Anti-slip water shoes

By introducing raised sections and suction cup structures on the bottom of the water shoes, combined with a drainage groove design, the problem of insufficient anti-slip performance of water shoes in heavy water and oil workshops is solved, achieving higher anti-slip performance and drainage effect, making them suitable for industries such as slaughtering and meat processing.

CN223787204UActive Publication Date: 2026-01-13CP ANIMAL HUSBANDRY INVESTEMENT BEIJING
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Patent Information

Application Number
CN202520227168.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-13
Publication Date
2026-01-13
Estimated Expiration
2035-02-13

AI Technical Summary

Technical Problem

Existing water shoes have poor anti-slip performance in heavy water and heavy oil workshops, resulting in a high risk of workers slipping and falling, and cannot meet the anti-slip requirements of industries such as slaughtering and meat processing.

Method used

The sole design incorporates a first anti-slip section and a second anti-slip section. The first anti-slip section consists of multiple raised sections with drainage seams on their surfaces. The second anti-slip section consists of multiple suction cups, which are higher than the raised sections. Combined with the drainage groove design, this enhances friction and adhesion, and improves drainage performance.

Benefits of technology

It enhances the friction and adhesion between the sole and the ground, improves anti-slip performance, effectively drains liquids, and is suitable for working environments with heavy water and heavy oil, reducing the risk of slipping.

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Abstract

The embodiment of the utility model provides an anti-skidding water shoe which comprises a shoe sole and a shoe body, the shoe sole comprises a shoe heel part and a shoe heel part, the shoe heel part and the shoe heel part are provided with bottom faces, first anti-skidding parts and second anti-skidding parts, and the first anti-skidding parts and the second anti-skidding parts are longitudinally and alternately arranged on the bottom faces along the anti-skidding water shoe. Wherein the first anti-skid part comprises a plurality of convex parts which are transversely arranged along the anti-skid water shoe, and a drainage seam is formed in the bottom surface of each convex part; the second anti-skid part comprises a plurality of suction cups which are transversely arranged along the anti-skid water shoe, and the height of the suction cups is larger than that of the protruding part. The friction force, the adsorption force and the actual contact area between the shoe sole and the ground are increased, the drainage performance of the shoe sole is effectively improved, and the protection performance of the anti-skid water shoe is effectively improved.
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Description

Technical Field

[0001] This utility model relates to the field of footwear technology, and in particular to a non-slip water shoe. Background Technology

[0002] Currently, most water shoes on the market feature hard soles and treads, whose anti-slip performance cannot meet the long-term operational needs on hard surfaces such as water and oil, including industries like slaughtering, meat processing, and food processing. Because water and oil easily accumulate in workshops, ordinary water shoes cannot expel the water and oil between the sole and the ground, nor can they increase the suction between the sole and the ground. This often leads to slips and falls among workers wearing ordinary water shoes. Therefore, existing water shoes cannot meet the anti-slip requirements of slaughtering and meat processing workshops and have certain limitations. Utility Model Content

[0003] The main purpose of this utility model is to provide a non-slip water shoe to solve the problem that ordinary water shoes in the prior art have poor anti-slip performance and are not suitable for working environments in heavy water and heavy oil workshops.

[0004] According to an embodiment of this utility model, an anti-slip water shoe is provided, comprising: a sole and a shoe body. The sole includes: a forefoot portion and a heel portion. The forefoot portion and the heel portion have a bottom surface and a first anti-slip portion and a second anti-slip portion alternately disposed on the bottom surface along the longitudinal direction of the anti-slip water shoe. The first anti-slip portion includes a plurality of protrusions disposed laterally along the transverse direction of the anti-slip water shoe, and each protrusion has a drainage seam on its bottom surface. The second anti-slip portion includes a plurality of suction cups disposed laterally along the transverse direction of the anti-slip water shoe, wherein the height of the suction cups is greater than the height of the protrusions.

[0005] It also includes a drainage groove that extends laterally through the sole of the shoe, the drainage groove being located behind the first anti-slip part and in front of the second anti-slip part.

[0006] The suction cup is a multi-layered suction cup, and the shape of the multi-layered suction cup in the vertical direction is an equilateral trapezoid.

[0007] The suction cup is trapezoidal in shape along the vertical direction, and the front waist length of the trapezoidal cross-section of the suction cup is greater than the rear waist length of the trapezoidal cross-section of the suction cup.

[0008] The protrusion is rhomboid in shape, and the drainage seam is located on the bottom surface of the protrusion along the diagonal of the rhomboid. The drainage seam is cross-shaped.

