Rail type modular shoes
Through the track-type modular design of the guide mounting groove and guide mounting rail inside the sole, the problem of difficulty in disassembling existing shoes is solved, and the upper and sole is quickly fixed and disassembled, which improves maintenance and replacement efficiency and reduces the cost of use.
Patent Information
- Application Number
- CN202510634410.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-07-11
AI Technical Summary
The existing shoe structure is difficult to disassemble and causes damage to be replaced, which increases the cost of use.
It adopts a track-type modular design, and quickly fix and disassemble the upper and sole by installing guide mounting grooves and guide mounting rails inside the sole, combining anti-slip limiting projections and fixing shoelaces.
It improves the efficiency of shoes maintenance and replacement, reduces the overall shoe replacement demand, and reduces the cost of use.
Smart Images

Figure CN120284044A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of shoes, and particularly to an orbital modular shoe. Background Art
[0002] Shoes are indispensable wearing items in people's daily lives, mainly used to protect the feet, provide support, enhance walking comfort and safety. They are usually composed of multiple parts including the upper and the sole. Shoes have multiple functions such as protecting the feet, preventing the feet from being damaged by the outside world, providing support and enhancing comfort.
[0003] Some existing shoe structures use methods such as gluing, sewing or other fixing methods to connect the upper and the sole together. This kind of structure has some limitations. Once the upper and the sole are fixed together, it is difficult to disassemble them. When the shoes are damaged, in order to save time and effort, people usually replace the whole shoes instead of replacing the damaged parts, which increases the use cost. Therefore, an orbital modular shoe is proposed to solve the above problems. Summary of the Invention
[0004] In view of the deficiencies of the prior art, the present invention provides an orbital modular shoe that facilitates the disassembly of the upper and the sole, thereby facilitating repair and replacement.
[0005] To achieve the above object, the present invention provides the following technical solution: An orbital modular shoe, including a sole. Guide installation grooves are opened on both the front and rear sides of the top of the sole. Guide installation rails are arranged inside both of the guide installation grooves. An upper is arranged on the top of the two guide installation rails.
[0006] The upper includes a first fixing shoelace, which is sewn on the top of the two guide installation rails. The second fixing shoelace, the third fixing shoelace and the fourth fixing shoelace are sewn on the top of both of the guide installation rails. A first adjusting strap is sewn on the left side of the first fixing shoelace. A fixing ring is fixedly arranged on the side of the first adjusting strap away from the first fixing shoelace. A fixing needle is movably arranged on the inner wall of the fixing ring. A second adjusting strap is sewn on the left side of the fourth fixing shoelace.
[0007] Further, a heel is fixedly installed on the left side of the bottom of the sole, and the sole and the heel are integrally provided.
[0008] Further, both of the guide installation rails are selected from one of a plastic guide rail, a magnetic attraction guide rail and a metal guide rail. The material of the magnetic attraction guide rail is a soft-packed magnet, and the metal guide rail is an aluminum alloy guide rail.
[0009] Furthermore, a number of adjustment holes are equidistantly arranged inside the second adjustment strap. A number of said adjustment holes are all adapted to the fixing pins, and the inner diameters of a number of said adjustment holes are larger than the outer diameter of the fixing pins. Moreover, the adjustment holes are oval-shaped, and an insertion structure is formed between the adjustment holes and the fixing pins.
[0010] Furthermore, a number of anti-slip limit protrusions are fixedly installed at the bottom of both of the guiding installation rails, and a convex block is fixedly installed on the left side of both of the guiding installation rails.
[0011] Furthermore, a wear-resistant layer is provided at the bottom of the shoe sole. The wear-resistant layer is made of a high-wear-resistant rubber material, and anti-slip textures are provided on the surface of the wear-resistant layer.
