A heat dissipation system

CN224302215UActive Publication Date: 2026-05-29NINGBO ZHENLI CLOTHING TECHNOLOGY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NINGBO ZHENLI CLOTHING TECHNOLOGY CO LTD
Filing Date
2025-05-16
Publication Date
2026-05-29

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  • Figure CN224302215U_ABST
    Figure CN224302215U_ABST
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Abstract

The application provides a heat dissipation system, comprising a first pipe, an air extraction assembly installed at an air inlet end of the first pipe, a buffer assembly installed in the first pipe and located at an output end of the air extraction assembly, the buffer assembly being used for slowing down the speed of gas flowing in the output direction of the air extraction assembly, a cooling assembly installed in the first pipe and located at the output end of the air extraction assembly, the cooling assembly being used for cooling the gas slowed down by the buffer assembly, and a second pipe connected to an air outlet end of the first pipe and used for discharging the gas cooled by the cooling assembly to an external space. The buffer assembly and the cooling assembly are arranged in the first pipe, the buffer assembly is used for slowing down the flow rate of the gas extracted by the air extraction assembly, and then the cooling assembly is used for cooling the gas, so that the gas is cooled well, and finally the cooled gas is discharged to a garment workshop, thereby achieving a good heat exchange effect.
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Description

Technical Field

[0001] This application belongs to the field of heat dissipation technology in garment workshops, and in particular relates to a heat dissipation system. Background Technology

[0002] In the garment manufacturing industry, steam equipment is a critical facility in the production process, such as steam ironing tables, steam generators, and drying equipment. These devices continuously release high-temperature steam and heat during operation, leading to a significant increase in workshop temperature (typically exceeding 35°C) and high humidity (relative humidity often exceeding 70%). If the heat and moisture cannot be effectively dissipated, it will not only severely affect the comfort of the working environment but may also cause the following problems: high temperature and humidity environments can easily lead to worker fatigue, reducing operational precision and efficiency; prolonged exposure to high temperatures may shorten the lifespan of steam equipment; humid and hot air can easily breed mold, damaging textile raw materials and even potentially causing electrical short circuits. Therefore, it is necessary to add a heat dissipation system to the ironing workshop to alleviate the humid and hot environment. Traditional heat dissipation systems, due to the lack of noise reduction structures, are usually very noisy during heat exchange in the workshop, causing noise pollution. Prolonged exposure to noise pollution can harm the health and well-being of workers. Utility Model Content

[0003] In view of this, the main objective of this application is to provide a heat dissipation system that can reduce noise when applied in garment ironing workshops.

[0004] The technical solution adopted in this application is as follows: a heat dissipation system, including a first pipe;

[0005] An air extraction assembly is installed at the air inlet end of the first pipe fitting;

[0006] A buffer assembly is installed in the first pipe and located at the output end of the extraction assembly; the buffer assembly is used to slow down the gas travel speed in the output direction of the extraction assembly.

[0007] A cooling assembly is installed in the first pipe and located at the output end of the extraction assembly; the cooling assembly is used to cool the gas delayed by the buffer assembly.

[0008] The second pipe is connected to the outlet end of the first pipe and is used to discharge the gas cooled by the cooling assembly to the external space.

[0009] Furthermore, the air extraction assembly includes a fan installed at the air inlet end of the first pipe, an air inlet pipe connected to the end of the first pipe below the fan, and a cover connected to the end of the air inlet pipe.

[0010] Furthermore, the buffer assembly includes an air guide plate, a connecting plate, and a vent plate. The air guide plate, the connecting plate, and the vent plate constitute a first chamber. The inner wall of the first chamber is provided with buffer plates that are staggered to each other to extend the flow path of the gas.

[0011] The cooling assembly is located at the rear of the first chamber.

[0012] Furthermore, the connecting plate extends along the gas travel direction to the gas outlet of the first pipe, and the extended portion of the connecting plate and the vent plate form a second chamber, in which the cooling assembly is disposed.

[0013] Furthermore, the cooling assembly includes a cooling pipe connected to an external cold source, and the cooling pipe contains a cooling medium; the cooling pipe is U-shaped and installed in the second chamber.

[0014] Furthermore, a plurality of connecting pipes are provided between the connecting plate and the inner wall of the first pipe fitting. The connecting pipes are connected to the first chamber and the second chamber. A Tesla valve is installed in each connecting pipe. One end of the Tesla valve extends out of the first pipe fitting. A water collection part is provided at the bottom end of the first pipe fitting. The Tesla valve is connected to the water collection part.

[0015] Furthermore, the water collection section is equipped with a water outlet pipe.

[0016] Furthermore, a sound-absorbing part is provided on the inner wall of the first pipe in the direction of air delivery of the fan, and the outer surface of the sound-absorbing part is wavy.

[0017] Furthermore, it also includes a temperature sensor and a controller, the controller being electrically connected to the temperature sensor and the air extraction assembly, respectively.

