Environment-friendly and energy-saving heat dissipation device
By combining water cooling and air cooling with a wind direction adjustment mechanism, the problems of poor heat dissipation and insufficient wind direction adjustment in existing environmentally friendly and energy-saving heat dissipation devices are solved. This achieves efficient and energy-saving heat dissipation and uniform equipment temperature, and improves the applicability and ease of maintenance of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 南京蓝睿环保科技有限公司
- Filing Date
- 2026-03-31
- Publication Date
- 2026-06-02
AI Technical Summary
Existing environmentally friendly and energy-saving heat dissipation devices have limited heat dissipation effects, making it difficult to quickly balance the heat in the high-temperature area of the equipment. They also have low cooling efficiency and insufficient flexibility in airflow adjustment, failing to adjust the airflow direction according to the dynamic changes in the equipment's heat points or the needs of the scenario.
It adopts a composite heat dissipation method that combines water cooling and air cooling. Through the coordinated use of water tank, circulating pump, coil, fins and fan assembly, combined with cooling components and airflow adjustment mechanism, it realizes automatic adjustment of cooling water circulation and airflow direction, thereby enhancing heat dissipation uniformity and efficiency.
It improves heat dissipation and cooling effect, reduces energy consumption, achieves rapid temperature balance and uniformity of equipment, enhances the applicability of the device in complex environments, simplifies maintenance procedures, and extends service life.
Smart Images

Figure CN122138380A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of environmentally friendly and energy-saving heat dissipation equipment technology, and in particular to an environmentally friendly and energy-saving heat dissipation device. Background Technology
[0002] Against the backdrop of a global push for energy conservation, emission reduction, and sustainable development, the demand for environmentally friendly and energy-saving technologies and equipment is becoming increasingly urgent across all industries. Heat dissipation, as a crucial element in ensuring stable equipment operation and improving energy efficiency in numerous fields, is undeniably important. With the rapid development of technology, the demand for heat dissipation devices in electronic equipment, industrial machinery, data centers, and other fields is experiencing explosive growth. Simultaneously, increasingly stringent environmental regulations and rising energy costs are driving a growing market preference for environmentally friendly and energy-saving heat dissipation devices. According to market research institutions, the global market size for environmentally friendly and energy-saving heat dissipation devices will continue to expand at a significant compound annual growth rate in the coming years. In the industrial sector, various production equipment generates a large amount of heat during operation. If heat cannot be dissipated effectively and in a timely manner, it will not only affect the normal operation of the equipment and reduce production efficiency but may also lead to equipment damage and increased maintenance costs. Environmentally friendly and energy-saving heat dissipation devices, such as energy-saving steel tube radiators, have been widely used in high-temperature industrial environments such as power plants, compressor rooms, and printing plants due to their high heat dissipation performance, environmentally friendly material selection, and simple installation and maintenance.
[0003] However, existing environmentally friendly and energy-saving heat dissipation devices typically use a standalone air-cooling method for heat dissipation and cooling. This not only has limited heat dissipation effect but also makes it difficult to quickly balance the heat in high-temperature areas of the equipment, resulting in low cooling efficiency. Furthermore, their airflow direction adjustment lacks flexibility, failing to adjust the airflow direction according to the dynamic changes in the equipment's heat-generating points or the heat dissipation requirements of different scenarios. The limitation of a fixed airflow direction can cause uneven heat dissipation problems such as localized overcooling or overheating, wasting heat dissipation energy and failing to effectively cover core heat-generating components, thus weakening the energy-saving effect of the heat dissipation device. Summary of the Invention
[0004] The purpose of this invention is to solve the problems in the existing technology, namely, the limited heat dissipation effect, the difficulty in quickly balancing the heat in the high-temperature area of the equipment, and the low cooling efficiency; and the lack of flexibility in airflow adjustment, which makes it impossible to adjust the airflow direction according to the dynamic changes of the equipment's heat points or the needs of the scenario. Therefore, an environmentally friendly and energy-saving heat dissipation device is proposed.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: An environmentally friendly and energy-saving heat dissipation device includes a main body. A water storage tank and a circulating pump are installed on the upper surface of the main body. The outlet of the water storage tank is connected to a connecting pipe. The end of the connecting pipe away from the water storage tank is connected to the input end of the circulating pump. The output end of the circulating pump is connected to a water supply pipe. The end of the water supply pipe away from the circulating pump passes through the main body and connects to a coil. Multiple fins are installed on the outer surface of the coil. The end of the coil away from the water supply pipe passes through the main body and connects to the outer surface of the water storage tank. The interior of the water storage tank is equipped with a snap-fit mechanism, a mounting bracket, and a cooling component.
