Honeycomb stable posture functional sole
By combining a biomimetic five-toe structure, forefoot tread pattern, hexagonal M-shaped anti-slip protrusions, dynamic arch support bridge, and gradient heel stabilization structure in the sole design, the problem of insufficient grip in children's shoes is solved, the grip efficiency and stability of the sole are improved, and muscle strain and heel impact are reduced.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WENZHOU TIANJUE STAR E-COMMERCE CO LTD
- Filing Date
- 2025-07-07
- Publication Date
- 2026-05-15
AI Technical Summary
Existing children's shoes lack sufficient grip at the toes, resulting in poor stability and making them prone to tipping and slipping.
The shoe features a combination of a biomimetic five-toe structure, forefoot tread pattern, hexagonal M-shaped anti-slip protrusions, dynamic arch support bridge, gradient heel stabilization structure, and ring-shaped anti-torsion heterogeneous support frame to enhance the grip and stability of the sole.
It improves grip efficiency, reduces muscle strain, maintains the coefficient of friction, corrects gait, reduces heel impact, and enhances stability and wear resistance.
Smart Images

Figure CN224234816U_ABST
Abstract
Description
Technical Field
[0001] This utility model patent relates to a honeycomb stabilizing posture functional shoe sole. Background Technology
[0002] Existing children's shoes often lack grip at the toes because the toes don't exert enough force, resulting in poor stability and making them prone to tilting and slipping. Utility Model Content
[0003] The purpose of this invention is to solve existing technical problems by proposing a honeycomb stabilizing posture functional shoe sole.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: a honeycomb stabilizing posture functional shoe sole, including a shoe sole, a corresponding bionic five-toe structure at the front of the bottom of the shoe sole corresponding to the human toes, a forefoot texture at the forefoot of the bottom of the shoe sole, the forefoot texture dividing the forefoot into several sections horizontally, each section having several evenly arranged hexagonal M-shaped anti-slip protrusions, a dynamic arch support bridge at the arch, a gradient heel stabilizing structure with a smaller front and larger back at the middle of the heel, and a 360-degree annular anti-torsion heterogeneous support frame around the edge of the shoe sole.
[0005] Furthermore, the hexagonal M-shaped anti-slip protrusions have an outer hexagonal honeycomb shape and an inner M-shape.
[0006] Furthermore, one side of the annular anti-torsion heterogeneous support frame extends beyond the edge of the sole.
[0007] Furthermore, the dynamic arch support bridge is composed of several arc-shaped blocks that curve upwards from left to right, and these arc-shaped blocks are connected by vertical connecting lines.
[0008] Furthermore, the gradient heel stabilizing structure is egg-shaped, with blank spaces inside for marking trademarks and sizes, as well as several anti-slip patterns.
[0009] Furthermore, the annular anti-torsion heterogeneous support frame is a protrusion facing outward from the edge of the sole, and the inner side of the protrusion is provided with several inner grooves.
[0010] Furthermore, the bionic five-toe structure is provided with a transverse guide groove, and the rear end of the toe-separating guide groove between adjacent five toes of the bionic five-toe structure is provided with a circular pattern.
[0011] The beneficial effects of this invention are as follows: the bionic five-toe structure with ergonomically designed toe guide grooves enhances forefoot grip efficiency and, in conjunction with the natural flexion trajectory of the toes, reduces compensatory strain on foot muscles during walking; the forefoot tread pattern, through a composite layout of multi-directional traction grooves and hexagonal M-shaped anti-slip protrusions, maintains a friction coefficient of ≥0.7 under both dry and wet road conditions; the hexagonal M-shaped anti-slip protrusions distribute force evenly, improving wear resistance; the dynamic arch support bridge achieves a 14-18% internal pronation correction rate during the gait cycle while maintaining a 17mm barefoot-feel midsole drop; and the gradient heel stabilization structure increases the heel impact attenuation rate by 22% and reduces the calcaneal tilt angle by 18%. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the structure. Detailed Implementation
[0013] The technical solutions of the present utility model will be clearly and completely described below with reference to the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0014] Example 1 combined with appendix Figure 1 A honeycomb stabilizing posture functional shoe sole includes a sole 1, a bionic five-toe structure 2 corresponding to the human toes at the front of the sole bottom, a forefoot 3 with forefoot treads 31, the forefoot treads horizontally dividing the forefoot into several sections, each section with several evenly arranged hexagonal M-shaped anti-slip protrusions 32, a dynamic arch support bridge 4 at the arch, a gradient heel stabilizing structure 5 with a smaller front and larger back at the middle of the heel, and a 360-degree annular anti-torsion heterogeneous support frame 6 around the edge of the sole.