[0012] Furthermore, a number of said anti-slip limit protrusions are semi-circular, and the material of the anti-slip limit protrusions is rubber. The convex block is composed of a semi-cylinder and a cuboid. The semi-cylinder part is located inside the guiding installation groove, and the cuboid part is located above the guiding installation groove.
[0013] Furthermore, the dimensions and shapes of the guiding installation groove and the guiding installation rail match each other, and the guiding installation rail is inserted into the guiding installation groove at an oblique angle to form a locking structure.
[0014] Furthermore, the materials of the first fixing shoelace, the second fixing shoelace, the third fixing shoelace, and the fourth fixing shoelace are nylon materials, and the material of the shoe sole is rubber.
[0015] Furthermore, the guiding installation rail includes a T-shaped track, a cylindrical track, a dovetail track, a one-way track, a two-way track, a segmented track, etc.
[0016] Compared with the prior art, the technical solution of the present application has the following beneficial effects:
[0017] For this rail-type modular shoe, by installing guiding installation rails at the bottom of the shoe upper and opening guiding installation grooves inside the shoe sole, during use, the guiding installation rails are inserted into the guiding installation grooves at an oblique angle to form a locking structure, and by providing anti-slip limit protrusions, the guiding installation rails can be fixed inside the guiding installation grooves to prevent falling off, thereby realizing the fixation of the shoe upper and the shoe sole. Through the above settings, the quick fixation and disassembly of the shoe upper and the shoe sole can be realized, greatly improving the maintenance and replacement efficiency of the shoes, and there is no need to replace the whole shoe. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a perspective view of the present invention;
[0019] Figure 2 is a schematic diagram of the shoe upper and the guiding installation rail of the present invention;
[0020] Figure 3 Schematic diagram of the sole of the present invention;
[0021] Figure 4 Schematic diagram of the sole of the present invention in the magnetically coupled guide rail state;
[0022] Figure 5 Schematic diagram of the sole of the present invention in the metal guide rail connection state;
[0023] Figure 6 Schematic diagram of the bottom of the sole of the present invention.
[0024] In the figure: 1, sole; 2, heel; 3, guiding installation groove; 4, guiding installation guide rail; 5, shoe upper; 501, first fixed shoelace; 502, second fixed shoelace; 503, third fixed shoelace; 504, fourth fixed shoelace; 505, first adjusting strap; 506, fixing ring; 507, fixing pin; 508, second adjusting strap; 509, adjusting hole; 6, anti-slip limiting protrusion; 7, bump; 8, wear-resistant layer. Specific embodiments
[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0026] Embodiment 1
[0027] An orbital modular shoe includes a sole 1. Guide installation grooves 3 are formed on both the front and rear sides of the top of the sole 1. Guide installation guide rails 4 are arranged inside both of the guide installation grooves 3. A shoe upper 5 is arranged on the top of the two guide installation guide rails 4.
[0028] The shoe upper 5 includes a first fixed shoelace 501, which is sewn on the top of the two guide installation guide rails 4. Second fixed shoelaces 502, third fixed shoelaces 503 and fourth fixed shoelaces 504 are sewn on the top of both of the guide installation guide rails. A first adjusting strap 505 is sewn on the left side of the first fixed shoelace 501. A fixing ring 506 is fixedly arranged on the side of the first adjusting strap 505 away from the first fixed shoelace 501. A fixing pin 507 is movably arranged on the inner wall of the fixing ring 506. A second adjusting strap 508 is sewn on the left side of the fourth fixed shoelace 504.
[0029] Such as Figure 1As shown, by setting the heel 2 and integrating the heel 2 with the sole 1, one of the main functions of the heel 2 is to provide support for the heel. The heel is one of the parts of the human body that bears the greatest pressure when standing and walking. The heel 2 can disperse the pressure on the heel, reduce heel fatigue, and improve wearing comfort.
[0030] As Figure 2 shown, in this embodiment, the guiding installation rail 4 is a plastic rail. The density of plastic materials is usually low, which can significantly reduce the overall weight. Plastic materials have excellent wear resistance and can maintain good performance during long-term use, reducing wear and deformation.