[0018] Compared with the prior art, the present application has the following advantages: a buffer component and a cooling component are provided in the first pipe. The buffer component slows down the gas flow rate drawn in by the extraction component, making the gas flow path longer, thereby achieving the purpose of noise reduction. Attached Figure Description

[0019] The following figures are for illustrative purposes only and are not intended to limit the scope of this application, wherein:

[0020] Figure 1 This is a three-dimensional schematic diagram of the present application;

[0021] Figure 2 This is a schematic diagram illustrating the usage status of this application;

[0022] Figure 3 for Figure 2 Enlarged view of part A in the image.

[0023] Reference numerals: 10. First pipe fitting; 11. Air extraction assembly; 12. Buffer assembly; 13. Cooling assembly; 14. Second pipe fitting; 15. Fan; 16. Air inlet pipe; 17. Cover; 18. Air guide plate; 19. Connecting plate; 20. Ventilation plate; 21. First chamber; 22. Buffer plate; 23. Second chamber; 24. Cooling pipe; 25. Connecting pipe; 26. Tesla valve; 27. Water collection section; 29. ​​Sound absorption section; 30. Temperature sensor. Detailed Implementation

[0024] To make the objectives, technical solutions, design methods, and advantages of this application clearer, the following detailed description, in conjunction with the accompanying drawings, provides specific embodiments. It should be understood that the specific embodiments described herein are for illustrative purposes only and are not intended to limit the scope of this application.

[0025] This application discloses a heat dissipation system, primarily applicable to garment processing workshops. It improves air circulation within the workshop, preventing excessively high temperatures that could negatively impact processing efficiency. The specific implementation method is as follows.

[0026] As one embodiment of this application, please refer to the following: Figures 1-2 As shown, in this embodiment, a heat dissipation system includes a first pipe 10, an air extraction assembly 11, a buffer assembly 12, a cooling assembly 13, and a second pipe 14. It also includes a temperature sensor 30 and a controller, wherein the controller is electrically connected to the temperature sensor 30 and the air extraction assembly 11, respectively.

[0027] The extraction assembly 11 is installed at the air inlet end of the first pipe 10; the buffer assembly 12 is installed in the first pipe 10 and located at the output end of the extraction assembly 11; the buffer assembly 12 is used to slow down the gas travel speed in the output direction of the extraction assembly 11; the cooling assembly 13 is installed in the first pipe 10 and located at the output end of the extraction assembly 11; the cooling assembly 13 is used to cool the gas slowed down by the buffer assembly 12; the second pipe 14 is connected to the air outlet end of the first pipe 10 and is used to discharge the gas cooled by the cooling assembly 13 to the external space, where the external space refers to the ironing workshop.

[0028] In the above, when the temperature in the garment workshop is high, the temperature sensor 30 sends a detection signal to the controller. At this time, the controller controls the exhaust assembly 11 to start working, extracting the heat generated in the garment workshop due to ironing and other processes. The exhaust assembly 11 draws the hot air into the first pipe 10, where the wind speed is first slowed down by the buffer assembly 12 to delay the airflow path and reduce noise. Then, it is cooled by the cooling assembly 13, and finally, the cool air is discharged back into the garment workshop through the second pipe 14. The first pipe 10 and the second pipe 14 can be connected by a pipeline. It should also be noted that the controller involved in this application is a product in the prior art, and its control program has been pre-set, which will not be elaborated here.

[0029] As one embodiment of this application, please refer to the following: Figures 1-2 As shown, in this embodiment, the air extraction assembly 11 includes a fan 15 installed at the air inlet end of the first pipe 10. An air inlet pipe 16 is connected to the lower end of the fan 15 at the end of the first pipe 10, and a cover 17 is connected to the end of the air inlet pipe 16. In the above, the cover 17 can be configured as a trumpet shape, which can better extract and cool the heat in the garment workshop.

[0030] As one embodiment of this application, please refer to the following: Figures 1-2 As shown, in this embodiment, the buffer assembly 12 includes an air guide plate 18, a connecting plate 19, and a ventilating plate 20. The air guide plate 18, the connecting plate 19, and the ventilating plate 20 constitute a first chamber 21. The inner wall of the first chamber 21 is provided with buffer plates 22 that are staggered to extend the flow path of the gas. The cooling assembly 13 is provided behind the first chamber 21. A sound-absorbing part 29 is provided in the first pipe 10 in front of the buffer assembly 12. By setting the outer surface of the sound-absorbing part 29 in a wavy shape, noise reduction can be achieved for the gas drawn in by the fan 15 for the first time.

[0031] In the above, the positions of the buffer plates 22 are staggered vertically. The buffer plates 22 divide the space of the first chamber 21, which lengthens the path of the gas and reduces the wind speed to achieve the effect of noise reduction. At the same time, the cooling components behind it fully cool the gas containing heat.