[0006] Preferably, the snap-fit mechanism includes a fixed frame installed inside the water storage tank. Multiple telescopic rods are installed inside the fixed frame, and each telescopic rod is fitted with a spring. The telescopic ends of the multiple telescopic rods are jointly installed with a movable frame, and a filter plate is snapped into the interior of the movable frame and the interior of the mounting frame.
[0007] Preferably, the device body is provided with an airflow adjustment mechanism, and a support plate is installed on the device body. The airflow adjustment mechanism includes a first motor installed on the upper surface of the support plate, and the output end of the first motor passes through the device body and is connected to a threaded rod.
[0008] Preferably, the end of the threaded rod away from the first motor is rotatably connected to the inside of the device body, the threaded rod is threadedly connected to a threaded sleeve, the threaded sleeve is fixedly connected to a limit strip, and the inside of the device body is provided with a limit groove that matches the limit strip.
[0009] Preferably, the limiting strip is fixedly connected to a connecting plate, the connecting plate is equipped with a plurality of first hinge seats, and the main body of the device is rotatably connected to a plurality of adjusting fans.
[0010] Preferably, each of the regulating fans is equipped with a second hinge seat, each of the first hinge seats is rotatably connected to a connecting rod, and the end of each connecting rod away from the first hinge seat is rotatably connected to a corresponding second hinge seat.
[0011] Preferably, a fan assembly is provided inside the main body of the device. The fan assembly includes a fan housing installed inside the main body of the device. A support frame is installed inside the fan housing. A second motor is installed inside the support frame. Multiple fan blades are fixedly connected to the end of the output end of the second motor that extends out of the support frame.
[0012] Preferably, a snap-fit bracket is installed inside the main body of the device, and a snap-fit slot is opened inside the main body of the device. A dustproof plate is snapped into the inside of the snap-fit bracket and the inside of the snap-fit slot.
[0013] Preferably, a grid plate is installed on the left side of the main body of the device, and four fixing bolts are threaded inside the grid plate.
[0014] Preferably, four casters are mounted on the bottom surface of the main body of the device, and a controller is mounted on the outer surface of the main body of the device.
[0015] Preferably, the water storage tank is connected to a water inlet, and the outer surface of the water storage tank is provided with scale markings for observing the water level inside the tank. Compared with the prior art, the beneficial effects of the present invention are as follows: 1. This environmentally friendly and energy-saving heat dissipation device improves the heat dissipation and cooling effect through the combined use of a water tank, circulating pump, coil, fins and fan assembly. The composite heat dissipation method combining water cooling and air cooling, the combination of coil and fins increases the heat dissipation area, the cooling water driven by the circulating pump can quickly absorb and remove heat, and the forced convection of the fan assembly can quickly balance the heat in the high-temperature area of the equipment. At the same time, the cooling water circulating pump realizes the closed-loop circulation of cooling water between the water tank and the coil, combined with the cooling components to cool the water, reducing energy consumption and achieving the purpose of energy saving and environmental protection. The water tank is equipped with a water filling hopper and scale markings for easy observation of water level and timely water replenishment.