[0031] As Figure 1 With Figure 3 shown, by setting the adjustment hole 509 and the fixing pin 507 to form an existing shoe buckle structure, and the inner diameter of the adjustment hole 509 is larger than the outer diameter of the fixing pin 507, so that the fixing pin 507 can pass through the adjustment hole 509, and the adjustment hole 509 and the fixing pin 507 form an insertion structure. The fixing pin 507 is made of high-strength metal material, making it not easy to break. By changing the position of the fixing pin 507 in the adjustment hole 509, the user can adjust the tightness of the first adjustment strap 505 and the second adjustment strap 508 according to needs, so as to adapt to different foot shapes or tightness requirements.
[0032] As Figure 2 shown, by installing the anti-slip limit protrusion 6 at the bottom of the guiding installation rail 4, and the anti-slip limit protrusion 6 is semicircular and made of rubber. Rubber itself has good friction, so it is convenient to fix the guiding installation rail 4 inside the guiding installation groove 3 to prevent it from falling off. By setting the convex block 7, and the convex block 7 is composed of a semi-cylinder and a cuboid, and the semi-cylinder is located inside the guiding installation groove 3, and the cuboid part is located above the guiding installation groove 3, which is convenient for staff operation. When the staff removes the guiding installation rail 4, they can pull the cuboid part of the convex block 7 to pull out the guiding installation rail 4 from inside the guiding installation groove 3 to realize the separation of the shoe upper 5 and the sole 1.
[0033] As Figure 6 shown, a wear-resistant layer 8 is provided at the bottom of the sole 1, and the wear-resistant layer 8 is made of high-wear-resistant rubber material, and anti-slip textures are provided on the surface of the wear-resistant layer 8. High-wear-resistant rubber materials have excellent wear resistance and can effectively resist ground friction, reducing the wear of the sole 1. The anti-slip texture design can significantly increase the friction between the sole 1 and the ground, especially on wet or uneven surfaces, providing better grip and reducing the risk of slipping. The combination of anti-slip textures and high-wear-resistant rubber can effectively reduce the occurrence of slipping accidents, especially in a humid environment.
[0034] AsFigure 1 , Figure 2 As shown in Figure 3 , the guiding installation groove 3 and the guiding installation rail 4 are in a corresponding and adapted state in terms of size and shape. The guiding installation rail 4 can be inserted into the guiding installation groove 3 at a certain oblique angle, thereby forming a stable locking structure. This design not only ensures the tight connection between the shoe upper 5 and the sole 1, but also provides additional stability through the oblique insertion method, preventing loosening or detachment during use. The oblique insertion design of the guiding installation rail 4 makes the installation process more convenient, and at the same time utilizes the mechanical advantage of the inclined plane to enhance the firmness of the locking structure. In addition, the adapted design of the guiding installation groove 3 and the guiding installation rail 4 also allows for quick replacement between soles 1 and shoe uppers 5 of different sizes, improving the modular and personalized design capabilities of the shoes and meeting the needs of users for different occasions and styles.
[0035] As Figure 1 , Figure 2 shown in Figure 3 , by setting the materials of the first fixed shoelace 501, the second fixed shoelace 502, the third fixed shoelace 503 and the fourth fixed shoelace 504 to nylon materials, nylon materials have extremely high tensile strength and can withstand large tensile forces without being easily broken. This enables the nylon shoelaces to remain stable during long-term use and not easily loosen. Nylon shoelaces have good abrasion resistance and can resist friction and wear during daily wear, extending their service life. Rubber materials have excellent abrasion resistance and can effectively resist ground friction, reducing the wear of the sole 1.