[0009] The height of the sole portion of the shoe is greater than the height of the heel portion.

[0010] According to an embodiment of this utility model, an anti-slip water shoe is also provided. The sole of the anti-slip water shoe includes a forefoot and a heel. The forefoot and the heel are respectively provided with a plurality of anti-slip structures arranged in sequence. Each anti-slip structure includes a first anti-slip part and a second anti-slip part, and a drainage groove located between the first anti-slip part and the second anti-slip part. The first anti-slip part includes a plurality of horizontally arranged protrusions, and the second anti-slip part includes a plurality of horizontally arranged suction cups, wherein the height of the suction cups is greater than the height of the protrusions. The surface of each protrusion is provided with a drainage seam.

[0011] The surface shape of the protrusion is rhomboid, and the drainage seam is arranged along the diagonal of the rhomboid on the surface of the protrusion.

[0012] The height of the sole portion of the shoe is greater than the height of the heel portion.

[0013] The suction cup has a trapezoidal cross-sectional shape along the vertical direction, and the front waist length of the trapezoidal cross-section of the suction cup is greater than the rear waist length of the trapezoidal cross-section of the suction cup.

[0014] According to the technical solution of this utility model, by setting a first anti-slip part and a second anti-slip part on the sole of the shoe, the first anti-slip part includes multiple protrusions, and the bottom surface of each protrusion is provided with a drainage seam. The second anti-slip part includes multiple suction cups, and the height of the suction cups is greater than the height of the protrusions, thereby increasing the friction, adsorption and actual contact area between the sole and the ground, and effectively improving the drainage performance of the sole, thus effectively improving the protective performance of the anti-slip water shoes, which are suitable for the working environment of heavy water and heavy oil workshops. Attached Figure Description

[0015] The accompanying drawings, which are included to provide a further understanding of the present invention and form part of this application, illustrate exemplary embodiments of the present invention and, together with the description thereof, serve to explain the present invention and do not constitute an undue limitation thereof. In the drawings:

[0016] Figure 1 This is a schematic diagram of anti-slip water shoes according to an embodiment of the present utility model;

[0017] Figure 2 This is a schematic diagram of a shoe sole according to another embodiment of the present invention;

[0018] Figure 3 This is a schematic diagram of a protrusion according to an embodiment of the present invention. Detailed Implementation

[0019] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be clearly and completely described below in conjunction with specific embodiments and corresponding drawings. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0020] The technical solutions provided by the various embodiments of this utility model are described in detail below with reference to the accompanying drawings.

[0021] According to an embodiment of this utility model, a non-slip water shoe is provided. This water shoe, also known as a rain boot, is typically made of waterproof material. First, it should be noted that in this application, the toe direction of the non-slip water shoe is defined as the front side or forefoot of the shoe, the heel direction as the rear side or rear end of the shoe, the width direction as the transverse direction, and the length direction as the longitudinal direction. The top-to-bottom direction of the non-slip water shoe is defined as the shoe body and sole.

[0022] refer to Figure 1 The non-slip water shoes include a shoe body 1 and a sole 2. The shoe body 1 is designed in the shape of a boot, and its length can extend to cover the wearer's calf or knee to prevent the ground from getting too wet and soaking the wearer's pants or to prevent water or oil from splashing onto the wearer's pants when walking.

[0023] Referring to the attached drawings, the sole 2 includes a forefoot portion 21, an arch portion 22, and a heel portion 23. The sole surfaces of the forefoot portion 21 and the heel portion 23, which are in contact with the ground, can be made of synthetic materials such as rubber. Specifically, the rubber sole surfaces of the forefoot portion 21 and the heel portion 23 can be manufactured by attaching rubber patches or by integrally molding a sole made of synthetic materials such as rubber. A first anti-slip portion 31 and a second anti-slip portion 32 are also alternately arranged longitudinally at the forefoot portion 21 and the heel portion 23 of the sole 2. The first anti-slip portion 31 and the second anti-slip portion 32 extend laterally and penetrate the sole, and the material of the first anti-slip portion 31 and the second anti-slip portion 32 can also be synthetic materials such as rubber. The first anti-slip portion 31 can be fixedly connected to the sole surfaces of the forefoot portion 21 and the heel portion 23 or integrally molded with the sole surfaces. A drainage groove 33 is also provided between the first anti-slip part 31 and the second anti-slip part 32. The drainage groove 33 also extends laterally and penetrates the forefoot part 21 and the heel part 23 of the sole. Specifically, the drainage groove 33 is located on the rear side of the first anti-slip part 31 and on the front side of the second anti-slip part 32. The sequentially arranged first anti-slip part 31, drainage groove 33 and second anti-slip part 32 can form an anti-slip structure. The forefoot part 21 and the heel part 23 of the sole 2 can be uniformly provided with one or more anti-slip structures along the longitudinal direction according to the actual shoe length. When one or more anti-slip structures are provided and the remaining length of the rear end of the forefoot part 21 or the heel part 23 is insufficient to provide a complete anti-slip structure, a partial anti-slip structure can be provided at the rear end of the forefoot part 21 or the heel part 23, for example, a first anti-slip part 31 or a second anti-slip part 32 can be provided separately to fill the remaining space.