[0016] 2. This environmentally friendly and energy-saving heat dissipation device uses a first motor to drive a threaded rod to rotate through an airflow adjustment mechanism. This, combined with the sliding guide of the threaded sleeve and the limiting strip, allows the connecting plate to move stably. The connecting plate is linked to the second hinge of the adjusting fan via a first hinge seat, a connecting rod, and the adjusting fan itself. When the connecting plate moves, it simultaneously drives multiple adjusting fans to rotate, achieving unified airflow adjustment. This not only flexibly changes the airflow direction to adapt to the heat dissipation needs of different heat points or scenarios, but also provides convenient operation through mechanized adjustment. The controller can receive temperature sensor signals and quickly respond to changes in the equipment's heat points based on actual working conditions, automatically controlling the first motor to adjust the angle of the adjusting fans to avoid localized overheating. This further improves the uniformity and efficiency of heat dissipation. Combined with a composite heat dissipation system, it can more efficiently balance equipment temperature, reduce energy consumption, and enhance the device's applicability in complex environments.
[0017] 3. This environmentally friendly and energy-saving heat dissipation device, through the elastic cooperation of the telescopic rod and spring inside the fixed frame, allows the movable frame to extend and retract flexibly, forming a stable clamping structure with the mounting frame. This reliably clamps the filter plates, ensuring their stability during device operation, effectively filtering impurities in the circulating water, preventing coil blockage and maintaining heat dissipation efficiency. At the same time, the elasticity of the springs allows the filter plates to be installed and removed without additional tools; simply pushing the movable frame allows for quick assembly and disassembly, simplifying the cleaning and replacement process of the filter plates, reducing maintenance difficulty and time costs, ensuring the long-term stable operation of the cooling water circulation system, and indirectly improving the overall heat dissipation efficiency and service life of the device. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the internal structure of an environmentally friendly and energy-saving heat dissipation device proposed in this invention; Figure 2 This is a left view of an environmentally friendly and energy-saving heat dissipation device proposed in this invention; Figure 3 This is a right view of an environmentally friendly and energy-saving heat dissipation device proposed in this invention; Figure 4 This is a schematic diagram of the internal structure of the water storage tank in an environmentally friendly and energy-saving heat dissipation device proposed in this invention; Figure 5 This is a three-dimensional structural diagram of the snap-fit mechanism in an environmentally friendly and energy-saving heat dissipation device proposed in this invention; Figure 6 This is a three-dimensional structural diagram of the wind direction adjustment mechanism in an environmentally friendly and energy-saving heat dissipation device proposed in this invention; Figure 7 This is a three-dimensional structural diagram of the connecting plate and the regulating fan in an environmentally friendly and energy-saving heat dissipation device proposed in this invention; Figure 8 This is a three-dimensional structural diagram of the fan assembly in an environmentally friendly and energy-saving heat dissipation device proposed in this invention.
[0019] In the diagram: 1. Main body of the device; 2. Water storage tank; 3. Circulation pump; 4. Connecting pipe; 5. Water delivery pipe; 6. Fins; 7. Snap-fit mechanism; 701. Fixing frame; 702. Telescopic rod; 703. Spring; 704. Movable frame; 8. Filter plate; 9. Mounting frame; 10. Refrigeration assembly; 11. Water inlet hopper; 12. Scale markings; 13. Airflow adjustment mechanism; 1301. First motor; 1302. Threaded rod; 1303. Threaded sleeve; 1304. Limiting strip; 13 05. Connecting plate; 1306. Adjustable fan; 1307. First hinge seat; 1308. Connecting rod; 1309. Second hinge seat; 14. Bearing plate; 15. Limiting groove; 16. Fan assembly; 1601. Fan housing; 1602. Support frame; 1603. Second motor; 1604. Fan blade; 17. Clip-on frame; 18. Clip slot; 19. Dustproof plate; 20. Mesh plate; 21. Fixing bolt; 22. Caster wheel; 23. Controller; 24. Coil. Detailed Implementation
