Safety shoe sole cooling mechanism

By designing a cooling mechanism for the sole of safety shoes, and employing mechanized clamping, immersion in cooling water tanks, and air blowing components, the problem of low efficiency in manual operation in existing technologies has been solved, achieving automation of rubber cooling, reducing labor costs, and improving efficiency.

CN223644063UActive Publication Date: 2025-12-09WENZHOU BAOHAN SHOES CO LTD
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Patent Information

Application Number
CN202520017353.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-06
Publication Date
2025-12-09
Estimated Expiration
2035-01-06

AI Technical Summary

Technical Problem

In the current production process of safety shoe soles, the rubber cooling process relies on manual operation, resulting in a large workload, high labor costs, and low efficiency.

Method used

Design a cooling mechanism for the sole of a safety shoe, which uses mechanized clamping, immersion in a cooling water tank, blowing components and discharge station to automate the cooling of rubber by replacing manual operation with mechanical means.

Benefits of technology

It reduced manual workload, lowered labor costs, and improved work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a safety shoe sole cooling mechanism which comprises a machine frame, a clamping assembly used for clamping rubber and a driving assembly driving the clamping assembly to move are arranged on the machine frame in a reciprocating sliding mode, and a feeding station, a cooling water tank, an air blowing assembly and a discharging station are sequentially arranged on the machine frame along the movement path of the clamping assembly. The clamping assembly is provided with a deflection structure, and the deflection structure enables rubber on the clamping assembly to be immersed into the cooling water tank. The utility model has the following advantages and effects: a mechanical mode is used for replacing a manual mode, so that the manual workload is reduced, the labor cost is reduced, and the working efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to a safety shoe processing equipment, and more particularly to a safety shoe sole cooling mechanism. Background Technology

[0002] Safety shoes are a type of foot protection equipment, primarily used in various work environments to protect the wearer's feet and legs from foreseeable injuries. There are many types of safety shoes, including but not limited to: impact-resistant safety shoes, puncture-resistant safety shoes, anti-static safety shoes, and oil-resistant safety shoes. These different types of safety shoes are suitable for various workplaces and environments, such as metallurgy, mining, forestry, ports, loading and unloading, construction, petroleum, and chemical industries.

[0003] To increase the hardness of the rubber in safety shoe soles during production, the high-temperature rubber after grinding is typically rapidly immersed in water to cool and solidify. However, current production methods involve manually immersing the ground rubber in a cooling water tank, then removing it and drying its surface before proceeding to the next processing step. These existing processes are primarily manual, resulting in high workload, labor costs, and inefficiency, failing to meet the future development needs of enterprises. This invention addresses these problems. Utility Model Content

[0004] The purpose of this invention is to provide a cooling mechanism for the sole of a safety shoe. This mechanism replaces manual labor with mechanical methods, thereby reducing workload, lowering labor costs, and improving work efficiency.

[0005] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a safety shoe sole cooling mechanism, including a frame, on which a clamping component for clamping rubber and a driving component for driving the clamping component to move are reciprocally slidably arranged, and along the movement path of the clamping component, a feeding station, a cooling water tank, a blowing component and a discharging station are sequentially arranged on the frame, and the clamping component is provided with a deflection structure, which allows the rubber on the clamping component to be immersed in the cooling water tank.

[0006] By adopting the above technical solution, the rubber after grinding is manually installed onto the clamping assembly at the feeding station. A drive assembly then drives the clamping assembly to sequentially transport the rubber through a cooling water tank, an air blowing assembly, and the discharge station. When the rubber on the clamping assembly reaches the cooling water tank, it is deflected downwards by a deflection structure, allowing the clamped rubber to be immersed in the cooling water for cooling. When the rubber is conveyed into the air blowing assembly, the air blowing removes moisture from the rubber surface. When the rubber reaches the discharge station, it is manually removed from the clamping assembly, thus completing the cooling and wiping process. This structure mechanically replaces manual labor, thereby reducing workload, lowering labor costs, and improving work efficiency.

[0007] Further configured as follows: including a slide rod fixedly mounted on the frame and extending along the sliding direction of the clamping assembly, and a transmission rod slidably mounted on the slide rod; the clamping assembly includes a clamping rod and a plurality of clamps mounted on the clamping rod; the plurality of clamps are arranged horizontally along the sliding direction perpendicular to the clamping assembly; and a plurality of positioning pins are distributed on the two clamping surfaces of each clamp.

[0008] By adopting the above technical solution, the rubber is clamped and fixed by the clamp. During the clamping process, the clamp can drive the positioning pin to penetrate into the rubber. The fixing force between the rubber and the clamp comes from the material strength of the positioning pin, thereby ensuring the stability of the rubber clamping during transmission and making the structure more reliable and practical.

[0009] The configuration is further defined as follows: it includes slide blocks disposed at both ends of the conveyor rod and slidably engaged with the slide block, wherein the conveyor rod and the slide blocks are rotatably engaged, and the deflection structure includes multiple deflection rods, one end of which is connected to the conveyor rod and the other end of which is connected to the clamping rod, wherein the multiple deflection rods are arranged horizontally along the sliding direction perpendicular to the clamping assembly.