[0032] As one embodiment of this application, please refer to the following: Figures 1-2As shown, in this embodiment, the connecting plate 19 extends along the gas travel direction to the gas outlet of the first pipe fitting 10. The extended portion of the connecting plate 19 and the vent plate 20 form a second chamber 23. The cooling assembly 13 is disposed in the second chamber 23. The cooling assembly 13 includes a cooling pipe 24 connected to an external cold source. The cooling pipe 24 contains a cooling medium. The cooling pipe 24 is U-shaped and installed in the second chamber 23.

[0033] In the above, after the buffered gas enters the second chamber 23, the cooling medium in the cooling pipe 24 can cool the gas; the U-shaped arrangement of the cooling pipe 24 can increase the contact area with the gas to improve the cooling effect.

[0034] As one embodiment of this application, please refer to the following: Figures 1-3 As shown, in this embodiment, a plurality of connecting pipes 25 are provided between the connecting plate 19 and the inner wall of the first pipe fitting 10. The connecting pipes 25 are connected to the first chamber 21 and the second chamber 23. A Tesla valve 26 is installed in each connecting pipe 25. One end of the Tesla valve 26 extends out of the first pipe fitting 10. A water collection part 27 is provided at the bottom end of the first pipe fitting 10. The Tesla valve 26 is connected to the water collection part 27. The water collection part 27 is provided with a water outlet pipe, and the water outlet pipe is provided with a valve 28.

[0035] In the above process, after the cooling process is completed, the cooling components stop working. However, due to the high temperature of the gas being drawn in, condensation will occur between the components in the first and second chambers. The condensed water droplets will enter the Tesla valve 26 from the connecting pipe 25 and finally be discharged into the water collection section 27, and then discharged through the water outlet pipe.

[0036] The various embodiments of this application have been described above. These descriptions are exemplary and not exhaustive, nor are they limited to the disclosed embodiments. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the described embodiments. The terminology used herein is chosen to best explain the principles, practical applications, or technological improvements to the embodiments in the market, or to enable others skilled in the art to understand the embodiments disclosed herein.

Claims

1. A heat dissipation system, characterized in that, include: First fitting (10); An air extraction assembly (11) is installed at the air inlet end of the first pipe fitting (10); A buffer assembly (12) is installed in the first pipe (10) and located at the output end of the suction assembly (11); the buffer assembly (12) is used to slow down the gas travel speed in the output direction of the suction assembly (11); A cooling assembly (13) is installed in the first pipe (10) and located at the output end of the extraction assembly (11); the cooling assembly (13) is used to cool the gas delayed by the buffer assembly (12); The second pipe (14) is connected to the outlet end of the first pipe (10) and is used to discharge the gas cooled by the cooling assembly (13) to the external space.

2. The heat dissipation system according to claim 1, characterized in that, The air extraction assembly (11) includes a fan (15) installed at the air inlet end of the first pipe (10), and an air inlet pipe (16) is connected to the lower end of the fan (15) at the end of the first pipe (10), and a cover (17) is connected to the end of the air inlet pipe (16).

3. The heat dissipation system according to claim 1, characterized in that, The buffer assembly (12) includes an air guide plate (18), a connecting plate (19), and a breathable plate (20). The air guide plate (18), the connecting plate (19), and the breathable plate (20) constitute a first chamber (21). The inner wall of the first chamber (21) is provided with buffer plates (22) that are staggered to each other to extend the flow path of the gas. The cooling assembly (13) is located behind the first chamber (21).

4. A heat dissipation system according to claim 3, characterized in that, The connecting plate (19) extends along the gas travel direction to the gas outlet of the first pipe (10). The extended portion of the connecting plate (19) and the vent plate (20) form a second chamber (23). The cooling assembly (13) is disposed in the second chamber (23).

5. A heat dissipation system according to claim 4, characterized in that, The cooling assembly (13) includes a cooling pipe (24) connected to an external cold source, and the cooling pipe (24) contains a cooling medium; the cooling pipe (24) is installed in the second chamber (23) in a U-shape.

6. A heat dissipation system according to claim 4, characterized in that, Multiple connecting pipes (25) are provided between the connecting plate (19) and the inner wall of the first pipe fitting (10). The connecting pipes (25) are connected to the first chamber (21) and the second chamber (23). Each connecting pipe (25) is equipped with a Tesla valve (26). One end of the Tesla valve (26) extends out of the first pipe fitting (10). A water collection part (27) is provided at the bottom end of the first pipe fitting (10). The Tesla valve (26) is connected to the water collection part (27).

7. A heat dissipation system according to claim 6, characterized in that, The water collection section (27) is equipped with a water outlet pipe.

8. A heat dissipation system according to claim 2, characterized in that, A sound-absorbing part (29) is provided on the inner wall of the first pipe (10) in the air supply direction of the fan (15), and the outer surface of the sound-absorbing part (29) is wavy.

9. A heat dissipation system according to claim 1, characterized in that, It also includes a temperature sensor (30) and a controller, the controller being electrically connected to the temperature sensor (30) and the air extraction assembly (11), respectively.