[0036] Usage method: When it is necessary to connect the shoe upper 5 and the sole 1, the staff holds the convex block 7 and inserts the guiding installation rail 4 into the inside of the guiding installation groove 3 of the sole 1 from an oblique angle for locking. And by setting the anti-slip limit protrusion 6, the friction between the guiding installation rail 4 and the guiding installation groove 3 is increased, facilitating the fixation of the guiding installation rail 4 and preventing its detachment from affecting the connection stability between the shoe upper 5 and the sole 1.
[0037] Embodiment 2
[0038] In this embodiment, as Figure 2 shown in Figure 4 , the guiding installation rail 4 adopts a magnetic attraction rail, and the material of the magnetic attraction rail is a soft-pack magnet. A soft-pack magnet is a special magnetic material, usually composed of a magnetic material such as neodymium iron boron and a flexible material such as rubber or silica gel. The magnetic material inside the soft-pack magnet has high magnetism, while the external flexible material gives it good softness and elasticity, thus protecting the internal magnetic material. A magnetic strip with the opposite magnetism to the magnetic attraction rail is arranged inside the guiding installation groove 3, and the rest of the settings are the same as those in Embodiment 1.
[0039] Usage method: When connecting the sole 1 and the upper 5, the staff inserts the guiding installation rail 4 into the guiding installation groove 3 of the sole 1 through the bump 7 for locking. Since the magnetic guiding rail and the magnetic strip located inside the guiding installation groove 3 are in opposite directions, the guiding installation rail 4 and the guiding installation groove 3 can be fixed by magnetic attraction, preventing the guiding installation rail 4 from falling off the guiding installation groove 3 and improving the stability of the upper 5 and the sole 1.
[0040] Embodiment Three
[0041] In this embodiment, as Figure 2 shown in Figure 5 the guiding installation rail 4 is made of a metal rail, and the metal rail is an aluminum alloy rail. The density of the aluminum alloy is relatively low, which can significantly reduce the overall weight of the shoes and improve the wearing comfort. The aluminum alloy has high strength and good tensile resistance, can withstand large tensile and compressive forces, ensuring the stability of the rail. And it has good corrosion resistance, can be used in a humid environment for a long time without rusting easily. And anti-slip textures are provided on the inner wall of the guiding installation groove 3, and a slot is provided inside the guiding installation groove 3. The shape and size of the slot are adapted to the metal rail to ensure that the two can be closely fitted. Then the metal rail can be fixed inside the guiding installation groove 3 through the plugging effect, realizing the fixation of the upper 5 and the sole 1. The rest of the settings are the same as those in Embodiment One.
[0042] Usage method: The staff inserts the guiding installation rail 4 into the slot inside the guiding installation groove 3 through the bump 7, and fixes the guiding installation rail 4 inside the guiding installation groove 3 in a plugging manner. And by setting the anti-slip texture, the stability of the guiding installation rail 4 and the guiding installation groove 3 is enhanced by increasing the friction force, preventing the guiding installation rail 4 from falling off the inside of the guiding installation groove 3.
[0043] In summary, for this track-type modular shoe, by installing the guiding installation rail 4 at the bottom of the upper 5 and opening the guiding installation groove 3 inside the sole 1, during use, the guiding installation rail 4 is inserted into the guiding installation groove 3 at an oblique angle to form a locking structure, and by setting the anti-slip limiting protrusion 6, the guiding installation rail can be fixed inside the guiding installation groove 3 to avoid falling off, thus realizing the fixation of the upper 5 and the sole 1. Through the above settings, the quick fixation and disassembly of the upper 5 and the sole 1 can be achieved, greatly improving the maintenance and replacement efficiency of the shoes without the need to replace the whole shoe.
[0044] It should be noted that regardless of the connection method adopted, the three core objectives of "quick disassembly", "module compatibility", and "repeated assembly" must be achieved. The connection device of the present invention is not limited to the track structure, and those skilled in the art can choose alternative solutions such as magnetic attraction, snap fasteners, zippers, buttons, etc. according to actual needs, and their technical effects are equivalent to those of the track structure. The "separate design logic of the upper and the sole" is the core of this patent, and the connection device is only a means to achieve this logic.
