A shoe sole structure for snow
Patent Information
- Application Number
- CN202522208000.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-20
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-10-20
AI Technical Summary
[0003]防滑的效果一般只能从材质上体现,但是通过简单的材质达到防滑效果还是不足,尤其在雪地或者地面潮湿处这种特殊情况下,只靠单一的材质还是容易导致打滑,尤其在雪地因踩踏后地面夯实,且地面因积雪挤压形成薄薄的冰层,以及鞋底因积雪融化的水,导致相互之间的摩擦力缩小且容易打滑,但是现有技术中为了雪地这种特殊情况行走,发明了钉鞋来增加防滑的效果,但是脱离雪地进入室内如大理石地面不仅又会导致穿着的不适,若是有积水因钉鞋无法有效抓地依旧容易打滑,因此本申请提出一种新的解决方案,通过鞋钉可调达到简单的切换适应不同场景
通过将此产品与鞋面缝合后即可使用,出行时将推动件推动,带动调节件转动,使得空腔与凸出部位置调换,让凸出部与鞋钉抵接,推动鞋钉下移穿出防滑件外,同时将推动件沿凸棱处挤压,使凸棱形变后嵌入到卡槽,然后推动件被凸棱封闭卡槽并限制,由此在雪地行走时鞋钉嵌入到雪地里提高抓地力,并且增大摩擦力达到防滑的效果,其次在正常室内或光滑地面行走时,为避免鞋钉划伤地面以及行走不适,可将推动件推动复位,使凸出部将吸附件推出,与地面贴合吸附达到增大摩擦力,避免打滑的情况出现,由此可以达到快速切换,且更好的适应不同场景的使用,提高实用性。
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Figure CN224776175U_ABST
Abstract
Description
Technical Field
[0001] This utility model discloses a walkie-talkie device, and in particular relates to a shoe sole structure for snow anti-slip. Background Technology
[0002] There are many types of materials used for shoe soles, which can be divided into two categories: natural soles and synthetic soles. Natural soles include natural leather, bamboo, wood, etc., while synthetic soles include environmentally friendly rubber, plastics, rubber-plastic composite materials, recycled leather, elastic cardboard, etc. The main function of anti-slip soles is to increase the friction between the shoe and the ground, reduce the risk of slipping and falling, and thus improve safety when walking or exercising. Anti-slip soles are generally made of rubber or polyurethane.
[0003] Anti-slip effects can generally only be achieved through materials, but simply using a single material is insufficient, especially in special conditions such as snow or wet ground. Relying on a single material can easily lead to slipping. In particular, on snow, the ground is compacted after being stepped on, and a thin layer of ice forms due to the pressure of accumulated snow. The water from melting snow on the soles of shoes also reduces the friction between these elements, making it easy to slip. Existing technology has invented spiked shoes to increase anti-slip effects for walking in special conditions like snow. However, when moving indoors to places like marble floors, this can lead to discomfort. If there is standing water, the spiked shoes cannot effectively grip the ground and are still prone to slipping. Therefore, this application proposes a new solution: adjustable spikes allow for easy switching to adapt to different scenarios. Utility Model Content
[0004] The purpose of this invention is to provide a snow-resistant anti-slip shoe sole structure to solve the above-mentioned problems.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a snow anti-slip shoe sole structure, comprising a sole, the sole including an upper, a midsole, and a lower sole, the upper, midsole, and lower sole being bonded together, the lower sole having a plurality of evenly distributed anti-slip patterns, the lower sole having an anti-slip component at the heel, the anti-slip component having a plurality of spikes for embedding in the snow, rubber adsorption components for adsorbing the ground between the spikes, the spikes and adsorption components being slidably connected to the anti-slip component, the midsole having an adjustment component rotatably connected to the anti-slip component, and an adjustment assembly for controlling the switching of the spikes and adsorption components between the midsole and the lower sole.
[0006] Preferably, the adjustment component includes a pusher connected to the adjustment member, the pusher extending outward from the midsole and the undersole, and the adjustment member having a plurality of protrusions corresponding to the number of shoe spikes, with cavities between the protrusions for accommodating the embedded adsorption member.
[0007] Preferably, the bottom is provided with a groove for accommodating the movement of the pusher, and the two ends of the groove are provided with elastic protrusions. The middle bottom is provided with a slot for accommodating the insertion of the pusher at the opposite position of the two protrusions at the ends of the groove.
[0008] Preferably, the end of the anti-slip component is made of a rigid material, and a spring is provided between the anti-slip component, the shoe nail, and the adjustment component.
[0009] Preferably, the adsorption element is a suction cup structure, and the shoe nail is arranged in an inclined outward expansion shape.
[0010] Preferably, the lower sole has an elastic block at the rear end of the heel for forward sliding and supporting outward expansion.
