Anti-splashing sole structure

By combining linear anti-slip protrusions with drainage channels in the sole design, the problem of water splashing when stepping on puddles in existing anti-splash shoes is solved, achieving better anti-slip and protective effects and extending the lifespan of the shoes.

CN223640236UActive Publication Date: 2025-12-09GUANGZHOU ZHENGXIN RUBBER & PLASTIC
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Patent Information

Application Number
CN202423122021.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2025-12-09
Estimated Expiration
2034-12-17

AI Technical Summary

Technical Problem

Existing splashproof shoes do not effectively address the risk of water splashing out quickly from the sides or bottom of the sole when people step into puddles, causing the shoes to get dirty.

Method used

Design a splash-proof sole structure that combines linear anti-slip protrusions with drainage channels to reduce the contact area between the shoe and accumulated water, and quickly drain the water through the drainage channels to prevent splashing.

Benefits of technology

It effectively reduces the chance of water splashing, improves the anti-slip effect and lifespan of the shoes, and enhances the protective performance of the shoes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-splashing sole structure, which comprises a drainage sole and a shock absorption sole, the drainage sole comprises a sole main body, the sole main body is provided with a plurality of anti-skidding lines which are transversely arranged, the plurality of anti-skidding lines are arranged in an array along the extension direction of the sole main body, and drainage grooves are formed among the anti-skidding lines; the anti-skid lines at least comprise a plurality of anti-skid bosses arranged in an array mode, and the anti-skid bosses are linear and extend in the shape of waves or broken lines. The width of the drainage groove is larger than that of the anti-skid boss, so that the area of the drainage groove is larger than that of the anti-skid boss. According to the utility model, the linear anti-skidding bosses are arranged, and the drainage grooves with the area larger than that of the anti-skidding bosses are formed among the anti-skidding bosses, so that when a shoe steps on accumulated water, the contact area between the shoe and the accumulated water is reduced, the pressure on the accumulated water is further reduced, and the splashing effect of the accumulated water is reduced; meanwhile, the drainage groove also enlarges an outlet for draining accumulated water from the sole, so that the accumulated water is further prevented from splashing.
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Description

Technical Field

[0001] This utility model belongs to the field of shoe soles, specifically relating to a splash-proof shoe sole structure. Background Technology

[0002] In daily life, when people walk through puddles, water can easily splash and soil their shoes. To avoid this, some manufacturers have designed splash-proof shoes. However, most existing splash-proof shoes only prevent water from splashing up when the soles come into contact with and drag on the ground while walking. They ignore the problem of water splashing out rapidly from around the edges or bottom of the soles when people step into puddles, so the risk of splashing water soiling the shoes still exists.

[0003] In existing technologies, such as patent document CN221104910U, a splash-proof shoe is disclosed. This shoe uses a first waterproof layer at the toe and a second waterproof layer at the heel to prevent water absorbed by the sole from splashing onto the upper, heel, or trouser legs when people walk through puddles. However, this shoe does not adequately consider the scenario of people walking through puddles, where water can easily spray out rapidly from the perimeter or bottom of the sole, leaving the shoe still at risk of being soiled by splashed water. Summary of the Invention

[0004] To address the problems in existing technologies, this utility model proposes a splash-proof shoe sole structure. By setting linear anti-slip protrusions, drainage grooves with an area larger than the anti-slip protrusions are formed between the anti-slip protrusions. When the shoe is stepped on in puddles, the contact area between the shoe and the puddles is reduced, thereby reducing the pressure on the puddles and reducing the splashing effect. At the same time, the drainage grooves also increase the outlet of the puddles from the sole, further preventing water splashing.

