Processing device and production process of double-perspiration breathable sports shoes

A modular processing device for shoe soles addresses inefficiencies and safety hazards by incorporating a clamping, grinding, and dust management system, enhancing efficiency and safety in shoe sole processing.

CN120304614AInactive Publication Date: 2025-07-15WENZHOU MINGQI SHOES CO LTD
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Patent Information

Application Number
CN202510658760.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-21
Publication Date
2025-07-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, the polishing process of sports shoes soles has problems such as high operational difficulty, serious dust pollution and great safety hazards, which affects production efficiency and operator health.

Method used

A double-wicking and breathable sports shoes processing device is designed, including a clamping mechanism, grinding mechanism, dust removal mechanism, vibration mechanism and purge mechanism to realize automated sole grinding and dust treatment.

Benefits of technology

Improve production efficiency, reduce dust pollution, protect the health of operators, and ensure the stable operation and safety of equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of sneaker processing, in particular to a processing device and a production process of double-perspiration breathable sneakers. According to the technical scheme, the device comprises a first shell and a second shell; a clamping mechanism and a grinding mechanism are arranged in the second shell, the clamping mechanism is used for clamping insoles, the grinding mechanism is used for grinding the insoles, a dust removal mechanism, a vibration mechanism and a blowing mechanism are arranged in the first shell, the dust removal mechanism is used for sucking powder ground by the grinding mechanism, and the blowing mechanism is used for blowing the powder. And the vibrating mechanism and the blowing mechanism are used for vibrating and blowing the interior of the dust removal mechanism. Multifunctional integration is achieved through modular design, a clamping mechanism in the second shell is of a hydraulic drive and transmission rod linkage structure, the clamping mechanism is matched with limiting of a placement frame, insoles can be fixed, dust removal is achieved during grinding, a filter screen is cleaned in a vibration and air injection dual mode during dust removal, blockage is avoided, dust pollution is reduced, the environment friendliness and safety are both achieved, and the practicability is high. And the processing quality and the production stability of the sports insoles are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of sports shoe processing, and particularly relates to a processing device and a production process for a double-sweating and breathable sports shoe. Background Art

[0002] As a professional footwear product that meets people's sports and travel needs, the design and manufacture of sports shoes fully consider the special requirements in the sports scenario. Compared with traditional leather shoes and rubber shoes, the soles of sports shoes adopt special designs and are made of soft and elastic materials. They can not only effectively buffer the impact force generated during exercise and enhance the elastic experience during exercise, but also some have the function of protecting the ankles and reducing the risk of injury. This unique performance advantage makes the production and processing process of sports shoe soles particularly crucial. In the sole production process, after injecting the molten sole material into the mold for molding, it still needs to go through multiple processes such as demolding and finishing to meet the requirements of qualified finished products. In the sole finishing process, removing the burrs and edge materials on the sole surface is an essential step. Currently, the market generally uses the method of manual grinding to process the soles. The operator needs to hold the grinding machine tightly with one hand and fix the sports shoe sole with the other hand, and then grind the sole surface with the handheld device. This traditional operation mode has many disadvantages: First, the operation mode of operating with both hands not only increases the operation difficulty but also prolongs the processing time, affecting production efficiency; Second, a large amount of dust will be generated during the grinding process. Without effective protection measures, the operator is extremely likely to inhale the dust. Long-term exposure to such a working environment may cause health problems such as respiratory diseases; Third, the handheld grinding device is operated in close contact with the sole. If care is not taken, it may easily cause injury to the operator, posing a great safety hazard. Therefore, it is urgent to develop an efficient, safe and environmentally friendly sports shoe sole grinding technology to meet the dual needs of industry development and the health and safety of operators. Summary of the Invention

[0003] Aiming at the deficiencies of the prior art, the present invention provides a processing device and a production process for a double-sweating and breathable sports shoe, which solve the problems put forward in the background art.

[0004] The solutions of the present invention to the above technical problems are as follows: A processing device for a double-sweating and breathable sports shoe includes a first housing and a second housing; A clamping mechanism and a grinding mechanism are provided in the second housing. The clamping mechanism is used for clamping the insole, and the grinding mechanism is used for grinding the insole. A dust removal mechanism, a vibration mechanism and a purging mechanism are provided in the first housing. The dust removal mechanism is used for sucking the powder ground by the grinding mechanism, and the vibration mechanism and the purging mechanism are used for vibrating and purging the inside of the dust removal mechanism.

