Bow-shaped suspension arc rebound cushioning technology sole

Through the IMEVA cushioning and rebound sole design, combined with the triangular suspension arc cushioning rebound block and hollow deformation groove, the problem of poor vibration cushioning effect of sports shoes arch sole is solved, better cushioning and rebound performance is achieved, and the sole is enhanced to assist and anti-slip effect.

CN223111146UActive Publication Date: 2025-07-18FUJIAN TANTUO TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422275779.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-18
Publication Date
2025-07-18
Estimated Expiration
2034-09-18

AI Technical Summary

Technical Problem

The vibration cushioning effect of the arch soles of existing sports shoes is not good, and the rebound performance is not ideal.

Method used

The IMEVA cushioning and rebound sole design is adopted, including the upper IMEVA cushioning base, deformation buffer zone and lower IMEVA cushioning base, combined with the triangular suspension arc cushioning rebound block and the triangular hollow deformation groove, leveraging the high rebound performance of IMEVA material, the triangular suspension arc cushioning rebound block is deformed under pressure and quickly restores the original state when raising the foot.

Benefits of technology

It improves the cushioning effect of the sole, enhances the rebound performance, provides support, anti-slip performance, and meets the performance needs of conventional sole.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of soles, and particularly relates to an arch-shaped suspended arc rebound cushioning technical sole, which comprises an IMEVA cushioning rebound sole, an RB anti-skid wear-resistant layer is adhered to the bottom of the IMEVA cushioning rebound sole, the IMEVA cushioning rebound sole comprises an upper-layer IMEVA cushioning base, the bottom of the upper-layer IMEVA cushioning base is a deformation buffer area, and the lower-layer IMEVA cushioning base is an elastic buffer area. The deformation buffer area comprises triangular suspended arc cushioning rebound blocks, the tops of the triangular suspended arc cushioning rebound blocks and the upper-layer IMEVA cushioning base are integrally formed, the bottoms of the triangular suspended arc cushioning rebound blocks and the lower-layer IMEVA cushioning base are integrally formed, and triangular hollow deformation grooves are formed between every two adjacent triangular suspended arc cushioning rebound blocks; in the process that the sole is treaded and pressed, vibration pressing force can be released in the horizontal direction, a better cushioning effect is achieved, and when a wearer lifts the foot, the sole can quickly restore to the original shape through the high rebound resilience of the IMEVA material, and a certain assisting effect is achieved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of shoe soles, and particularly relates to a shoe sole with an arcuate suspension arc rebound shock absorption technology. Background Art

[0002] Sports shoes are designed and manufactured according to the characteristics of people participating in sports or traveling. The soles of sports shoes are usually soft and elastic, which can play a certain buffering role, reduce the impact on the feet during exercise, and reduce the risk of injury. The soles of sports shoes generally adopt arcuate soles. At present, the arcuate soles of sports shoes have poor shock absorption and rebound performance. Therefore, we propose a shoe sole with an arcuate suspension arc rebound shock absorption technology. Content of the Utility Model

[0003] Aiming at the above problems, the purpose of the present utility model is to provide a shoe sole with an arcuate suspension arc rebound shock absorption technology. When the wearer wears shoes with this sole during exercise, during the process of the sole being stepped on and compressed, the triangular suspension arc shock absorption and rebound block deforms under the action of pressure, releases the vibration compression force in the horizontal direction, plays a better shock absorption effect, and can quickly return to its original state when the wearer lifts the foot, playing a certain boosting role by utilizing the high rebound performance of the IMEVA material.

[0004] To achieve the above purpose, the present utility model provides the following technical solution: A shoe sole with an arcuate suspension arc rebound shock absorption technology, including an IMEVA shock absorption and rebound shoe sole. An RB anti-slip and wear-resistant layer is bonded to the bottom of the IMEVA shock absorption and rebound shoe sole. The IMEVA shock absorption and rebound shoe sole includes an upper IMEVA shock absorption base. The bottom of the upper IMEVA shock absorption base is a deformation buffer area. The deformation buffer area includes triangular suspension arc shock absorption and rebound blocks. The top of the triangular suspension arc shock absorption and rebound block is integrally formed with the upper IMEVA shock absorption base. The bottom of the triangular suspension arc shock absorption and rebound block is integrally formed with the lower IMEVA shock absorption base. A triangular hollow deformation groove is provided between two adjacent groups of triangular suspension arc shock absorption and rebound blocks. The bottom of the lower IMEVA shock absorption base is bonded to the RB anti-slip and wear-resistant layer.