[0011] Compared with the prior art, the beneficial effects of this utility model are: This product can be used after being sewn to the shoe upper. When traveling, push the pusher to rotate the adjustment part, which swaps the positions of the cavity and the protrusion. This allows the protrusion to abut against the stud, pushing the stud down and out of the anti-slip part. At the same time, push the pusher along the protrusion, causing the protrusion to deform and embed into the slot. The pusher is then sealed and restricted by the protrusion. Thus, when walking on snow, the stud embeds into the snow to improve grip and increase friction for an anti-slip effect. Secondly, when walking indoors or on smooth surfaces, to avoid the stud scratching the ground and causing discomfort, push the pusher back to its original position, causing the protrusion to push out the adsorption part and adhere to the ground to increase friction and prevent slipping. This allows for quick switching and better adaptability to different scenarios, improving practicality. Attached Figure Description
[0012] Figure 1 A schematic diagram of the structure of a snow-resistant shoe sole. Figure 2 for Figure 1 A magnified view of a portion at point A; Figure 3 A schematic diagram of the internal structure of a snow-resistant shoe sole. Figure 1 , Figure 4 A schematic diagram of the internal structure of a snow-resistant shoe sole. Figure 2 ; Figure 5 This is a schematic diagram of the internal structure of an anti-slip component in a shoe sole for snow.
[0013] Reference numerals: 1. Top sole; 2. Midsole; 3. Bottom sole; 4. Anti-slip component; 5. Spike; 6. Adhesive component; 7. Adjustment component; 8. Pushing component; 9. Protrusion; 10. Elastic block; 11. Slide groove; 12. Rib; 13. Slot; 14. Spring. Detailed Implementation
[0014] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. In the description of the present utility model, it should be understood that the terms "upper," "lower," "front," "rear," "left," "right," "top," "bottom," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing the present utility model and simplifying the description. They do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present utility model.
[0015] A snow-resistant anti-slip shoe sole structure, such as Figures 1-5As shown, the shoe includes a sole, which comprises an upper 1, a midsole 2, and a lower 3. The upper 1, midsole 2, and lower 3 are bonded together. The lower 3 has several evenly distributed anti-slip patterns. An anti-slip element 4 is located at the heel of the lower 3. Several spikes 5 for embedding in snow are distributed on the anti-slip element 4. Rubber suction elements 6 for adhering to the ground are located between the spikes 5. Both the spikes 5 and the suction elements 6 are slidably connected to the anti-slip element 4. An adjusting element 7 is provided on the midsole 2, which is rotatably connected to the anti-slip element 4. An adjustment element 7 between the midsole 2 and the lower 3 is provided to control the switching of the spikes 5 and suction elements 6 by the adjusting element 7. In normal use, the rubber suction member 6 abuts against the protrusion 9 of the adjusting member 7 and is pushed out of the anti-slip member 4 by the protrusion 9, making the anti-slip member 4 contact the ground. At the same time, the suction member 6 adheres to the ground in a suction cup shape. When stepped on, the suction member 6 is squeezed, causing its interior to create negative pressure and adhere to the ground, increasing friction and enhancing the anti-slip effect, especially effective on smooth and wet surfaces. When walking on snowy ground, the adjusting member is activated. The adjusting member includes a pusher 8 connected to the adjusting member 7, which extends outward from the middle sole 2 and the lower sole 3. The adjusting member 7 is provided with several... Each protrusion 9 corresponds to a number of spikes 5. A cavity is provided between the protrusions 9 to accommodate the embedded suction element 6. By moving the pusher 8, the adjusting element 7 rotates, causing the protrusions 9 and the cavity to exchange positions. Simultaneously, the protrusions 9 move to contact the top of the spikes 5 and push the spikes 5 through the anti-slip element 4. In this state, when worn, the bottom of the spikes 5 contacts the snow and can embed into the ground and snow, increasing grip and reducing slippage. Compared to existing technologies that compress snow to form an ice layer, where the wet soles easily slip, this product can directly penetrate the compressed snow to form grip, reducing slippage. Reduced slippage and increased stability are achieved through adjustable components, allowing for quick adjustments and better adaptation to different scenarios. When walking on snow, the spikes 5 provide anti-slip protection. When indoors or on smooth surfaces, the suction cup 6 is activated to adhere to the ground, increasing friction and preventing the spikes 5 from failing to effectively create a coefficient of friction on smooth surfaces. The spikes 5 are suitable for complex outdoor surfaces such as snow, lawns, and mud, while the suction cup-shaped suction cup 6 is suitable for smooth and flat surfaces such as marble, tiles, and wet asphalt. Switching between these components increases versatility, making it more suitable for different scenarios and effectively preventing slippage.