[0015] A honeycomb-shaped stabilizing functional shoe sole, with hexagonal M-shaped anti-slip protrusions having a hexagonal honeycomb outer contour and an M-shaped inner surface.
[0016] A honeycomb-shaped stabilizing posture functional sole with a ring-shaped anti-torsion heterogeneous support frame extending beyond the edge of the sole on one side.
[0017] A honeycomb-shaped stabilizing posture functional sole, wherein the dynamic arch support bridge is composed of several arc-shaped blocks 41 that curve upward from left to right, and the arc-shaped blocks are connected by vertical connecting lines.
[0018] A honeycomb-shaped stabilizing outsole features an egg-shaped gradient heel stabilization structure with blank spaces for marking trademarks and sizes, as well as several anti-slip patterns.
[0019] A honeycomb-shaped stabilizing posture functional sole has an annular anti-torsion heterogeneous support frame that protrudes outward toward the edge of the sole, and the inner side of the protrusion has several inner grooves.
[0020] A honeycomb-shaped stabilizing posture functional sole has a biomimetic five-toe structure with a transverse guide groove. The biomimetic five-toe structure has a circular pattern 22 at the rear end of the toe guide groove 21 between adjacent five toes.
[0021] A honeycomb-pattern stability functional sole with a dynamic arch support bridge made of dual-density elastic material.
[0022] A honeycomb-shaped stabilizing posture functional sole features a ring-shaped anti-torsion heterogeneous support frame that achieves coronal plane offset angle control ≤3°4 through a three-point stress dispersion structure (anterior metatarsal support wing / scaphoid locking groove / calcaneal covering cup), with a 45° oblique support at the bottom layer.
[0023] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A honeycomb stabilizing posture functional sole, comprising a sole, characterized in that: The front of the sole features a bionic five-toe structure corresponding to the human toes. The forefoot area of the sole has a forefoot tread pattern that divides the forefoot into several sections. Each section contains several evenly arranged hexagonal M-shaped anti-slip protrusions. A dynamic arch support bridge is located at the arch of the foot. A gradient heel stabilization structure with a smaller front and larger back is located in the middle of the heel. The edge of the sole has a 360-degree ring-shaped anti-torsion heterogeneous support frame that surrounds the edge of the sole.
2. The honeycomb stabilizing posture functional sole according to claim 1, characterized in that: The hexagonal M-shaped anti-slip protrusions have a hexagonal honeycomb outer contour and an M-shaped interior.
3. The honeycomb stabilizing posture functional sole according to claim 2, characterized in that: One side of the annular anti-torsion heterogeneous support frame extends beyond the edge of the sole.
4. The honeycomb stabilizing posture functional sole according to claim 3, characterized in that: The dynamic arch support bridge consists of several curved blocks that curve upwards from left to right, and these blocks are connected by vertical connecting lines.
5. The honeycomb stabilizing posture functional sole according to claim 4, characterized in that: The gradient heel stabilizing structure is egg-shaped, with blank spaces inside for marking trademarks and sizes, as well as several anti-slip patterns.
6. The honeycomb stabilizing posture functional sole according to claim 5, characterized in that: The annular anti-torsion heterogeneous support frame is a protrusion facing outward from the edge of the sole, and the inner side of the protrusion is provided with several inner grooves.
7. A honeycomb stabilizing posture functional sole according to claim 6, characterized in that: The bionic five-toe structure has a horizontal guide groove, and the rear end of the guide groove between the five adjacent toes has a circular pattern.