[0010] By adopting the above technical solution, the rotating transmission rod structure, in conjunction with the deflection rod, allows the transmission rod to deflect downwards under the action of the deflection rod when it moves to the position of the cooling water tank, thereby achieving the purpose of cooling the clamped rubber. The structure is simple and highly reliable.

[0011] The blowing assembly is further configured as follows: the blowing assembly includes a housing disposed on the frame, an upper blowing pipe and a lower blowing pipe disposed within the housing, and a transmission channel formed between the upper blowing pipe and the lower blowing pipe. A placement mesh plate for placing rubber is provided between the upper blowing pipe and the lower blowing pipe. Several nozzles are distributed on both the upper blowing pipe and the lower blowing pipe.

[0012] By adopting the above technical solution, the clamping component holds the rubber and drags it over the blowing component from above the placement mesh plate. The upper blowing pipe, the lower blowing pipe and the nozzle work together to blow away the moisture on the surface of the rubber, thereby achieving the purpose of removing moisture from the surface of the rubber.

[0013] The configuration is further defined as follows: the conveyor rod is provided with a rotating block that rotates with the conveyor rod; the slide is provided with a support block located on the side of the conveyor rod near the discharge station, which is located on the rotation path of the rotating block and is used for placing the rotating block; when the rotating block is placed above the support block, the deflection rod is in a placed state to pass through the transmission channel.

[0014] By adopting the above technical solution, the conveyor rod, in conjunction with the deflection rod, drags the clamping assembly and the rubber on the clamping assembly in an inclined conveying state towards the loading station. After the clamping assembly is conveyed to the unloading station in this conveying state, the rubber is manually removed from the clamping assembly. Then, the conveyor rod is manually rotated so that the rotating block is placed against the support block, so that the clamping assembly can be smoothly conveyed through the conveying channel and moved back to the loading station, thereby avoiding structural interference and ensuring the feasibility of the structure.

[0015] The drive assembly is further configured to include two pulleys rotatably mounted on the frame, a conveyor belt fitted onto the two pulleys, and a drive motor that drives one of the pulleys to rotate; the slide is connected to the conveyor belt.

[0016] By adopting the above technical solution, the drive motor, together with two pulleys, drives the conveyor belt and the slide to move, thereby realizing the reciprocating motion of the slide and achieving the driving purpose.

[0017] In summary, this utility model has the following beneficial effects: it replaces manual labor with mechanical means, thereby reducing manual workload, lowering labor costs, and improving work efficiency. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of an embodiment;

[0019] Figure 2 This is a cross-sectional view of an embodiment;

[0020] Figure 3 This is a partial structural diagram of an embodiment;

[0021] Figure 4 This is a partial exploded view of an embodiment;

[0022] Figure 5 This is a partial perspective view of an embodiment.

[0023] In the diagram: 1. Frame; 2. Clamping assembly; 21. Clamping rod; 22. Clamp; 3. Drive assembly; 31. Pulley; 32. Conveyor belt; 33. Drive motor; 4. Loading station; 5. Cooling water tank; 6. Blowing assembly; 61. Housing; 62. Upper blower pipe; 63. Lower blower pipe; 64. Conveying channel; 7. Discharge station; 8. Slide bar; 9. Conveying rod; 10. Positioning pin; 11. Slide seat; 13. Deflecting rod; 14. Placement plate; 15. Nozzle; 16. Rotating block; 17. Support block. Detailed Implementation

[0024] The present invention will be further described in detail below with reference to the accompanying drawings.

[0025] refer to Figures 1 to 5 A safety shoe sole cooling mechanism includes a frame 1. A clamping assembly 2 for clamping rubber and a driving assembly 3 for driving the clamping assembly 2 are reciprocally slidably mounted on the frame 1. Along the movement path of the clamping assembly 2, a loading station 4, a cooling water tank 5, a blowing assembly 6, and a discharging station 7 are sequentially arranged on the frame 1. The clamping assembly 2 is equipped with a deflection structure that allows the rubber on the clamping assembly 2 to be immersed in the cooling water tank 5. The loading station 4, the discharging station 7, and the cooling water tank 5 are all fixedly mounted on the frame 1.

[0026] The clamping assembly 2 includes a slide rod 8 fixedly mounted on the frame 1 and extending along the sliding direction of the clamping assembly 2, and a conveyor rod 9 slidably mounted on the slide rod 8. Both ends of the conveyor rod 9 are rotatably mounted with slide seats 11, which facilitate sliding engagement between the slide rods 8. The clamping assembly 2 includes a clamping rod 21 and multiple clamps 22 fixedly mounted on the clamping rod 21. The multiple clamps 22 are arranged horizontally along the sliding direction perpendicular to the clamping assembly 2, and several positioning pins 10 are fixedly mounted on both clamping surfaces of each clamp 22. The deflection structure includes multiple deflection rods 13, one end of which is fixedly connected to the conveyor rod 9 and the other end of which is fixedly connected to the clamping rod 21. The multiple deflection rods 13 are arranged horizontally along the sliding direction perpendicular to the clamping assembly 2.

