight weave will reduce the comfort of the sole, which may cause discomfort to the user. Furthermore, after long-term use, the 3D mesh layer may be damaged or cracked, thereby reducing its protective effect and greatly shortening its overall lifespan.
[0008] To achieve the above objectives, this utility model provides the following technical solution: a puncture-resistant and non-slip shoe sole, including an outer sole;
[0009] The outsole is equipped with a puncture-resistant component, which includes a rubber layer installed inside the outsole. The rubber layer is made of rubber, which has good support performance and excellent wear resistance.
[0010] A steel sheet layer is attached to the upper surface of the rubber layer. The hardness of the steel sheet layer prevents the sole from being punctured. The midsole is connected to the steel sheet layer through a braided layer. The braided layer is formed by interlacing nylon threads, which connect the outsole and the midsole.
[0011] Preferably, the bottom of the outer sole is provided with a support platform, and the outer sole surface is provided with anti-slip grooves to improve the overall anti-slip performance.
[0012] Preferably, the bottom of the outsole is connected to a protrusion, the surface of the protrusion is connected to a wear-resistant sheet, multiple protrusions are provided, the connection between the protrusions forms a drainage groove, and the bottom of the outsole is connected to an anti-slip block. The drainage groove facilitates drainage operation, speeds up the water flow between the sole and the ground, reduces water retention, and improves grip.
[0013] Preferably, the insole is connected to the midsole via a connecting component, and the insole surface is provided with a second Velcro strap.
[0014] Preferably, the second hook and loop fastener is adapted to the first hook and loop fastener, and the first hook and loop fastener is installed inside the storage slot, which is formed on the surface of the insole.
[0015] Preferably, an auxiliary component is installed inside the midsole, the auxiliary component including a cushioning layer installed inside the midsole; the cushioning layer is made of EVA foam material, which has good shock absorption performance, can effectively reduce the impact on the feet, and provide a comfortable wearing experience.
[0016] Preferably, the surface of the buffer layer is provided with a shock-absorbing layer, which is made of gel material. Gel material has excellent shock absorption performance, and has a certain degree of softness and elasticity, which can not only adapt to the movement and deformation of the foot, but also provide a comfortable wearing experience.
[0017] Preferably, the upper surface of the shock-absorbing layer is covered with an odor-proof layer, and the upper surface of the odor-proof layer is provided with a breathable layer.
[0018] Compared with the prior art, the beneficial effects of this utility model are as follows: The puncture-resistant and non-slip outsole has a steel plate layer inside the outsole that increases the hardness and puncture resistance of the outsole, greatly improving overall safety. The woven layer is stitched to the midsole with nylon thread, and the high strength and flexibility of the nylon thread ensure a firm connection between the midsole and the outsole, effectively preventing cracking or detachment of the outsole during long-term use and extending the service life of the outsole. The specific details are as follows:
[0019] The steel sheet layer of the puncture-resistant component increases the hardness and puncture resistance of the sole, reducing the risk of injury caused by sharp objects puncturing the sole and greatly improving overall safety. The woven layer enhances the stability of the overall structure, reducing the possibility of the sole cracking or falling off during long-term use.
[0020] The support platform at the bottom of the outsole facilitates support and reduces the problem of reduced waterproof performance caused by the thinness of existing soles. In addition, the bumps on the bottom surface of the outsole reduce the problem of poor stability caused by the large sole angle due to the use of only the support platform.
[0021] The drainage grooves on the bottom of the outsole facilitate drainage, reducing the problem of reduced grip caused by water retention on the bottom of the shoe, thus greatly improving the overall anti-slip effect and significantly enhancing overall stability;
[0022] The second Velcro strap of the connecting component makes it easy to connect the insole to the first Velcro strap. The storage slot reduces the problem of reduced comfort caused by the thick connection between the second and first Velcro straps. It can effectively reduce the impact on the foot and improve the comfort of use.
[0023] The shock-absorbing layer of the auxiliary components is made of gel material, which has a certain degree of softness and elasticity. It not only provides a comfortable wearing experience, but also effectively reduces the impact of impact on joints and muscles, providing better cushioning and support. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0025] Figure 2 This is a schematic diagram of the bottom structure of this utility model;
[0026] Figure 3 This is a schematic diagram of the internal structure of the outer sole of this utility model;
[0027] Figure 4 This is a schematic diagram of the woven layer structure of this utility model;
[0028] Figure 5 This is a schematic diagram of the overall disassembled structure of this utility model;
[0029] Figure 6 This is a schematic diagram of the insole installation structure of this utility model;
[0030] Figure 7 This is a schematic diagram of the internal structure of the insole of this utility model.