[0005] On the basis of the above technical solutions, the present invention can be further improved as follows.

[0006] Further, the clamping mechanism includes a placement component, a hydraulic component, a reset component, and a fixing component. The placement component is used for placing the insole, the hydraulic component is used for driving the clamping mechanism to move, the reset component is used for resetting the placement rack, and the fixing component is used for clamping and fixing the insole. Further, the placement component includes a placement box, and a placement rack is provided in the placement box. The placement rack is used for limiting the insole.

[0007] Further, the reset component includes a first guide rod, and a second guide rod is slidably sleeved on the first guide rod. The side end face of the second guide rod is installed in the placement box. The placement box is connected to the placement rack through a reset spring, and the reset spring is sleeved on the first guide rod and the second guide rod. The fixing component includes a fixing frame for clamping the insole. A second transmission rod is provided on the fixing frame through a pin shaft. A third transmission rod and a first transmission rod are provided on the second transmission rod through pin shafts. The first transmission rod is connected to the placement rack, and the third transmission rod is connected to the placement box. A guide groove is formed in the fixing frame, and a limiting rod is sleeved in the guide groove. The limiting rod is installed in the placement box through a limiting frame.

[0008] Further, the hydraulic component includes a hydraulic rod installed in the second housing, and the output end of the hydraulic rod is connected to the clamping mechanism.

[0009] Further, the grinding mechanism includes a driving motor. A bracket is installed on the driving motor, and a grinding disc is provided at the output end of the driving motor. The grinding disc is used for grinding the insole.

[0010] Further, the dust removal mechanism includes a collection component, an air intake component, and an exhaust component. The collection component is used for collecting grinding powder, the air intake component is used for sucking the grinding powder, and the exhaust component is used for sucking the gas in the dust removal box. The collection component includes a dust removal box, and a filter screen is installed in the dust removal box. The filter screen is used for filtering the grinding powder. The air intake component includes an air intake hood, and the air intake hood is connected to the dust removal box through a suction pipe. The air intake hood is installed outside the grinding mechanism. The exhaust component includes an exhaust pipe installed at the side end of the dust removal box, and an exhaust fan is provided in the exhaust pipe.

[0011] Further, the vibration mechanism includes a connection component for connecting the filter screen. The connecting assembly includes a rack rod, which is connected to the output shaft of the hydraulic rod through a bracket, and connecting protrusions are respectively provided on both sides of the rack rod through connecting rods, and the connecting rod is connected to the filter screen. The rack rod is used to drive the connecting protrusions to vibrate and clean the filter screen.

[0012] Furthermore, the purge mechanism includes a blowing assembly and a spraying assembly, wherein the blowing assembly is used to supply air into the spraying assembly, and the spraying assembly is used to clean the filter screen; The air blowing assembly comprises a connecting pipe, the connecting pipe is installed on the dust removal box, an air inlet is provided on the connecting pipe, a piston is provided in the connecting pipe, and the piston is connected to the output shaft of the hydraulic rod through a connecting frame; The spray assembly comprises a fixed pipe, which is installed in the dust removal box, connected to the connecting pipe through an exhaust pipe, and a spray head is installed on the fixed pipe.

[0013] A production process of double perspiration-wicking and breathable sports shoes, comprising the following steps: S1. Place the insole on the placement rack, and the hydraulic rod drives the clamping mechanism to contact and squeeze the grinding disc, driving the transmission rod to link the fixing rack to clamp the insole; S2, the driving motor drives the grinding disc to rotate and grind, and the air intake hood simultaneously sucks the powder, and the gas is discharged by the exhaust fan after being filtered by the filter; S3, when the hydraulic rod drives the clamping mechanism to move, it drives the rack rod to vibrate the filter screen, and at the same time the piston supplies air to blow the filter screen through the nozzle; S4, the hydraulic rod moves in the reverse direction, the reset spring pushes the placement frame to reset, the fixing frame is released and the insole is taken out.