[0005] This invention is implemented as follows: A splash-proof shoe sole structure includes a drainage sole adapted to the human foot, and a shock-absorbing sole adapted to the drainage sole on top of the drainage sole. The top of the drainage sole is connected to the bottom of the shock-absorbing sole. The drainage sole includes a sole body with multiple raised anti-slip treads on it. The anti-slip treads are arranged laterally and arrayed along the extension direction of the sole body, forming drainage grooves between them. The drainage grooves extend laterally through the sole body. The anti-slip treads increase the roughness of the sole body, thereby increasing the coefficient of friction between the sole body and the ground. When the user walks, runs, or performs other activities, the sole can grip the ground more firmly, reducing the possibility of slipping and improving the anti-slip effect of the shoe. The drainage grooves extending laterally through the sole body can quickly guide and drain water from the sole, preventing water from splashing when the shoe is stepped on.

[0006] The anti-slip texture includes at least a plurality of arrayed anti-slip protrusions, which are linear and extend in a wavy or zigzag shape. The wavy or zigzag anti-slip protrusions increase the length of the contact edge between the anti-slip protrusion and the ground while keeping the length of the anti-slip protrusion constant. This allows these edges to effectively embed into the tiny uneven surfaces on the ground when subjected to pressure, thereby significantly improving friction and enhancing the anti-slip effect of the shoes.

[0007] The width of the drainage groove is greater than the width of the anti-slip protrusion, making the area of ​​the drainage groove larger than the area of ​​the anti-slip protrusion. When shoes step on puddles, the contact area between the shoes and the puddles is reduced, thereby reducing the pressure on the puddles and reducing the splashing effect of the puddles.

[0008] Preferably, the anti-slip protrusion includes a plurality of first protrusions and second protrusions. The first protrusions are V-shaped, and the second protrusions are inverted V-shaped, with the first and second protrusions arranged adjacent to each other. One end of the V-shaped first protrusion is sharper, making it easier to embed into tiny uneven surfaces on the ground, thus improving the anti-slip effect of the first protrusion. Similarly, the inverted V-shaped second protrusion improves the anti-slip effect of the second protrusion. When the V-shaped first protrusion and the inverted V-shaped second protrusion are arranged adjacent to each other, the first and second protrusions form a complementary structure, further improving the anti-slip effect of both protrusions.

[0009] Specifically, the first protrusion includes a first long side and a first short side, with a first groove formed between the first long side and the first short side; the second protrusion includes a second long side and a second short side, with a second groove formed between the second long side and the second short side; the first groove and the second groove are respectively connected to adjacent drainage channels. Through the first groove and the second groove, the volume of the drainage channel is increased, further reducing the area of ​​the anti-slip protrusion, reducing the pressure on the accumulated water, and thus reducing the splashing effect of the accumulated water.

[0010] Specifically, a first connecting groove is provided between the first protrusion and the second protrusion, connecting adjacent drainage grooves. This first connecting groove allows multiple drainage grooves to communicate with each other. When shoes step on puddles, not all of the shoes are necessarily in the water. When only part of the shoes are in the water, the first connecting groove connects the drainage grooves with and without water, providing an additional pathway for water to drain from the sole. This further reduces the chance of splashing during drainage and improves the splash-proof effect.

[0011] Specifically, the first and second protrusions form a protrusion group, and the anti-slip texture is formed by an array of multiple protrusion groups; a second connecting groove is provided between the protrusion groups, and the second connecting groove connects to adjacent drainage grooves. The second connecting groove further provides an additional channel for water to drain from the sole, further reducing the probability of splashing when water is drained and improving the anti-splash effect.

[0012] Preferably, the toe of the sole body extends outward to form a protective section. When the drainage sole is connected to the shock-absorbing sole, the protective section folds upward and connects to the periphery of the shock-absorbing sole. When a person stops walking, the shock-absorbing sole tends to move forward due to inertia. At this time, there is a relative movement tendency between the shock-absorbing sole and the drainage sole, which will generate tearing force at the connection between the drainage sole and the shock-absorbing sole at the toe. After prolonged use, there is a risk of cracking at the connection between the drainage sole and the shock-absorbing sole at the toe. The upward folding of the protective section can reduce the risk of the shock-absorbing sole cracking with the drainage sole due to inertia, thus improving the service life of the shoe.

