Cooling device for high-performance fiber production
By designing a cooling device with a combination of multiple air ducts and nozzles and a support plate and roller structure, the problems of uneven cooling and low efficiency of fiberboard were solved, achieving efficient and uniform cooling and improving the quality and production efficiency of fiberboard.
Patent Information
- Application Number
- CN202422957186.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-02
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2034-12-02
AI Technical Summary
In the existing fiberboard production process, uneven cooling and low efficiency lead to quality errors and wasted time.
Design a cooling device that uses a combination of multiple curved air ducts and nozzles, combined with a support plate and a circular roller structure, to achieve all-round air cooling. A small air cooler provides cold air, which is then used to uniformly cool the fiberboard through the air supply pipes and nozzles.
It improves the uniformity and efficiency of fiberboard cooling, reduces cooling time, and ensures the quality and production efficiency of fiberboard.
Smart Images

Figure CN223671673U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to high performance fiber technical field especially relates to a cooling device for high performance fiber production. BACKGROUND
[0002] Shoe fiber boards are basically high performance fiber boards, and the main features of this type of fiber board are:
[0003] Support and stability: shoe fiber boards are often used in shoe soles, heels and inner lining parts, providing support and stability, helping to maintain the shape and structure of the shoes;
[0004] Comfort: the softness and elasticity of the fiber board can make the shoes more comfortable and reduce foot fatigue;
[0005] Environmental protection: many shoe fiber boards use renewable resources and environmentally friendly production processes, meeting the needs of modern consumers for environmentally friendly products;
[0006] Durability: high-quality shoe fiber boards have excellent wear resistance and anti-aging performance, extending the service life of the shoes.
[0007] At present, during the production of fiber boards, after the hot pressing link, due to the relatively dense fiber board, although the surface temperature will gradually cool down after being taken out from the hot press, but the actual core temperature is still retained, if not cooled, there will be quality errors in the subsequent correction or packaging link.
[0008] However, in most cases, in order to speed up the cooling effect, air dryers are used, but due to the single air supply direction of the air dryer, the uniformity and cooling efficiency of the fiber board during cooling cannot be guaranteed, and a lot of time is still consumed during the cooling process. UTILITY MODEL CONTENTS
[0009] The utility model aims at solving the above-mentioned shortcomings in the prior art and provides a cooling device for high performance fiber production.
[0010] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme:
[0011] A cooling device for high performance fiber production is designed, which comprises a base, the upper end of the base is fixed with a bottom foot, the bottom feet are symmetrically distributed on both sides of the base, the upper end of the two bottom feet is fixed with a cylinder, and the cylinder is parallel to the base;
[0012] The outer wall of the cylinder is provided with a plurality of air pipes, the inner side of the air pipe is provided with an air nozzle, and the connection position of the air nozzle and the air pipe is fixed by welding, the surface of the air nozzle penetrates the cylinder wall, and the connection position of the air nozzle and the cylinder is fixed by welding, and the outer side of the air pipe is provided with an air inlet at one end, and the connection position of the air inlet and the air pipe is fixed by welding.
[0013] The upper end of the base is provided with a fan, the air inlet end of the fan is fixed with a gas supply pipe by flange, and the side of the gas supply pipe is provided with a plurality of air outlets, and the air outlets and the air inlets are one-to-one corresponding and connected by flanges.
[0014] In detail, the air pipe is a curved structure, and the two end port positions are closed.
[0015] In detail, the number of air pipes is at least five, and they are arranged equidistantly along the horizontal direction.
[0016] In detail, the number of air nozzles is at least five, and they are arranged equi-arc length along the inner side of the curved surface of the air pipe.
[0017] In detail, the inside of the cylinder is provided with a support plate, and the support plate is arranged parallel to the base, and the lower end of the support plate is fixed with a support column on both sides, and the lower end of the support column is fixed to the base by screws.
[0018] In detail, the inside of the support plate is provided with an embedded hole, and the inner wall of the embedded hole is provided with a bearing on both sides, and the connection position of the outer ring wall of the bearing and the support plate is fixed by welding, and the inner ring wall of the bearing is provided with a shaft.