[0005] The beneficial effects of the utility model are as follows: the device is provided with an IMEVA cushioning and rebound sole divided into three layers, namely, an upper IMEVA cushioning base, a deformation buffer zone and a lower IMEVA cushioning base. In addition to utilizing the characteristics of the IMEVA sole, which is light, soft, elastic, not easy to deform and environmentally friendly, to meet the conventional sole performance requirements, the device uses a deformable triangular suspended arc cushioning and rebound block, and a triangular hollow deformation groove that provides a deformation space for the triangular suspended arc cushioning and rebound block when it is compressed and deformed. When the wearer wears the shoes provided with the sole and exercises, during the process of the sole being stepped on and compressed, the triangular suspended arc cushioning and rebound block is deformed under the action of pressure, and the vibration pressure force is released in the horizontal direction, which has a better cushioning effect. When the wearer lifts his foot, the high resilience of the IMEVA material can be utilized to quickly restore the original state, thereby playing a certain auxiliary role.

[0006] In order to shield and protect the bonding between the sole and the upper:

[0007] As a further improvement of the above technical solution: the top of the upper IMEVA shock-absorbing base is provided with an arc-shaped protective wing.

[0008] The beneficial effect of this improvement is that the arc-shaped wing is used to shield and protect the bonding point between the sole and the upper.

[0009] To avoid slipping:

[0010] As a further improvement of the above technical solution: the bottom of the RB anti-skid and wear-resistant layer is provided with an anti-skid bottom pattern.

[0011] The beneficial effect of this improvement is that the anti-skid pattern enhances the friction between the sole and the ground to avoid slipping.

[0012] The parts not involved in the device are the same as those in the prior art or can be implemented by using the prior art. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 It is a schematic diagram of the separation structure of the utility model;

[0014] Figure 2 It is a schematic diagram of the structure of the utility model;

[0015] Figure 3 It is a bottom schematic diagram of the utility model;

[0016] Figure 4 This is a schematic diagram of the structure of the IMEVA shock-absorbing and rebounding sole in the utility model;

[0017] Figure 5 It is a schematic diagram of the structure of the RB anti-skid and wear-resistant layer in the utility model;

[0018] In the figure: 1. IMEVA shock-absorbing and rebound sole; 2. RB anti-slip and wear-resistant layer; 3. Upper IMEVA shock-absorbing base; 4. Arc-shaped wing; 5. Triangular arc shock-absorbing and rebound block; 6. Triangular hollow deformation groove; 7. Lower IMEVA shock-absorbing base; 8. Anti-slip texture. Detailed implementation mode

[0019] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be described in detail below with reference to the accompanying drawings. The description in this part is only exemplary and explanatory, and should not have any restrictive effect on the protection scope of the present invention.

[0020] As Figures 1-5 shown, a bow-shaped arc rebound shock-absorbing technology sole includes an IMEVA shock-absorbing and rebound sole 1. An RB anti-slip and wear-resistant layer 2 is bonded to the bottom of the IMEVA shock-absorbing and rebound sole 1. The IMEVA shock-absorbing and rebound sole 1 includes an upper IMEVA shock-absorbing base 3. The bottom of the upper IMEVA shock-absorbing base 3 is a deformation buffer area. The deformation buffer area includes triangular arc shock-absorbing and rebound blocks 5. The top of the triangular arc shock-absorbing and rebound blocks 5 is integrally formed with the upper IMEVA shock-absorbing base 3. The bottom of the triangular arc shock-absorbing and rebound blocks 5 is integrally formed with the lower IMEVA shock-absorbing base 7. A triangular hollow deformation groove 6 is provided between two adjacent groups of triangular arc shock-absorbing and rebound blocks 5. The bottom of the lower IMEVA shock-absorbing base 7 is bonded to the RB anti-slip and wear-resistant layer 2.