[0014] The present invention provides a processing device and production process of double perspiration-wicking and breathable sports shoes, which have the following beneficial effects: The second shell is responsible for the clamping and grinding of the insole, while the first shell focuses on dust treatment and equipment cleaning. This modular partition design allows each mechanism to focus on a specific function, avoid mutual interference, simplify the internal layout of the equipment, and facilitate operators to quickly locate and maintain. At the same time, the parallel function setting enables the clamping, grinding, dust removal and other processes to be carried out simultaneously, greatly improving the overall production efficiency. The functional designs of the clamping mechanism, grinding mechanism and dust removal mechanism are closely linked. The clamping mechanism firmly fixes the insole, provides a stable processing object for the grinding mechanism, and ensures the grinding accuracy; the dust removal mechanism timely absorbs the powder generated by grinding to prevent the dust from affecting the grinding quality and subsequent processes, and reduces product defects caused by dust adhesion. The maintenance of the dust removal mechanism by the vibration mechanism and the purge mechanism ensures the continuous and stable operation of the dust removal system.

[0015] The dust removal mechanism is set up to effectively collect the dust generated during the grinding process, avoid the dust flying in the working environment, protect the health of the operators, and meet the occupational health and safety standards; the vibration mechanism and the purging mechanism clean and maintain the dust removal system, prevent equipment failures and even potential safety hazards caused by dust accumulation, and ensure the long-term stable operation of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] The drawings described herein are used to provide a further understanding of the present invention, form a part of this application, and the illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation of the present invention.

[0017] In the drawings: Figure 1 is the internal schematic diagram of the present invention; Figure 2 is the external schematic diagram of the present invention; Figure 3 is the installation schematic diagram of the clamping mechanism of the present invention; Figure 4 is the installation schematic diagram of the dust removal box of the present invention; Figure 5 is the sectional view schematic diagram of the dust removal box of the present invention; Figure 6 is the top view schematic diagram of the dust removal box of the present invention; Figure 7 is the present invention Figure 6 the enlarged schematic diagram of A in; Figure 8 is the internal schematic diagram of the placement box of the present invention; Figure 9 is the sectional view schematic diagram of the placement box of the present invention; Figure 10 is the sectional view schematic diagram of the air inlet hood of the present invention; Figure 11 is the sectional view schematic diagram of the connecting pipe of the present invention.

[0018] In the drawings, the list of components represented by each reference numeral is as follows: 1. First housing; 2. Second housing; 3. Clamping mechanism; 301. Hydraulic component; 302. Placement box; 303. Reset component; 304. Fixing component; 305. Placement rack; 306. First guide rod; 307. Second guide rod; 308. Reset spring; 309. First transmission rod; 310. Limit rod; 311. Fixing frame; 312. Limit frame; 313. Guide groove; 314. Second transmission rod; 315. Third transmission rod; 316. Hydraulic rod; 4. Insole; 5. Dust removal mechanism; 501. Dust removal box; 502. Intake component; 503. Intake hood; 504. Discharge component; 505. Discharge pipe; 506. Exhaust fan; 507. Filter screen; 508. Extraction pipe; 6. Grinding mechanism; 601. Driving motor; 602. Grinding disc; 7. Blowing mechanism; 701. Connecting pipe; 702. Intake port; 703. Piston; 704. Connecting frame; 705. Fixed pipe; 706. Nozzle; 707. Exhaust pipe; 8. Vibration mechanism; 801. Rack bar; 802. Connecting rod; 803. Connecting bump. Detailed implementation mode

[0019] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the 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. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.