[0020] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0021] Example, refer to Figure 1-8An environmentally friendly and energy-saving heat dissipation device includes a main body 1, which serves as the core support frame for the entire heat dissipation device, providing a mounting carrier for all components such as a water storage tank 2, a circulating pump 3, a coil 24, and a fan assembly 16. The upper surface of the main body 1 is fitted with the water storage tank 2 and the circulating pump 3. The water storage tank 2 is the core water storage component, used to store cooling water and provide a stable water source for the water-cooled circulation system. The circulating pump 3 is the power source for the water-cooled circulation, drawing cooling water from the water storage tank 2 through a connecting pipe 4 and then delivering it to the coil 24 through a water delivery pipe 5, providing power for the flow of cooling water within the closed-loop system and ensuring continuous heat dissipation. The outlet of the water storage tank 2 is connected to the connecting pipe 4, which is responsible for guiding the cooling water from the water storage tank 2 to the circulating pump 3. The circulating pump 3 forms a water circulation inlet channel, ensuring a stable water supply to the power end. The end of the connecting pipe 4 away from the water tank 2 is connected to the input end of the circulating pump 3. The output end of the circulating pump 3 is connected to the water supply pipe 5. The end of the water supply pipe 5 away from the circulating pump 3 passes through the main body 1 and is connected to the coil 24. Multiple fins 6 are installed on the outer surface of the coil 24. The fins 6 are auxiliary heat dissipation components installed on the outer surface of the coil 24. By increasing the contact area between the coil 24 and the air, the speed at which the heat absorbed by the coil 24 is transferred to the air is accelerated, enhancing the synergistic heat dissipation effect of water cooling and air cooling, and improving the overall heat dissipation efficiency. The end of the coil 24 away from the water supply pipe 5 passes through the main body 1 and is connected to the outer surface of the water tank 2. That is, the end of the coil 24 away from the water supply pipe 5 passes through the main body 1 and is connected to the interior of the water tank 2.
[0022] The water storage tank 2 is equipped with a snap-fit mechanism 7. The water storage tank 2 also houses a cooling component 10 and a mounting bracket 9. The cooling component 10 is a cooling element installed inside the water storage tank 2, using existing technology to cool the warm water flowing back from the coil 24 to the water storage tank 2, reducing the water temperature to a suitable range for heat dissipation, maintaining the cooling water's heat dissipation capacity, and ensuring continuous and efficient operation of the water cooling cycle. A water inlet 11 is connected to the water storage tank 2. The outer surface of the water storage tank 2 is marked with a scale 12 for observing the water level. The scale 12 is a water level indicator on the outer surface of the water storage tank 2, allowing staff to visually observe the remaining cooling water in the water storage tank 2 and promptly determine if water replenishment is needed, facilitating daily operation and water management. The water inlet 11 is a water replenishment component located on the upper surface of the water storage tank 2. When the water level in the water storage tank 2 drops due to evaporation or loss, cooling water can be conveniently replenished through the water inlet 11, preventing water shortage from affecting water circulation and heat dissipation.
[0023] Furthermore, the snap-fit mechanism 7 includes a fixed frame 701 installed inside the water tank 2. The fixed frame 701 is the basic support component of the snap-fit mechanism 7. Installed inside the water tank 2, it provides a stable mounting base for the telescopic rods 702, ensuring the stability of the entire snap-fit mechanism 7 structure. Multiple telescopic rods 702 are installed inside the fixed frame 701. The telescopic rods 702 are telescopic components connecting the fixed frame 701 and the movable frame 704, and can flexibly extend and retract along the axial direction, providing guidance for the movement of the movable frame 704 while limiting its offset. Each... Each telescopic rod 702 is fitted with a spring 703. The spring 703 is an elastic component fitted on the outer surface of the telescopic rod 702. In its natural state, it pushes the movable frame 704 toward the mounting frame 9 by its own elastic force, forming a clamping force on the filter plate 8. When disassembling or assembling the filter plate 8, pressing the movable frame 704 can compress the spring 703, leaving space for the filter plate 8 to be taken out or put in, realizing quick operation without tools. The telescopic ends of multiple telescopic rods 702 are jointly installed with the movable frame 704. The filter plate 8 is jointly engaged inside the movable frame 704 and inside the mounting frame 9.