[0013] Preferably, the height of the anti-slip protrusion is equal to the thickness of the sole body. This prevents the sole body from being too thin. Since only the anti-slip protrusion contacts the ground in the drainage sole, and the area of ​​the anti-slip protrusion on the sole body is small, the pressure exerted by the anti-slip protrusion on the sole body is relatively high, which can easily lead to damage to the sole body. When the height of the anti-slip protrusion is equal to the thickness of the sole body, the sole body is strengthened, improving its service life.

[0014] Preferably, the sole body is also provided with a display section, in which shoe information is displayed in text form, making it convenient for consumers to view shoe information and choose suitable shoes, thus improving the consumer experience.

[0015] Preferably, the drainage sole is made of wear-resistant material, which makes the drainage sole less prone to wear and thinning due to daily wear and friction, thereby improving the service life of the drainage sole; the shock-absorbing sole is made of flexible material, which gives the shock-absorbing sole good elasticity and cushioning performance, and can absorb the impact and vibration generated by the ground when walking, thereby reducing the impact of the ground on the feet and improving the comfort of the shoes.

[0016] Preferably, the area of ​​the drainage groove is greater than 2 / 3 of the area of ​​the main body of the sole, which further reduces the contact area between the shoe and the water, thereby reducing the pressure on the water and improving the anti-splash effect of the drainage sole.

[0017] The beneficial effects of this utility model are:

[0018] This invention proposes a splash-proof shoe sole structure. By setting linear anti-slip protrusions, a drainage groove with an area larger than the anti-slip protrusions is formed between the anti-slip protrusions. When the shoe is stepped on in water, the contact area between the shoe and the water is reduced, thereby reducing the pressure on the water and reducing the splashing effect. At the same time, the drainage groove also increases the outlet of water from the sole, further preventing water splashing. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the overall structure of the shoe sole of this utility model;

[0020] Figure 2 This is a schematic diagram of the drainage sole structure of the shoe sole of this utility model;

[0021] Figure 3 This is a schematic diagram of the boss assembly of the sole structure of this utility model.

[0022] Figure label:

[0023] 1. Drainage sole; 2. Shock-absorbing sole; 11. Sole body; 12. Anti-slip tread; 13. First boss; 14. Second boss; 15. Boss group; 16. Drainage channel; 17. Protective part; 18. Display part; 121. Second connecting channel; 131. First long side; 132. First short side; 133. First groove opening; 141. Second long side; 142. Second short side; 143. Second groove opening; 151. First connecting channel. Detailed Implementation

[0024] 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 a part of the embodiments of the present utility model, and not all of them. 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.

[0025] like Figures 1-3 As shown, a splash-proof shoe sole structure includes a drainage sole 1 adapted to fit the human foot, and a shock-absorbing sole 2 adapted to fit the drainage sole 1 on top of the drainage sole 1. The top of the drainage sole 1 is connected to the bottom of the shock-absorbing sole 2.

[0026] In this embodiment, the drainage sole 1 is made of wear-resistant material, which makes the drainage sole 1 less prone to wear and thinning due to daily wear and friction, thereby improving the service life of the drainage sole 1; the shock-absorbing sole 2 is made of flexible material, which gives the shock-absorbing sole 2 good elasticity and cushioning performance, and can absorb the impact and vibration generated by the ground when walking, thereby reducing the impact of the ground on the feet and improving the comfort of the shoes.

[0027] The drainage sole 1 includes a sole body 11, on which multiple raised anti-slip treads 12 are provided. These anti-slip treads 12 are arranged laterally and arrayed along the extending direction of the sole body 11, forming drainage grooves 16 between them. The drainage grooves 16 extend laterally through the sole body 11. The anti-slip treads 12 increase the roughness of the sole body 11, thereby increasing the coefficient of friction between the sole body 11 and the ground. When the user walks, runs, or engages in other activities, the sole can grip the ground more firmly, reducing the possibility of slipping and improving the shoe's anti-slip effect. The drainage grooves 16 extending laterally through the sole body 11 can quickly guide and drain accumulated water from the sole, preventing water splashing when the shoe is stepped on.