[0045] This detachable modular architecture has comprehensively improved the user experience, met personalized needs, saved the environment, improved replacement efficiency, and enhanced travel convenience.
[0046] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the existence of additional identical elements in the process, method, article or device comprising the element.
[0047] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An orbital modular shoe, comprising a sole (1), characterized in that: On both the front and rear sides of the top of the sole (1), guiding installation grooves (3) are provided. Inside both of the guiding installation grooves (3), guiding installation rails (4) are arranged. On the top of the two guiding installation rails (4), there is a shoe upper (5). The shoe upper (5) includes a first fixed shoelace (501), which is sewn on the top of the two guiding installation rails (4). On the top of both of the guiding installation rails, a second fixed shoelace (502), a third fixed shoelace (503) and a fourth fixed shoelace (504) are sewn. On the left side of the first fixed shoelace (501), a first adjusting strap (505) is sewn. On the side of the first adjusting strap (505) away from the first fixed shoelace (501), a fixing ring (506) is fixedly arranged. Inside the inner wall of the fixing ring (506), a fixing pin (507) is movably arranged. On the left side of the fourth fixed shoelace (504), a second adjusting strap (508) is sewn.
2. The orbital modular shoe according to claim 1, wherein: On the left side of the bottom of the sole (1), a heel (2) is fixedly installed. The sole (1) and the heel (2) are integrally arranged.
3. The orbital modular shoe according to claim 1, characterized in that: Both of the two guiding installation rails (4) are selected from one of a plastic rail, a magnetic attraction rail and a metal rail. The material of the magnetic attraction rail is a soft-packed magnet, and the metal rail is an aluminum alloy rail.
4. The orbital modular shoe according to claim 1, wherein: Inside the second adjusting strap (508), a number of adjusting holes (509) are equidistantly arranged. All of the number of adjusting holes (509) are adapted to the fixing pin (507). The inner diameter of the number of adjusting holes (509) is larger than the outer diameter of the fixing pin (507), and the adjusting holes (509) are oval-shaped. An inserting structure is formed between the adjusting holes (509) and the fixing pin (507).
5. The orbital modular shoe according to claim 1, characterized in that: On the bottom of both of the two guiding installation rails (4), a number of anti-slip limiting protrusions (6) are fixedly installed. On the left side of both of the two guiding installation rails (4), a convex block (7) is fixedly installed.
6. The orbital modular shoe according to claim 1, characterized in that: On the bottom of the sole (1), a wear-resistant layer (8) is provided. The wear-resistant layer (8) is made of a high wear-resistant rubber material, and anti-slip textures are provided on the surface of the wear-resistant layer (8).
7. The orbital modular shoe according to claim 5, characterized in that: All of the number of anti-slip limiting protrusions (6) are semi-circular, and the material of the anti-slip limiting protrusions (6) is rubber. The convex block (7) is composed of a semi-cylinder and a cuboid. The semi-cylinder part is inside the guiding installation groove (3), and the cuboid part is above the guiding installation groove (3).
8. The orbital modular shoe according to claim 1, wherein: The sizes and shapes of the guiding installation groove (3) and the guiding installation rail (4) match each other. The guiding installation rail (4) is inserted into the guiding installation groove (3) at an oblique angle to form a locking structure.
9. The orbital modular shoe according to claim 1, wherein: The materials of the first fixed shoelace (501), the second fixed shoelace (502), the third fixed shoelace (503) and the fourth fixed shoelace (504) are nylon materials, and the material of the sole (1) is rubber.
10. According to the one kind of track-type modular shoes described in claim 1, the guiding installation rail (4) includes a T-shaped track, a cylindrical track, a dovetail track, a one-way track, a two-way track, a segmented track, etc.