[0024] The arch portion 22 is located between the forefoot portion 21 and the heel portion 23. Since the arch portion 22 is concave upward and does not contact the ground, no anti-slip part or anti-slip structure is provided in the arch portion 22.

[0025] Figure 2 Another embodiment of the non-slip water shoes is shown. In this application, Figure 1 The illustrated embodiments and Figure 2 The only difference in the illustrated embodiments is that different numbers of anti-slip structures are provided on the forefoot 21 and heel 23 according to the different shoe lengths of the anti-slip water shoes. In fact, Figure 1 The illustrated embodiments and Figure 2 In the embodiments shown, the specific structure and function of each anti-slip structure are the same.

[0026] Reference Figure 2 and Figure 3The first anti-slip part 31 includes a plurality of protrusions 311 evenly arranged laterally along the sole 21 or heel 23. The protrusions 311 protrude from the bottom surface of the sole 2 to increase the friction of the sole. A drainage slit 312 is provided on the surface (bottom surface) of the protrusions 311. The drainage slit 312 penetrates the surface of the protrusions 311 to facilitate the drainage of liquid between the protrusions 311 and the ground. This not only minimizes the formation of a water film between the protrusions 311 and the ground, but also increases the actual contact area and friction between the sole and the ground.

[0027] In this embodiment, the protrusion 311 can be rhomboid in shape, and the drainage slot 312 can be cross-shaped, with the drainage slot 312 positioned along the diagonal of the rhombus on the bottom surface of the protrusion 311. In practice, a cross-shaped drainage slot 312 can be cut along the diagonal of the rhomboid protrusion 311. When the protrusion 311 is not in contact with the ground, the drainage slot 312 is in a closed state. When the protrusion 311 contacts the ground and is subjected to pressure from a person, the drainage slot 312 is squeezed open to form a drainage channel, and the water accumulated between the protrusion 311 and the ground is discharged from the drainage channel formed by the drainage slot 312 under pressure. In other embodiments of this application, the protrusion 311 can also be square, rectangular, triangular, circular, or irregular in shape, and the drainage slot 312 can be straight or star-shaped.

[0028] Reference Figure 1 and Figure 2 The second anti-slip part 32 includes a plurality of suction cups 321 evenly arranged laterally along the sole 21 or heel 23. In some embodiments of this application, the suction cups 321 are multi-layered suction cups to increase the suction force. Specifically, viewed from the bottom, the cavity of the suction cup 321 includes a plurality of rubber rings with the same center; viewed from the side, the shape of the suction cup 321 in the vertical direction is an equilateral trapezoid, that is, the cross-sectional area of ​​the suction cup 321 gradually increases from top to bottom. In other embodiments of this application, the cross-sectional shape of the suction cup cavity in the vertical direction is trapezoidal, and the front side of the trapezoidal cross-section of the suction cup cavity is longer than the rear side of the trapezoidal cross-section of the suction cup (this shape is simply referred to as an unequal-sided trapezoid). That is, the inclination angle of the front surface of the suction cup cavity is greater than the inclination angle of its rear surface, so that the wearer can lift the suction cup off the ground with less force when walking, which not only achieves the effect of saving effort, but also conforms to the walking habits of people. In practical applications, the suction cups in each row of the anti-slip part 32 of the shoe body 1 and the sole 2 can all be set as equilateral trapezoids or as scalene trapezoids; different shapes of suction cups can also be arranged alternately, that is, one row is set with equilateral trapezoidal suction cups and the next row is set with scalene trapezoidal suction cups, which will not be elaborated here.

[0029] In this embodiment, the height of the sole portion 21 with the anti-slip structure is slightly greater than the height of the heel portion 23 with the anti-slip structure. This conforms to the wearer's walking habit of landing and lifting off the ground heel first, making walking more effortless. In each set of anti-slip structures, the height of the suction cup 321 is greater than the height of the protrusion 311. That is, when a person's foot wearing the anti-slip water shoes lands, the suction cup 321 contacts the ground first compared to the protrusion 311. In other words, the suction cup 321 displaces the water between itself and the ground and adheres to the ground, thereby increasing the grip of the anti-slip water shoes.