[0021] By setting the IMEVA shock-absorbing and rebound sole 1 divided into three layers: the upper IMEVA shock-absorbing base 3, the deformation buffer area, and the lower IMEVA shock-absorbing base 7, while utilizing the characteristics of the IMEVA sole being light, soft, having good elasticity, not easily deformed, and environmentally friendly to meet the conventional sole performance requirements, through the deformable triangular arc shock-absorbing and rebound blocks 5, and in cooperation with the setting of the triangular hollow deformation groove 6 that provides deformation space for the triangular arc shock-absorbing and rebound blocks 5 when they are compressed and deformed, when the wearer moves in the shoes provided with this sole, during the process of the sole being stepped on and compressed, the triangular arc shock-absorbing and rebound blocks 5 deform under the action of pressure, releasing the vibration and compression force in the horizontal direction, achieving a better shock-absorbing effect, and when the wearer lifts the foot, using the high rebound performance of the IMEVA material, it can quickly return to its original state and play a certain assisting role.

[0022] An arc-shaped wing 4 is provided on the top of the upper IMEVA shock-absorbing base 3.

[0023] The arc-shaped wing 4 is used to shield and protect the bonding part between the sole and the shoe upper.

[0024] Anti-slip texture 8 is provided on the bottom of the RB anti-slip and wear-resistant layer 2.

[0025] The anti-slip texture 8 plays a role in enhancing the friction between the sole and the ground, avoiding slipping.

[0026] The working principle and usage process of the present utility model: This device is provided with an IMEVA shock-absorbing and rebound sole 1 divided into three layers, namely an upper IMEVA shock-absorbing base 3, a deformation buffer zone, and a lower IMEVA shock-absorbing base 7. By utilizing the characteristics of the IMEVA sole, such as being lightweight, soft, having good elasticity, not being easily deformed, and being environmentally friendly, in addition to meeting the conventional sole performance requirements, through the deformable triangular arc shock-absorbing and rebound blocks 5, and the setting of triangular hollow deformation grooves 6 that provide deformation space for the triangular arc shock-absorbing and rebound blocks 5 when they are compressed and deformed, when the wearer moves while wearing shoes with this sole, during the process of the sole being stepped on and compressed, the triangular arc shock-absorbing and rebound blocks 5 deform under the action of pressure, releasing the vibration compression force in the horizontal direction, achieving a better shock-absorbing effect, and when the wearer lifts the foot, using the high rebound performance of the IMEVA material, quickly restoring to its original state and playing a certain assisting role. This device is also provided with an RB anti-slip and wear-resistant layer 2, which can well meet the wear-resistant requirements of the sole.

[0027] It should be noted that in this article, the term "including", "comprising" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or further includes elements inherent to such process, method, article or device.

[0028] In this article, specific examples are used to elaborate on the principle and implementation manner of the present utility model. The description of the above examples is only used to help understand the method and its core idea of the present utility model. The above is only the preferred implementation manner of the present utility model. It should be pointed out that due to the limited nature of written expression, objectively there are infinite specific structures. For those of ordinary skill in the art in this technical field, without departing from the principle of the present utility model, several improvements, refinements or changes can be made, or the above technical features can be combined in an appropriate manner; these improvements, refinements, changes or combinations, or directly applying the concept and technical solution of the utility model to other occasions without improvement, should all be regarded as the protection scope of the present utility model.

Claims

1. A sole with an arc-shaped suspension arc rebound shock absorption technology, characterized in that: It includes an IMEVA shock-absorbing and rebound sole (1), a RB anti-slip and wear-resistant layer (2) is adhesively bonded to the bottom of the IMEVA shock-absorbing and rebound sole (1). The IMEVA shock-absorbing and rebound sole (1) includes an upper IMEVA shock-absorbing base (3). The bottom of the upper IMEVA shock-absorbing base (3) is a deformation buffer area. The deformation buffer area includes triangular arc shock-absorbing and rebound blocks (5). The top of the triangular arc shock-absorbing and rebound blocks (5) is integrally formed with the upper IMEVA shock-absorbing base (3). The bottom of the triangular arc shock-absorbing and rebound blocks (5) is integrally formed with the lower IMEVA shock-absorbing base (7). A triangular hollow deformation groove (6) is provided between two adjacent groups of triangular arc shock-absorbing and rebound blocks (5). The bottom of the lower IMEVA shock-absorbing base (7) is adhesively bonded to the RB anti-slip and wear-resistant layer (2).

2. The sole with an arcuate suspension arc rebound shock absorption technology according to claim 1, characterized in that: An arc-shaped wing (4) is provided on the top of the upper IMEVA shock-absorbing base (3).

3. The sole with a bow-shaped suspension arc rebound shock absorption technology according to claim 1, characterized in that: Anti-slip patterns (8) are provided on the bottom of the RB anti-slip and wear-resistant layer (2).