[0019] In detail, the surface of the shaft is fixed with a round roller, and the two sides of the round roller are tightly attached to the limiting disc of the ring structure, and the limiting disc is fixed with the surface of the shaft.
[0020] The design scheme of the utility model has the beneficial effects in the application process:
[0021] 1. By arranging the cylinder, a plurality of air pipes cooperate with the air nozzle, which can be installed side by side on the cylinder. When the fan provides airflow, the airflow is transported through the gas supply pipe, so that it can enter each air pipe and be blown out through the air nozzle. The airflow can pass through the cylinder, and the fiber plate arranged in the cylinder can be cooled. The air blowing in multiple directions up and down the air nozzle can improve the air cooling effect of the fiber plate.
[0022] 2. The support plate can be used for installation through the cylinder, and multiple rollers are set on the support plate. When the fiberboard needs to be cooled, it can be better placed. When it is pushed into the cylinder, the rotation of the rollers can reduce the resistance of pushing, making it easier for workers to pick up and feed materials. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0024] Figure 2 This is a schematic diagram of the support plate part of this utility model;
[0025] Figure 3 This is a schematic diagram of the circular roller part of this utility model;
[0026] Figure 4 This is an enlarged schematic diagram of point a in this utility model.
[0027] In the diagram: 10. Base; 11. Foot; 12. Cylinder; 13. Air duct; 14. Air nozzle; 15. Air inlet; 16. Fan; 17. Air supply pipe; 20. Support plate; 21. Column; 22. Bearing; 23. Shaft; 24. Circular roller; 25. Limiting plate. Detailed Implementation
[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0029] Reference Figures 1-4 A cooling device for high-performance fiber production includes a base 10, with feet 11 fixed to the upper end of the base 10 and the feet 11 being symmetrically distributed on both sides of the base 10. A cylinder 12 is fixed to the upper end of the two feet 11 and is arranged parallel to the base 10.
[0030] The outer wall of the cylinder 12 is provided with several air ducts 13. Air nozzles 14 are provided through the inner side of the air ducts 13, and the connection between the air nozzles 14 and the air ducts 13 is fixed by welding. The surface of the air nozzles 14 penetrates the cylinder wall of the cylinder 12, and the connection between the air nozzles 14 and the cylinder 12 is fixed by welding. An air inlet 15 is provided through one end of the outer side of the air duct 13, and the connection between the air inlet 15 and the air duct 13 is fixed by welding.
[0031] A fan 16 is installed on one side of the upper end of the base 10. An air supply pipe 17 is fixed to the air inlet end of the fan 16 through a flange. Several air outlets are distributed on one side of the air supply pipe 17, and the positions of the air outlets and the air inlet 15 correspond one-to-one and are connected to each other through flanges.
[0032] The air blower 16 is a small air cooler, which generally adopts the principle of evaporative cooling, that is, absorbing heat through the evaporation of water to reduce the temperature of the air. Inside the air cooler, there is a wet cooling pad or evaporator. When the external air passes through these wet components, the evaporation process of water will absorb the heat in the air, thereby cooling the air.
[0033] Further, the air duct 13 is in a curved shape, and the positions of the two ends of the ports are closed, ensuring that the air in the air duct 13 can be stably blown out through the position of the air nozzle 14. The shape of the air duct 13 can ensure that the air nozzle 14 can blow air up and down to cool the fiber board.
[0034] Further, the number of air ducts 13 is at least five, and they are arranged equidistantly along the horizontal direction. The arrangement of multiple air ducts 13 at different positions can improve the comprehensiveness of air flow contact with the fiber board and improve the cooling efficiency of the fiber board.
[0035] Further, the number of air nozzles 14 is at least five, and they are arranged equi-arc length along the inner side of the curved surface of the air duct 13. The annular distribution of the air nozzles 14 can better cool the fiber board by blowing air.
[0036] Further, the inside of the cylinder 12 is provided with a support plate 20, which is arranged parallel to the base 10. The lower ends of the two sides of the support plate 20 are fixed with support columns 21, and the lower ends of the support columns 21 are fixed with the base 10 by screws, ensuring the stability of the support plate 20 after penetrating the cylinder 12.