[0020] Please refer to Figures 1 to 11 As shown, the embodiments provided by the present invention: Embodiment 1: A processing device for a double-sweating and breathable sports shoe, including a first housing 1 and a second housing 2; A clamping mechanism 3 and a grinding mechanism 6 are provided in the second housing 2. The clamping mechanism 3 is used for clamping the insole 4, and the grinding mechanism 6 is used for grinding the insole 4. A dust removal mechanism 5, a vibration mechanism 8 and a blowing mechanism 7 are provided in the first housing 1. The dust removal mechanism 5 is used for sucking the powder ground by the grinding mechanism 6, and the vibration mechanism 8 and the blowing mechanism 7 are used for vibrating and blowing the inside of the dust removal mechanism 5 The clamping mechanism 3 includes a placement component, a hydraulic component 301, a reset component 303 and a fixing component 304. The placement component is used for placing the insole 4, the hydraulic component 301 is used for driving the clamping mechanism 3 to move, the reset component 303 is used for resetting the placement rack 305, and the fixing component 304 is used for clamping and fixing the insole 4; The placement component includes a placement box 302. A placement rack 305 is provided in the placement box 302, and the placement rack 305 is used for limiting the insole 4; The reset assembly 303 includes a first guide rod 306. A second guide rod 307 is slidably sleeved on the first guide rod 306. The side end face of the second guide rod 307 is installed in the placement box 302. The placement box 302 is connected to the placement rack 305 through a reset spring 308. The reset spring 308 is sleeved on the first guide rod 306 and the second guide rod 307; The fixing assembly 304 includes a fixing frame 311. The fixing frame 311 is used for clamping the insole 4. A second transmission rod 314 is provided on the fixing frame 311 through a pin shaft. A third transmission rod 315 and a first transmission rod 309 are provided on the second transmission rod 314 through pin shafts. The first transmission rod 309 is connected to the placement rack 305. The third transmission rod 315 is connected to the placement box 302. A guide groove 313 is formed in the fixing frame 311. A limiting rod 310 is sleeved in the guide groove 313. The limiting rod 310 is installed in the placement box 302 through a limiting frame 312; The hydraulic assembly 301 includes a hydraulic rod 316. The hydraulic rod 316 is installed in the second housing 2. The output end of the hydraulic rod 316 is connected to the clamping mechanism 3; The grinding mechanism 6 includes a drive motor 601. A bracket is installed on the drive motor 601. A grinding disc 602 is provided at the output end of the drive motor 601. The grinding disc 602 is used for grinding the insole 4; The placement component provides a placement basis for the insole 4, the hydraulic component 301 realizes power drive, the reset component 303 ensures that the placement rack 305 can be accurately reset after work, and the fixing component 304 completes the clamping of the insole 4. The placement box 302 provides an installation carrier and a protection space for the placement rack 305 to ensure the stability of the placement rack 305 during the working process. The placement rack 305 limits the insole 4, and its limiting structure can be designed specifically according to the shape and size of the insole 4. For example, grooves or protrusions with specific shapes are set so that the insole 4 can be accurately placed at the specified position. This not only ensures the position accuracy of the insole 4 in subsequent processes such as grinding and clamping, reducing processing errors caused by position deviation, but also plays a preliminary fixing role during the placement process, facilitating the subsequent fixing component 304 to further clamp the insole 4. For the reset component 303, the sliding socket design of the first guide rod 306 and the second guide rod 307 provides precise guidance for the reset movement of the placement rack 305, preventing the placement rack 305 from shifting or jamming during the reset process. The reset spring 308 is sleeved on the two guide rods and can provide a reset force to ensure that the placement rack 305 returns to its initial position, preparing for the next placement of the insole 4 and shortening the production cycle. In the fixing component 304, the fixing frame 311 is connected to the second transmission rod 314, the third transmission rod 315, and the first transmission rod 309 through pins to form a stable transmission system. When the hydraulic component 301 drives the placement rack 305 to move and the insole 4 is squeezed when it contacts the grinding disc 602, the placement rack 305 drives the second transmission rod 314 to rotate through the first transmission rod 309, and then the fixing frame 311 moves inward to clamp the insole 4. The third transmission rod 315 is connected to the placement box 302 to play a role of limiting and supporting. The cooperation between the guide groove 313 and the limiting rod 310 further limits the movement trajectory of the fixing frame 311 to ensure that it closes and clamps the insole 4. The hydraulic rod 316 is installed in the second housing 2, and its output end is connected to the clamping mechanism 3 to provide power for the clamping mechanism 3. So that the clamping mechanism 3 can reach the grinding position to cooperate for clamping and grinding. The grinding disc 602 connected to its output end can rotate driven by the drive motor 601 to grind the surface of the insole 4.