[0024] Furthermore, the main body 1 of the device is equipped with an airflow adjustment mechanism 13, which is used to adjust the airflow direction and achieve airflow control through mechanical transmission. A support plate 14 is installed on the main body 1, which provides a stable mounting platform for the first motor 1301 and prevents the motor from shifting due to vibration during operation. The airflow adjustment mechanism 13 includes a first motor 1301 mounted on the upper surface of the support plate 14. The first motor 1301 is the power source of the airflow adjustment mechanism 13. The output end of the first motor 1301 passes through the main body 1 and is connected to a threaded rod 1302. The end of the threaded rod 1302 away from the first motor 1301 is rotatably connected inside the main body 1 of the device. The threaded rod 1302 is threadedly connected to a threaded sleeve 1303, which is a transmission conversion component that engages with the threaded rod 1302 through an internal thread. When the threaded rod 1302 rotates, the threaded sleeve 1303 moves linearly up and down along the axial direction of the threaded rod 1302, while simultaneously driving the limiting strip 1304 and subsequent linkage components to move synchronously. The threaded sleeve 1303 is fixedly connected to the limiting strip 1304. The device body 1 has a limiting groove 15 inside that matches the limiting strip 1304. The limiting strip 1304 restricts the threaded sleeve 1303 from rotating synchronously with the threaded rod 1302, ensuring that it only makes linear motion, while also driving the subsequent wind direction adjustment component to move, thus realizing the transmission connection.
[0025] Furthermore: The limiting strip 1304 is fixedly connected to the connecting plate 1305, and the connecting plate 1305 is equipped with multiple first hinge seats 1307. The connecting plate 1305 transmits the linear movement of the limiting strip 1304 synchronously to multiple connecting rods 1308 through the first hinge seats 1307, so as to realize the unified drive of multiple regulating fans 1306 and avoid the asynchronous adjustment of individual regulating fans 1306. Multiple regulating fans 1306 are rotatably connected inside the main body 1 of the device. The regulating fan 1306 is the actuator for wind direction adjustment. It directly adjusts the flow direction of airflow by changing its own angle. When multiple regulating fans 1306 rotate in coordination, a stable directional airflow can be formed to cover the area to be cooled. Each regulating fan 1306 is equipped with a second hinge seat 1309. Each first hinge seat 1307 is rotatably connected to a connecting rod 1308. The end of each connecting rod 1308 away from the first hinge seat 1307 is rotatably connected to a corresponding second hinge seat 1309.
[0026] Furthermore, a fan assembly 16 is installed inside the main body 1 of the device. The fan assembly 16 is the core power component of the air-cooling system inside the main body 1, providing power for airflow and working in conjunction with the water-cooling system to achieve efficient heat dissipation. The fan assembly 16 includes a fan housing 1601 installed inside the main body 1 of the device. The fan housing 1601 serves to protect and guide the airflow of the fan assembly 16, protecting the internal support frame 1602, the second motor 1603, and the fan blades 1604 from external dust and impurities, and guiding the airflow generated by the fan blades 1604 in a directional direction. The coil 24 and fins 6 reduce airflow dispersion and improve air cooling efficiency. A support frame 1602 is installed inside the fan housing 1601. The support frame 1602 is the internal support structure of the fan assembly 16, providing a stable mounting base for the second motor 1603. At the same time, its hollow design does not obstruct airflow, ensuring unobstructed air cooling channels while fixing the second motor 1603. The second motor 1603 is installed inside the support frame 1602. Multiple fan blades 1604 are fixedly connected to the end of the second motor 1603 that extends out of the support frame 1602.
[0027] Furthermore, a snap-fit bracket 17 is installed inside the main body 1 of the device, and a snap-fit slot 18 is opened inside the main body 1 of the device. The snap-fit bracket 17 and the snap-fit slot 18 form a matching structure to provide support and limit for the dustproof plate 19, ensuring that the dustproof plate 19 is stable after installation and preventing the dustproof plate 19 from shifting or falling off due to airflow impact or device movement. The dustproof plate 19 is snapped into the interior of the snap-fit bracket 17 and the interior of the snap-fit slot 18. The dustproof plate 19 can intercept dust and impurities in the outside air, preventing dust from entering the interior of the main body 1 and adhering to the surface of the coil 24, fins 6 or fan assembly 16, avoiding the reduction of heat dissipation efficiency due to dust accumulation, reducing the frequency of dust cleaning of internal components, reducing maintenance costs, and extending the service life of the device.