[0031] In the diagram: 1. Outsole; 2. Support platform; 3. Anti-slip groove; 4. Protrusion; 5. Drainage groove; 6. Abrasion-resistant sheet; 7. Anti-slip block; 8. Rubber layer; 9. Steel sheet layer; 10. Braided layer; 11. Nylon thread; 12. Midsole; 13. Storage slot; 14. First Velcro strap; 15. Second Velcro strap; 16. Insole; 17. Cushioning layer; 18. Shock-absorbing layer; 19. Odor-resistant layer; 20. Breathable layer. Detailed Implementation
[0032] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model. Example
[0033] In this embodiment, to improve overall safety, a puncture-resistant component is used. The purpose is to mitigate the problem of insufficiently dense weave leading to reduced overall puncture resistance. Figures 3-5 The technical solution shown includes an outsole 1 with a puncture-resistant component installed inside. The puncture-resistant component includes a rubber layer 8 installed inside the outsole 1. The rubber layer 8 is made of rubber, which has good support performance and excellent wear resistance. A steel sheet layer 9 is connected to the upper surface of the rubber layer 8. The hardness of the steel sheet layer 9 prevents punctures to the sole. A midsole 12 is connected to the steel sheet layer 9 via a woven layer 10. The woven layer 10 is formed by interlacing nylon threads 11, which connect the outsole 1 and the midsole 12. The rubber layer 8 at the bottom of the outsole 1 is also made of rubber, which has excellent wear resistance and can be used for a long time on various surfaces without easily wearing out, greatly improving the overall service life. Furthermore, the rubber material has excellent grip, providing stable friction, enhancing walking stability, and reducing the risk of slipping. It also offers good support, minimizing discomfort caused by reduced comfort. The steel plate layer 9 inside the outsole 1 increases the sole's hardness and puncture resistance, effectively preventing sharp objects from piercing the sole and causing injury, thus greatly improving overall safety. The woven layer 10 is stitched together with the midsole 12 using nylon threads 11. The high strength and flexibility of the nylon threads 11 ensure a strong connection to the midsole 12, enhancing the overall structural stability and effectively preventing cracking or detachment of the sole during prolonged use, thus extending its lifespan. Example
[0034] In this embodiment, to improve overall slip resistance, the outsole 1 bottom structure is used. The purpose is to reduce the safety reduction caused by low slip resistance. Specifically, as follows... Figure 1 and Figure 2 As shown, the outsole 1 has a support platform 2 at its bottom, anti-slip grooves 3 on its surface, and protrusions 4 connected to the bottom of the outsole 1. Abrasion-resistant sheets 6 are attached to the surface of the protrusions 4. Multiple protrusions 4 are present, and drainage grooves 5 are formed at the connections between them. Anti-slip blocks 7 are also connected to the bottom of the outsole 1. The support platform 2 at the bottom of the outsole 1 allows for easy adjustment to the required height, ensuring the entire sole is supported and mitigating the reduced waterproofing caused by the thinness of existing soles. During use, the anti-slip grooves 3 on the bottom of the outsole 1 facilitate slip-resistant operation, and the protrusions 4 on the bottom surface of the outsole 1 not only facilitate the movement of the sole... The stable support reduces the problem of poor stability caused by the large sole angle due to the use of only the support platform 2. Moreover, the drainage groove 5 inside the protrusion 4 facilitates drainage, accelerates the water flow between the sole and the ground, reduces water retention, and improves grip, thus greatly improving the overall anti-slip effect. The wear-resistant plate 6 on the surface of the protrusion 4 not only greatly extends the service life of the protrusion 4, but also reduces the safety reduction caused by the slipping of the protrusion 4 during use. The anti-slip block 7 on the bottom of the outsole 1 has excellent grip and wear resistance, and can provide additional anti-slip effect on wet and slippery surfaces, thus greatly improving the overall stability. Example