[0021] Embodiment 2: In order to collect and handle the powder and dust generated during grinding, exemplarily, as Figures 1 to 6 shown, the present invention further includes: The dust removal mechanism 5 includes a collection component, an air intake component 502, and an exhaust component 504. The collection component is used to collect grinding powder, the air intake component 502 is used to suction the grinding powder, and the exhaust component 504 is used to suction the gas in the dust removal box 501. The collection component includes a dust removal box 501, and a filter screen 507 is installed in the dust removal box 501. The filter screen 507 is used to filter the grinding powder; The air intake assembly 502 includes an air intake cover 503, which is connected to the dust removal box 501 through an extraction pipe 508, and the air intake cover 503 is installed on the outside of the grinding mechanism 6; The discharge assembly 504 includes a discharge pipe 505, which is installed at the side end of the dust removal box 501, and an exhaust fan 506 is provided in the discharge pipe 505; The dust box 501 in the collection component provides a storage space for the entire dust removal system. The filter 507 installed inside can filter the powder generated during the grinding process, trap the dust in the dust box 501, prevent the dust from spreading into the working environment, protect the health of the operator, and prevent the dust from polluting and damaging other equipment. The air intake hood 503 of the air intake component 502 is installed on the outside of the grinding mechanism 6. Its position design is optimized to be as close to the grinding area as possible to ensure that the powder generated can be inhaled when the grinding disc 602 is working. It is connected to the dust box 501 through the extraction pipe 508, and the air flow in the pipeline is used to transport the powder to the dust box 501, ensuring the timeliness and efficiency of dust collection. The discharge pipe 505 in the discharge component 504 is installed at the side end of the dust box 501, and the internal exhaust fan 506 provides power to form a negative pressure environment in the dust box 501, so that dust can be inhaled and the filtered gas can be discharged.

[0022] Embodiment 3: In order to clean the filter position when collecting dust, to avoid blockage and affect reuse, for example, Figures 1 to 11 As shown, the present invention also includes: The vibration mechanism 8 includes a connection assembly, and the connection assembly is used to connect the filter 507; The connecting assembly includes a rack rod 801, which is connected to the output shaft of the hydraulic rod 316 through a bracket, and connecting protrusions 803 are provided on both sides of the rack rod 801 through connecting rods 802, and the connecting rods 802 are connected to the filter screen 507. The rack rod 801 is used to drive the connecting protrusions 803 to vibrate and clean the filter screen 507; The purge mechanism 7 includes a blowing assembly and a spraying assembly, wherein the blowing assembly is used to supply air to the spraying assembly, and the spraying assembly is used to clean the filter 507; The air blowing assembly includes a connecting pipe 701, which is installed on the dust removal box 501, and an air inlet 702 is provided on the connecting pipe 701. A piston 703 is provided in the connecting pipe 701, and the piston 703 is connected to the output shaft of the hydraulic rod 316 through a connecting frame 704; The spray assembly includes a fixed pipe 705, which is installed in the dust removal box 501. The fixed pipe 705 is connected to the connecting pipe 701 through an exhaust pipe 707. A spray head 706 is installed on the fixed pipe 705. The connecting component connects the vibration mechanism 8 with the filter screen 507. The rack bar 801 is connected to the output shaft of the hydraulic rod 316 through a bracket, realizing the linkage between the vibration mechanism 8 and the clamping mechanism 3. When the hydraulic rod 316 drives the clamping mechanism 3 to move, the rack bar 801 moves accordingly. The connecting convex block 803 is driven to vibrate through the connecting rod 802, thereby causing the filter screen 507 to vibrate. The vibration cleaning method can effectively shake off the dust attached to the surface of the filter screen 507, prevent the filter screen 507 from being blocked due to dust accumulation, and ensure the filtering effect of the filter screen 507. The air blowing component and the jet blowing component cooperate with each other to form a set of efficient filter screen 507 cleaning systems. The piston 703 in the air blowing component is connected to the output shaft of the hydraulic rod 316 through the connecting frame 704. When the hydraulic rod 316 moves, the piston 703 reciprocates in the connecting pipe 701, inhaling and compressing the outside air from the air inlet 702 to provide the air source for the jet blowing component. The fixed pipe 705 of the jet blowing component is installed in the dust removal box 501 and is connected to the connecting pipe 701 through the exhaust pipe 707. The compressed air is transported to the fixed pipe 705 through the exhaust pipe 707 and then sprayed onto the filter screen 507 by the nozzle 706. Compared with simple vibration cleaning, the air flow blowing can penetrate into the gaps of the filter screen 507 to remove the fine dust that is difficult to remove by vibration, realizing the deep cleaning of the filter screen 507.