[0030] According to the embodiments of this application, by setting a first anti-slip part and a second anti-slip part on the sole of the shoe, the first anti-slip part includes multiple protrusions, and the second anti-slip part includes multiple suction cups with a height greater than the protrusions, thereby increasing the friction and adhesion of the anti-slip water shoes; by setting a drainage groove between the first anti-slip part and the second anti-slip part, and setting a drainage seam at the bottom of the protrusions, water between the sole and the ground can be discharged through the drainage seam and drainage groove, thereby achieving a good drainage effect, increasing the actual contact area between the anti-slip water shoes and the ground, avoiding the formation of a water film, and effectively improving the drainage and anti-slip performance of the anti-slip water shoes. These anti-slip water shoes are particularly suitable for industries such as slaughtering, meat processing, and food processing.

[0031] Although this disclosure has been described in detail with reference to specific embodiments thereof, those skilled in the art will understand that various changes and modifications may be made therein without departing from the spirit and scope of the embodiments. Therefore, this disclosure is intended to cover modifications and variations thereof, and any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this invention should be included within the scope of the claims of this disclosure and their equivalents.

[0032] Furthermore, features disclosed in the foregoing description, claims, or drawings, expressed in their specific form or according to the manner of performing the disclosed function or the method or process for obtaining the disclosed result, may, as appropriate, be used alone or in any combination of these features to implement the present invention in their different forms. Specifically, one or more features of any embodiment described herein may be combined with one or more features of any other embodiment described herein.

[0033] Protection may also be sought for any features disclosed in any one or more public documents combined with this disclosure and / or merged by reference.

Claims

1. A type of non-slip water shoe, characterized in that, include: The shoe sole and the shoe body, the shoe sole including: a forefoot portion and a heel portion, the forefoot portion and the heel portion having a bottom surface and a first anti-slip portion and a second anti-slip portion alternately disposed on the bottom surface along the longitudinal direction of the anti-slip water shoe; The first anti-slip part includes a plurality of protrusions arranged laterally along the anti-slip water shoe, and each protrusion has a drainage slit on its bottom surface; the second anti-slip part includes a plurality of suction cups arranged laterally along the anti-slip water shoe, wherein the height of the suction cups is greater than the height of the protrusions.

2. The anti-slip water shoes according to claim 1, characterized in that, It also includes a drainage groove that extends laterally through the sole of the shoe, the drainage groove being located behind the first anti-slip part and in front of the second anti-slip part.

3. The anti-slip water shoes according to claim 1, characterized in that, The suction cup is a multi-layer suction cup, and the shape of the multi-layer suction cup in the vertical direction is an equilateral trapezoid.

4. The anti-slip water shoes according to claim 1, characterized in that, The suction cup is trapezoidal in shape along the vertical direction, and the front waist length of the trapezoidal cross section of the suction cup is greater than the rear waist length of the trapezoidal cross section of the suction cup.

5. The anti-slip water shoes according to claim 1, characterized in that, The protrusion is rhomboid in shape, and the drainage seam is located on the bottom surface of the protrusion along the diagonal of the rhombus. The drainage seam is cross-shaped.

6. The anti-slip water shoes according to claim 1, characterized in that, The height of the sole is greater than the height of the heel.

7. A type of non-slip water shoe, characterized in that, The sole of the anti-slip water shoes includes a forefoot and a heel. The forefoot and heel are respectively provided with a plurality of anti-slip structures arranged in sequence. Each anti-slip structure includes a first anti-slip part and a second anti-slip part, and a drainage groove located between the first anti-slip part and the second anti-slip part. The first anti-slip part includes a plurality of horizontally arranged protrusions, and the second anti-slip part includes a plurality of horizontally arranged suction cups, wherein the height of the suction cups is greater than the height of the protrusions. Each protrusion has a drainage groove on its surface.

8. The anti-slip water shoes according to claim 7, characterized in that, The surface shape of the protrusion is rhomboid, and the drainage seam is arranged along the diagonal of the rhomboid on the surface of the protrusion.

9. The anti-slip water shoes according to claim 7, characterized in that, The height of the sole is greater than the height of the heel.

10. The anti-slip water shoes according to claim 7, characterized in that, The suction cup has a trapezoidal cross-sectional shape in the vertical direction, and the front waist length of the trapezoidal cross-section of the suction cup is greater than the rear waist length of the trapezoidal cross-section of the suction cup.