[0016] The lower sole 3 is provided with a groove 11 to accommodate the movement of the pusher 8. Elastic protrusions 12 are provided at both ends of the groove 11. The midsole 2 is provided with a slot 13 at the opposite end of the protrusions 12 of the groove 11 to accommodate the insertion of the pusher 8. Simultaneously, the pusher 8 moves along the groove 11 and, upon reaching the end of the groove 11, is forcibly inserted into the slot 13 by pressing the elastic protrusions 12. After contact with external force, the elastic protrusions 12 reset, thus supporting the pusher 8 and preventing it from detaching from the slot 13. Furthermore, the elastic stress of the elastic protrusions 12 is greater than the weight of the pusher 8 and the elasticity of the sole, ensuring that excessive compression and deformation do not occur during wear, and preventing the pusher 8 from detaching from the slot 13. Additionally, pushers 8 are located on both sides of the lower sole 3, allowing both pushers 8 to be lifted simultaneously. The middle of the groove 11 has a... The opening of the pusher 8 is moved upward, so that the entire adjusting component 7 can be lifted by inserting it. Secondly, the opening is located in the middle. When the pusher 8 moves to the slots 13 on both sides, it is squeezed by the protrusions 12 and will not be inserted into the opening. This can lift the adjusting component 7 and separate it from the anti-slip component 4. This can also be switched to walking only by the anti-slip pattern on the sole. The lifting of the protrusion 9 by the adjusting component 7 cancels the pushing of the shoe spike 5 and the suction component 6. The end of the anti-slip component 4 is made of rubber bone and is in a hard state. There is a spring 14 between the anti-slip component 4, the shoe spike 5 and the adjusting component 7. The spring 14 on the suction component 6 and the shoe spike 5 pushes the two upward and inserts them into the anti-slip component 4, so that they will not contact the ground and will not affect walking. In addition, the upper sole 1 and the midsole 2 are made of materials with high support and pressure resistance, such as EVA, to ensure that the anti-slip block will not hurt the foot.
[0017] The suction cup 6 has a suction cup structure, and the spikes 5 are set in an angled outward expansion shape. When walking on snow, the spikes 5 extend at an angle and embed themselves into the ground, increasing friction through the angled position, making the grip more stable. The bottom 3 has an elastic block 10 at the rear of the heel for forward sliding and support expansion. The elastic block 10 is located at the heel. When the ground is slippery, the heel generally provides greater support and slides forward. Therefore, the expansion of the elastic block 10 can form a staggered step-like state, which provides a certain cushioning effect when slipping. In the case of slight slipping, it can provide support and cushioning, allowing the user to adjust and regain their footing.
[0018] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0019] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A snow-resistant anti-slip shoe sole structure, comprising a sole, the sole comprising an upper (1), a midsole (2), and a lower sole (3), the upper (1), midsole (2), and lower sole (3) being formed by bonding, the lower sole (3) having a plurality of evenly distributed anti-slip patterns, characterized in that: The undersole (3) is provided with an anti-slip component (4) at the heel. Several shoe spikes (5) for embedding in the snow are distributed on the anti-slip component (4). Rubber adsorption components (6) for adsorbing the ground are provided between the shoe spikes (5). Both the shoe spikes (5) and the adsorption components (6) are slidably connected to the anti-slip component (4). The midsole (2) is provided with an adjustment component (7) that is rotatably connected to the anti-slip component (4). An adjustment component for controlling the switching of the shoe spikes (5) and the adsorption components (6) by the adjustment component (7) is provided between the midsole (2) and the undersole (3).
2. The snow-resistant anti-slip shoe sole structure according to claim 1, characterized in that: The adjustment component includes a pusher (8) connected to the adjustment member (7). The pusher (8) extends outward from the midsole (2) and the undersole (3). The adjustment member (7) has a plurality of protrusions (9) corresponding to the number of shoe spikes (5). A cavity is provided between the protrusions (9) to accommodate the embedded adsorption member (6).
3. The snow-resistant anti-slip shoe sole structure according to claim 2, characterized in that: The bottom (3) is provided with a groove (11) for accommodating the movement of the pusher (8), and elastic protrusions (12) are provided at both ends of the groove (11). The middle bottom (2) is provided with a slot (13) for accommodating the insertion of the pusher (8) at the opposite position of the protrusions (12) at both ends of the groove (11).
4. The snow-resistant anti-slip shoe sole structure according to claim 1, characterized in that: The end of the anti-slip component (4) is made of glue and is in a hard state. A spring (14) is provided between the anti-slip component (4), the shoe nail (5), and the adjusting component (7).
5. The snow-resistant anti-slip shoe sole structure according to claim 4, characterized in that: The adsorption element (6) has a suction cup structure, and the shoe nail (5) is arranged in an inclined outward expansion shape.
6. The snow-resistant anti-slip shoe sole structure according to claim 1, characterized in that: The lower sole (3) is provided with an elastic block (10) at the rear end of the heel for forward sliding and supporting outward expansion.