[0023] Embodiment 4: As Figures 1 to 11 shown, an embodiment provided by the present invention: A production process of a double-sweating breathable sports shoe includes the following steps: S1. Place the insole 4 on the placement rack 305. The hydraulic rod 316 drives the clamping mechanism 3 to move. When the insole 4 contacts the grinding disc 602 and is squeezed, the placement rack 305 drives the second transmission rod 314 to rotate through the first transmission rod 309, and then the fixed frame 311 moves inward to clamp the insole 4. At the same time, the drive motor 601 drives the grinding disc 602 to rotate to polish the surface of the insole 4; S2. The air intake hood 503 is installed outside the grinding mechanism 6, close to the grinding area. When the grinding disc 602 works, the generated powder is inhaled and connected to the dust removal box 501 through the extraction pipe 508. The air flow in the pipeline transports the powder to the dust removal box 501. The filter screen 507 in the dust removal box 501 filters the grinding powder and intercepts it in the dust removal box 501. The exhaust fan 506 in the discharge pipe 505 provides power to form a negative pressure environment in the dust removal box 501, realizing the inhalation of dust and the discharge of filtered gas; S3, when the hydraulic rod 316 drives the clamping mechanism 3 to move, the rack rod 801 connected to it moves accordingly, and drives the connecting protrusion 803 to vibrate through the connecting rod 802, thereby causing the filter 507 to vibrate and shake off the surface dust. At the same time, when the hydraulic rod 316 moves, the piston 703 reciprocates in the connecting pipe 701, sucking in and compressing the outside air from the air inlet 702 to provide an air source for the spraying component. The compressed air is transported to the fixed pipe 705 through the exhaust pipe 707, and then sprayed to the filter 507 by the nozzle 706, penetrating into the gap of the filter 507 to remove fine dust; S4. First, place the insole 4 on the placement rack 305, the hydraulic rod 316 drives the clamping mechanism 3 to clamp the insole 4, the driving motor 601 drives the grinding disc 602 to grind, and the air intake hood 503 simultaneously sucks the powder for filtering and discharge; then the hydraulic rod 316 drives the clamping mechanism 3 to move, and the vibration mechanism 8 and the purge mechanism 7 are linked to clean the filter 507; finally, the hydraulic rod 316 moves in the opposite direction, the reset spring 308 pushes the placement rack 305 to reset, the fixing frame 311 is released, and the processed insole 4 is taken out.

[0024] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It is obvious to those skilled in the art that the present invention is not limited to the details of the above exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or basic features of the present invention. Therefore, no matter from which point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the attached claims rather than the above description, and it is intended that all changes falling within the meaning and scope of the equivalent elements of the claims are included in the present invention. Any figure mark in the claims should not be regarded as limiting the claims involved.

[0025] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

Claims

1. A processing device for a dual-sweating and breathable sports shoe, comprising a first housing (1) and a second housing (2), characterized in that: A clamping mechanism (3) and a grinding mechanism (6) are provided in the second housing (2). The clamping mechanism (3) is used for clamping the insole (4), and the grinding mechanism (6) is used for grinding the insole (4). A dust removal mechanism (5), a vibration mechanism (8) and a purging mechanism (7) are provided in the first housing (1). The dust removal mechanism (5) is used for sucking the powder ground by the grinding mechanism (6), and the vibration mechanism (8) and the purging mechanism (7) are used for vibrating and purging the inside of the dust removal mechanism (5).

2. The processing device of a dual-sweating and breathable sports shoe according to claim 1, characterized in that: The clamping mechanism (3) includes a placement assembly, a hydraulic assembly (301), a reset assembly (303) and a fixing assembly (304). The placement assembly is used for placing the insole (4), the hydraulic assembly (301) is used for driving the clamping mechanism (3) to move, the reset assembly (303) is used for resetting the placement rack (305), and the fixing assembly (304) is used for clamping and fixing the insole (4); The placement assembly includes a placement box (302). A placement rack (305) is provided in the placement box (302), and the placement rack (305) is used for limiting the insole (4).

3. The processing device for a dual-sweating and breathable sports shoe according to claim 2, characterized in that: The reset assembly (303) includes a first guide rod (306). A second guide rod (307) is slidably sleeved on the first guide rod (306). The side end face of the second guide rod (307) is installed in the placement box (302). The placement box (302) is connected to the placement rack (305) through a reset spring (308), and the reset spring (308) is sleeved on the first guide rod (306) and the second guide rod (307); The fixing assembly (304) includes a fixing frame (311). The fixing frame (311) is used for clamping the insole (4). A second transmission rod (314) is provided on the fixing frame (311) through a pin shaft. A third transmission rod (315) and a first transmission rod (309) are provided on the second transmission rod (314) through a pin shaft. The first transmission rod (309) is connected to the placement rack (305), and the third transmission rod (315) is connected to the placement box (302). A guide groove (313) is formed in the fixing frame (311), and a limiting rod (310) is sleeved in the guide groove (313). The limiting rod (310) is installed in the placement box (302) through a limiting frame (312).