[0027] The blowing assembly 6 includes a housing 61 fixedly mounted on the frame 1, an upper blowing pipe 62 and a lower blowing pipe 63 fixedly mounted inside the housing 61, and a transmission channel 64 formed between the upper blowing pipe 62 and the lower blowing pipe 63. Multiple upper blowing pipes 62 and lower blowing pipes 63 are arranged along the rubber transmission path, and a placement mesh plate 14 for placing the rubber is provided between them. The placement mesh plate 14 is fixedly mounted on the inner wall of the housing 61 and is specifically a perforated metal mesh plate. Several nozzles 15 are fixedly distributed on both the upper blowing pipe 62 and the lower blowing pipe 63. Both the upper blowing pipe 62 and the lower blowing pipe 63 are supplied with air by external equipment.

[0028] A rotating block 16 is fixedly mounted on the conveyor rod 9, rotating with the conveyor rod 9. A support block 17 is fixedly mounted on the slide block 11 on the side of the conveyor rod 9 near the discharge station 7, located on the rotation path of the rotating block 16 and for placing the rotating block 16. When the rotating block 16 is placed above the support block 17, the deflection rod 13 is in a placed state to pass through the transmission channel 64. The drive assembly 3 includes two pulleys 31 rotatably mounted on the frame 1 via a rotating shaft, a conveyor belt 32 fitted onto the two pulleys 31, and a drive motor 33 that drives one of the pulleys 31 to rotate. The slide block 11 is fixedly connected to the conveyor belt 32. The drive motor 33 is fixedly mounted on the frame 1, and its output shaft is fixedly connected to the rotating shaft of one of the pulleys 31 to drive the pulley 31 to rotate.

[0029] This specific embodiment is merely an explanation of the present utility model and is not intended to limit the present utility model. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but as long as they are within the scope of the claims of the present utility model, they are protected by patent law.

Claims

1. A cooling mechanism for the sole of a safety shoe, characterized in that: The machine includes a frame (1), on which a clamping assembly (2) for clamping rubber and a driving assembly (3) for driving the clamping assembly (2) to move are reciprocally slidably arranged. Along the movement path of the clamping assembly (2), the frame (1) is provided with a feeding station (4), a cooling water tank (5), a blowing assembly (6) and a discharging station (7). The clamping assembly (2) is provided with a deflection structure, which allows the rubber on the clamping assembly (2) to be immersed in the cooling water tank (5).

2. The safety shoe sole cooling mechanism according to claim 1, characterized in that: The clamping assembly (2) includes a slide rod (8) fixedly mounted on the frame (1) and extending along the sliding direction of the clamping assembly (2) and a transmission rod (9) slidably mounted on the slide rod (8). The clamping assembly (2) includes a clamping rod (21) and a plurality of clamps (22) mounted on the clamping rod (21). The plurality of clamps (22) are arranged horizontally along the sliding direction perpendicular to the clamping assembly (2). Each clamp (22) has a plurality of positioning pins (10) distributed on its two clamping surfaces.

3. The safety shoe sole cooling mechanism according to claim 2, characterized in that: The system includes slide blocks (11) located at both ends of the conveyor rod (9) and slidingly engaged with the slide rod (8). The conveyor rod (9) and the slide blocks (11) are rotatably engaged. The deflection structure includes multiple deflection rods (13) with one end connected to the conveyor rod (9) and the other end connected to the clamping rod (21). The multiple deflection rods (13) are arranged horizontally along the sliding direction perpendicular to the clamping assembly (2).

4. The safety shoe sole cooling mechanism according to claim 3, characterized in that: The blowing assembly (6) includes a housing (61) disposed on the frame (1), an upper blowing pipe (62) and a lower blowing pipe (63) disposed in the housing (61), and a transmission channel (64) formed between the upper blowing pipe (62) and the lower blowing pipe (63). A placement mesh plate (14) for rubber transmission and placement is provided between the upper blowing pipe (62) and the lower blowing pipe (63). A plurality of nozzles (15) are distributed on both the upper blowing pipe (62) and the lower blowing pipe (63).

5. The safety shoe sole cooling mechanism according to claim 4, characterized in that: The conveyor rod (9) is provided with a rotating block (16) that rotates with the conveyor rod (9). The slide block (11) is provided with a support block (17) on the side of the conveyor rod (9) near the discharge station (7) and located on the rotation path of the rotating block (16) for placing the rotating block (16). When the rotating block (16) is placed above the support block (17), the deflection rod (13) is in a placed state to pass through the transmission channel (64).

6. The safety shoe sole cooling mechanism according to claim 3, characterized in that: The drive assembly (3) includes two pulleys (31) rotatably mounted on the frame (1), a conveyor belt (32) fitted onto the two pulleys (31), and a drive motor (33) that drives one of the pulleys (31) to rotate. The slide (11) is connected to the conveyor belt (32).