[0037] Further, the inside of the support plate 20 is provided with an embedded hole, and the inner walls of the two sides of the embedded hole are provided with bearings 22. The outer ring wall of the bearing 22 is fixed by welding at the joint position with the support plate 20, and the inner ring wall of the bearing 22 is provided with a shaft 23, ensuring the stable rotation of the shaft 23.
[0038] Further, the surface of the shaft 23 is fixedly sleeved with a circular roller 24, and the two sides of the circular roller 24 are tightly attached with annular limit discs 25, which are fixedly sleeved with the surface of the shaft 23. This can prevent the fiber board from sliding out from both sides when it is conveyed on the circular roller 24.
[0039] Working mode: when the fiber board needs to be cooled, the hot-pressed fiber board is sent to the support plate 20, and the fiber board is gradually sent to the middle position of the cylinder 12 by the rotation of the circular roller 24. The gaps between adjacent circular rollers 24 ensure the circulation of air in the cylinder 12 during cooling.
[0040] The power supply of the fan 16 is turned on, the fan 16 delivers cold air, and the cold air is delivered through the air delivery pipe 17 and into each air pipe 13, and is blown out through the air nozzles 14 on each air pipe 13, so that the cold air can contact the fiberboard in all directions, improving the uniformity and efficiency of cooling.
[0041] The above merely describes a preferred embodiment of the present application, but the protection scope of the present application is not limited to this. Any skilled person in the art, according to the technical scheme and the inventive concept of the present application, can make equivalent replacement or change within the technical range disclosed by the present application, and all of them should be covered within the protection scope of the present application.
Claims
1. A cooling device for high-performance fiber production, comprising a base (10), characterized in that: The upper end of the base (10) is fixed with the foot (11), and the foot (11) is symmetrically distributed on both sides of the base (10), and the upper end of the two feet (11) is fixed with the cylinder (12), and the cylinder (12) is arranged in parallel with the base (10); The outer wall of the cylinder (12) is provided with a plurality of air pipes (13), the inner side of the air pipe (13) is provided with a tuyere (14), and the connection position of the tuyere (14) and the air pipe (13) is fixed by welding, the surface of the tuyere (14) penetrates the cylinder wall of the cylinder (12), and the connection position of the tuyere (14) and the cylinder (12) is fixed by welding, one end of the outer side of the air pipe (13) is provided with an air inlet (15), and the connection position of the air inlet (15) and the air pipe (13) is fixed by welding; The upper end of the base (10) is installed with the fan (16), the air inlet end of the fan (16) is fixed with the air pipe (17) by flange, one side of the air pipe (17) is provided with a plurality of air outlets, and the air outlets and the air inlets (15) are one-to-one corresponding and connected by flange.
2. The cooling device for high-performance fiber production according to claim 1, characterized in that: The air pipe (13) is a curved structure, and the two end port positions are closed.
3. The cooling device for high-performance fiber production according to claim 1, characterized in that: The number of the air pipe (13) is at least five, and the air pipe (13) is arranged at equal intervals along the horizontal direction.
4. The cooling device for high-performance fiber production according to claim 1, characterized in that: The number of the tuyere (14) is at least five, and the tuyere (14) is arranged at equal arc length along the inner side of the curved surface of the air pipe (13).
5. The cooling device for high-performance fiber production according to claim 1, characterized in that: The inside of the cylinder (12) is provided with a support plate (20), and the support plate (20) is arranged in parallel with the base (10), the lower end of the support plate (20) is fixed with a support column (21) on both sides, and the lower end of the support column (21) is fixed with the base (10) by screws.
6. A cooling device for high-performance fiber production according to claim 5, characterized in that: The inside of the support plate (20) is provided with an embedded hole, and the inner wall of the embedded hole is provided with a bearing (22) on both sides, the connection position of the outer ring wall of the bearing (22) and the support plate (20) is fixed by welding, and the inner ring wall of the bearing (22) is provided with a shaft (23).
7. A cooling device for high-performance fiber production according to claim 6, characterized in that: The surface of the shaft (23) is fixed with a circular roller (24), and the both sides of the circular roller (24) are tightly attached with a limit disc (25) of annular structure, and the limit disc (25) is fixed with the surface of the shaft (23).