[0035] In this embodiment, to improve overall comfort, a connecting component is used for connection. The purpose is to reduce the comfort reduction caused by unstable connection of the insole 16. Specifically, as follows... Figure 6 and Figure 7As shown, the insole 16 is connected to the midsole 12 via a connecting component. A second Velcro strap 15 is provided on the surface of the insole 16, which is compatible with a first Velcro strap 14. The first Velcro strap 14 is installed inside a storage slot 13 located on the surface of the midsole 12. An auxiliary component is installed inside the midsole 12, including a cushioning layer 17. The cushioning layer 17 is made of EVA foam, and a shock-absorbing layer 18 made of gel is provided on its surface. An odor-resistant layer 19 covers the upper surface of the shock-absorbing layer 18, and a breathable layer 20 is provided on the upper surface of the odor-resistant layer 19. The insole 16 on the midsole 12 can be easily connected to the first Velcro strap 14 inside the storage slot 13 via the second Velcro strap 15, making the insole 16 more stable. Furthermore, the storage slot 13 reduces the connection between the second Velcro strap 15 and the first Velcro strap 14. The thickness of the insole reduces comfort. The cushioning layer 17 inside the midsole 12 is made of EVA foam, which has excellent shock absorption properties, effectively reducing impact on the foot and providing a comfortable wearing experience. The shock-absorbing layer 18 on top of the cushioning layer 17 is made of gel, which has excellent shock absorption properties and a certain degree of softness and elasticity. It not only adapts to foot movement and deformation, providing a comfortable wearing experience, but also effectively reduces the impact on joints and muscles, providing better cushioning and support. The odor-resistant layer 19 effectively inhibits bacterial growth and reduces odor problems. The breathable layer 20 uses breathable materials on the surface of the insole 16 to increase ventilation and reduce foot moisture, improving comfort and hygiene. Content not described in detail in this specification is prior art known to those skilled in the art.
[0036] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A puncture-resistant, non-slip sole, comprising an outsole (1); Its features are, Also includes: The outsole (1) is equipped with a puncture-resistant component, which includes a rubber layer (8) installed inside the outsole (1); the rubber layer (8) is made of rubber, which has good support performance and excellent wear resistance. A steel sheet layer (9) is connected to the upper surface of the rubber layer (8). The hardness of the steel sheet layer (9) prevents the sole from being punctured. The midsole (12) is connected to the steel sheet layer (9) through a braided layer (10). The braided layer (10) is formed by interlacing nylon threads (11). The nylon threads (11) connect the outsole (1) and the midsole (12).
2. The puncture-resistant and non-slip shoe sole according to claim 1, characterized in that: The bottom of the outer bottom (1) is provided with a support platform (2), and the ground of the outer bottom (1) is provided with anti-slip grooves (3).
3. The puncture-resistant and non-slip shoe sole according to claim 1, characterized in that: The bottom of the outsole (1) is connected to a protrusion (4), and a wear-resistant sheet (6) is connected to the surface of the protrusion (4). Multiple protrusions (4) are provided, and a drainage groove (5) is formed at the connection between the protrusions (4) and the bottom of the outsole (1) is connected to an anti-slip block (7).
4. The puncture-resistant and non-slip shoe sole according to claim 1, characterized in that: The insole (16) is connected to the midsole (12) by a connecting component, and the insole (16) has a second Velcro strap (15) on the ground.
5. The puncture-resistant and non-slip shoe sole according to claim 4, characterized in that: The second Velcro (15) is adapted to the first Velcro (14), which is installed inside the storage slot (13) on the surface of the midsole (12).
6. The puncture-resistant and non-slip shoe sole according to claim 5, characterized in that: An auxiliary component is installed inside the midsole (12), the auxiliary component including a buffer layer (17) installed inside the midsole (12); the buffer layer (17) is made of EVA foam.
7. The puncture-resistant and slip-resistant shoe sole according to claim 6, characterized in that: The surface of the buffer layer (17) is provided with a shock-absorbing layer (18), which is made of gel material.
8. The puncture-resistant and slip-resistant shoe sole according to claim 7, characterized in that: The upper surface of the shock-absorbing layer (18) is covered with an odor-proof layer (19), and the upper surface of the odor-proof layer (19) is provided with a breathable layer (20).
Citation Information
Patent Citations
Novel anti-puncture sole and anti-puncture shoe
CN216853954U