[0028] In this embodiment, the toe of the sole body 11 extends outward to form a protective part 17. When the drainage sole 1 is connected to the shock-absorbing sole 2, the protective part 17 folds upward and connects with the periphery of the shock-absorbing sole 2. When people stop walking, the shock-absorbing sole 2 tends to move forward due to inertia. At this time, there is a relative movement tendency between the shock-absorbing sole 2 and the drainage sole 1, which will generate tearing force at the connection between the drainage sole 1 and the shock-absorbing sole 2 at the toe. After long-term use, there is a risk of cracking at the connection between the drainage sole 1 and the shock-absorbing sole 2 at the toe. The upward folding of the protective part 17 can reduce the risk of the shock-absorbing sole 2 cracking with the drainage sole 1 due to inertia, thereby improving the service life of the shoe.

[0029] The anti-slip texture 12 includes at least a plurality of arrayed anti-slip protrusions, which are linear and extend in a wavy or zigzag shape. The wavy or zigzag anti-slip protrusions increase the length of the contact edge between the anti-slip protrusion and the ground while keeping the length of the anti-slip protrusion constant. This allows these edges to effectively embed into the tiny uneven surfaces on the ground when subjected to pressure, thereby significantly improving friction and enhancing the anti-slip effect of the shoes.

[0030] In this embodiment, the anti-slip protrusions include multiple first protrusions 13 and second protrusions 14. The first protrusions 13 are V-shaped, and the second protrusions 14 are inverted V-shaped, with the first protrusions 13 and second protrusions 14 arranged adjacent to each other. One end of the V-shaped first protrusion 13 is relatively sharp, which can more easily embed into the tiny uneven surfaces on the ground, improving the anti-slip effect of the first protrusion 13. Similarly, the inverted V-shaped second protrusion 14 improves the anti-slip effect of the second protrusion 14. When the V-shaped first protrusion 13 and the inverted V-shaped second protrusion 14 are arranged adjacent to each other, the first protrusions 13 and the second protrusions 14 form a complementary structure, further improving the anti-slip effect of the first protrusions 13 and the second protrusion 14.

[0031] Specifically, the first boss 13 includes a first long side 131 and a first short side 132, with a first groove 133 formed between the first long side 131 and the first short side 132; the second boss 14 includes a second long side 141 and a second short side 142, with a second groove 143 formed between the second long side 141 and the second short side 142; the first groove 133 and the second groove 143 are respectively connected to adjacent drainage channels 16. Through the first groove 133 and the second groove 143, the volume of the drainage channel 16 is increased, further reducing the area of ​​the anti-slip boss, reducing the pressure on the accumulated water, and thus reducing the splashing effect of the accumulated water.

[0032] Specifically, a first connecting groove 151 is provided between the first protrusion 13 and the second protrusion 14, and the first connecting groove 151 connects the adjacent drainage grooves 16. The first connecting groove 151 connects the multiple drainage grooves 16 to each other. When shoes step on puddles, not all of the shoes are necessarily in the puddles. When only part of the shoes are in the puddles, the first connecting groove 151 connects the drainage grooves 16 with water and the drainage grooves 16 without water, providing an additional way for the water to drain from the sole of the shoe, further reducing the chance of splashing when the water drains and improving the anti-splash effect.

[0033] Specifically, the first protrusion 13 and the second protrusion 14 form a protrusion group 15, and the anti-slip texture 12 is formed by an array of multiple protrusion groups 15; a second connecting groove 121 is provided between the protrusion groups 15, and the second connecting groove 121 connects to the adjacent drainage groove 16. The second connecting groove 121 further provides an additional channel for water to drain from the sole, further reducing the probability of splashing when water is drained and improving the anti-splash effect.

[0034] In this embodiment, the height of the anti-slip protrusion is equal to the thickness of the sole body 11. This prevents the sole body 11 from being too thin. Since only the anti-slip protrusion of the drainage sole 1 contacts the ground, and the area of ​​the anti-slip protrusion on the sole body 11 is small, the pressure exerted by the anti-slip protrusion on the sole body 11 is relatively large, which can easily lead to damage to the sole body 11. When the height of the anti-slip protrusion is equal to the thickness of the sole body 11, the sole body 11 is strengthened, thus improving its service life.