4. The processing device of a dual-sweating and breathable sports shoe according to claim 3, characterized in that: The hydraulic assembly (301) includes a hydraulic rod (316). The hydraulic rod (316) is installed in the second housing (2), and the output end of the hydraulic rod (316) is connected to the clamping mechanism (3).

5. The processing device of a dual-sweating and breathable sports shoe according to claim 1, characterized in that: The grinding mechanism (6) includes a driving motor (601). A bracket is installed on the driving motor (601), and a grinding disc (602) is provided at the output end of the driving motor (601). The grinding disc (602) is used for grinding the insole (4).

6. The processing device for a dual-sweating and breathable sports shoe according to claim 1, wherein: The dust removal mechanism (5) comprises a collection component, an air intake component (502) and an exhaust component (504), wherein the collection component is used to collect grinding powder, the air intake component (502) is used to suck the grinding powder, and the exhaust component (504) is used to suck the gas in the dust removal box (501). The collecting assembly comprises a dust removal box (501), a filter screen (507) is installed in the dust removal box (501), and the filter screen (507) is used to filter the grinding powder; The air intake assembly (502) comprises an air intake hood (503), the air intake hood (503) being connected to the dust removal box (501) via an extraction pipe (508), and the air intake hood (503) being installed on the outside of the grinding mechanism (6); The exhaust assembly (504) comprises an exhaust pipe (505), wherein the exhaust pipe (505) is installed at a side end of the dust removal box (501), and an exhaust fan (506) is arranged inside the exhaust pipe (505).

7. The processing device of a dual-sweating breathable sports shoe according to claim 6, characterized in that: The vibration mechanism (8) comprises a connection assembly, wherein the connection assembly is used to connect to the filter screen (507); The connecting assembly comprises a rack rod (801), the rack rod (801) being connected to the output shaft of the hydraulic rod (316) via a bracket, connecting protrusions (803) being provided on both sides of the rack rod (801) via connecting rods (802), the connecting rods (802) being connected to the filter screen (507), and the rack rod (801) being used to drive the connecting protrusions (803) to vibrate and clean the filter screen (507).

8. The processing device of a double-sweating and breathable sports shoe according to claim 1, characterized in that: The purge mechanism (7) comprises an air blowing component and a spraying component, the air blowing component is used to supply air into the spraying component, and the spraying component is used to clean the filter screen (507); The air blowing assembly comprises a connecting pipe (701), the connecting pipe (701) being mounted on the dust removal box (501), the connecting pipe (701) being provided with an air inlet (702), the connecting pipe (701) being provided with a piston (703), the piston (703) being connected to an output shaft of a hydraulic rod (316) via a connecting frame (704); The spray assembly comprises a fixed pipe (705), the fixed pipe (705) is installed in the dust removal box (501), the fixed pipe (705) is connected to the connecting pipe (701) via an exhaust pipe (707), and a spray head (706) is installed on the fixed pipe (705).

9. The production process of a dual-sweating breathable sports shoe is characterized in that, The following steps are involved: S1, placing the insole (4) on the placement frame (305), the hydraulic rod (316) drives the clamping mechanism (3), and drives the transmission rod to move in conjunction with the fixing frame (311) to clamp the insole by contacting and squeezing the grinding disc (602); S2, the driving motor (601) drives the grinding disc (602) to rotate and grind, and the air intake hood (503) simultaneously sucks the powder, and the gas is discharged by the exhaust fan (506) after being filtered by the filter screen (507); S3, the hydraulic rod (316) drives the clamping mechanism (3) to move, thereby driving the rack rod (801) to vibrate the filter screen (507), and at the same time the piston (703) supplies air to blow the filter screen through the nozzle (706); S4. The hydraulic rod (316) moves in the reverse direction, and the return spring (308) pushes the placement rack (305) to reset. The fixing rack (311) releases and takes out the insole (4).