[0035] The width of the drainage groove 16 is greater than the width of the anti-slip protrusion, making the area of ​​the drainage groove 16 larger than the area of ​​the anti-slip protrusion. When shoes step on the water, the contact area between the shoes and the water is reduced, thereby reducing the pressure on the water and reducing the splashing effect of the water.

[0036] In this embodiment, the area of ​​the drainage groove 16 is greater than 2 / 3 of the area of ​​the sole body 11, which further reduces the contact area between the shoe and the water, thereby reducing the pressure on the water and improving the anti-splash effect of the drainage sole 1.

[0037] In this embodiment, the sole body 11 is also provided with a display section 18, in which the shoe information is displayed in text form, making it convenient for consumers to view the shoe information and choose suitable shoes, thus improving the consumer experience.

[0038] Based on the disclosure and teachings of the above specification, those skilled in the art can make changes and modifications to the above embodiments. Therefore, this utility model is not limited to the specific embodiments disclosed and described above, and some modifications and changes to the utility model should also fall within the protection scope of the claims of this utility model. Furthermore, although some specific terms are used in this specification, these terms are only for convenience of explanation and do not constitute any limitation on this utility model.

Claims

1. A splash-proof sole structure, comprising a drainage sole adapted to a human foot, a shock-absorbing sole adapted to the drainage sole being disposed above the drainage sole, the top of the drainage sole being connected to the bottom of the shock-absorbing sole, characterized in that, The drainage sole includes a sole body with multiple raised anti-slip treads on it. The anti-slip treads are arranged laterally and arrayed along the extension direction of the sole body, forming drainage grooves between them. The drainage grooves extend laterally through the sole body. The anti-slip texture includes at least a plurality of anti-slip protrusions arranged in an array, the anti-slip protrusions being linear and extending in a wavy or zigzag shape; The width of the drainage groove is greater than the width of the anti-slip protrusion, so that the area of ​​the drainage groove is greater than the area of ​​the anti-slip protrusion.

2. The anti-splash sole structure according to claim 1, characterized in that, The anti-slip protrusion includes multiple first protrusions and second protrusions. The first protrusions are V-shaped, and the second protrusions are inverted V-shaped. The first protrusions and the second protrusions are arranged adjacent to each other.

3. The anti-splash sole structure according to claim 2, characterized in that, The first boss includes a first long side and a first short side, and a first groove is formed between the first long side and the first short side; the second boss includes a second long side and a second short side, and a second groove is formed between the second long side and the second short side; the first groove and the second groove are respectively connected to adjacent drainage channels.

4. The anti-splash sole structure according to claim 2, characterized in that, A first connecting groove is provided between the first boss and the second boss, and the first connecting groove connects to the adjacent drainage groove.

5. The anti-splash sole structure according to claim 3, characterized in that, The first boss and the second boss form a boss group, and the anti-slip texture is formed by an array of multiple boss groups; a second connecting groove is provided between the boss groups, and the second connecting groove connects to the adjacent drainage groove.

6. The anti-splash sole structure according to claim 1, characterized in that, The toe of the sole body extends outward to form a protective section; when the drainage sole is connected to the shock-absorbing sole, the protective section folds upward and connects to the periphery of the shock-absorbing sole.

7. The anti-splash sole structure according to claim 1, characterized in that, The height of the anti-slip protrusion is equal to the thickness of the main body of the shoe sole.

8. The anti-splash sole structure according to claim 1, characterized in that, The sole body is also equipped with a display section, in which shoe information is displayed in text form.

9. The anti-splash sole structure according to claim 1, characterized in that, The drainage sole is made of abrasion-resistant material; the shock-absorbing sole is made of flexible material.

10. The anti-splash sole structure according to claim 1, characterized in that, The area of ​​the drainage groove is greater than 2 / 3 of the area of ​​the main body of the shoe sole.

Citation Information

Patent Citations

  • Splash-proof shoe

    CN221104910U