[0028] Furthermore: A mesh plate 20 is installed on the left side of the main body 1. The mesh plate 20 can block larger particles such as debris and foreign matter from entering the device. The mesh plate 20 is internally threaded with four fixing bolts 21. Four casters 22 are installed on the bottom of the main body 1. A controller 23 is installed on the outer surface of the main body 1.
[0029] The specific working principle of this invention is as follows: After the controller 23 is started, the cooling water in the water storage tank 2 enters the circulation pump 3 through the connecting pipe 4. After being pressurized by the circulation pump 3, it is transported to the coil 24 inside the main body 1 through the water supply pipe 5. The fins 6 outside the coil 24 increase the heat dissipation area and quickly reduce the temperature of the surrounding air. The cooling water that has absorbed heat flows back to the water storage tank 2 along the coil 24 to form a closed-loop water circulation. During this period, the refrigeration component 10 in the water storage tank 2 cools the returning warm water to maintain the heat dissipation capacity. The snap-fit mechanism 7 drives the movable frame 704 through the telescopic rod 702 and spring 703 in the fixed frame 701. Together with the mounting frame 9, they clamp the filter plate 8 to filter impurities in the water and prevent the coil 24 from being blocked. At the same time, the air-cooling structure operates synchronously, and the second motor 1603 in the fan assembly 16 drives the fan blades. The rotation of 1604 generates airflow, blowing out cold air around fin 6 to cool the area that needs cooling. If the airflow direction needs to be adjusted, the controller 23 starts the first motor 1301 to drive the threaded rod 1302 to rotate. The threaded sleeve 1303, guided by the limit bar 1304 and the limit groove 15, drives the connecting plate 1305 to move. The connecting plate 1305 is linked with the first hinge seat 1307, the connecting rod 1308 and the second hinge seat 1309 of the regulating fan 1306, so that multiple regulating fans 1306 rotate synchronously to change the airflow direction. In addition, the dustproof plate 19 is locked with the slot 18 through the snap-fit bracket 17 to prevent dust from entering. The caster wheel 22 facilitates flexible movement of the device. Finally, the combination of efficient heat absorption by water cooling circulation and directional heat dissipation by air cooling mechanism achieves an environmentally friendly and energy-saving heat dissipation effect.
[0030] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. An environmentally friendly and energy-saving heat dissipation device, comprising a device body (1), wherein a water storage tank (2) and a circulating pump (3) are installed on the upper surface of the device body (1), the outlet of the water storage tank (2) is connected to a connecting pipe (4), one end of the connecting pipe (4) away from the water storage tank (2) is connected to the input end of the circulating pump (3), and the output end of the circulating pump (3) is connected to a water delivery pipe (5), characterized in that, The end of the water supply pipe (5) away from the circulating pump (3) passes through the main body of the device (1) and is connected to the coil (24). Multiple fins (6) are installed on the outer surface of the coil (24). The end of the coil (24) away from the water supply pipe (5) passes through the main body of the device (1) and is connected to the water storage tank (2). The water storage tank (2) is equipped with a snap-fit mechanism (7), a mounting bracket (9) and a refrigeration component (10). The snap-fit mechanism (7) includes a fixed frame (701) installed inside the water storage tank (2). Multiple telescopic rods (702) are installed inside the fixed frame (701). Each telescopic rod (702) is fitted with a spring (703). The telescopic ends of the multiple telescopic rods (702) are jointly installed with a movable frame (704). The filter plate (8) is snapped together inside the movable frame (704) and the mounting frame (9).
2. The environmentally friendly and energy-saving heat dissipation device according to claim 1, characterized in that, The device body (1) is provided with a wind direction adjustment mechanism (13) inside. A support plate (14) is installed on the device body (1). The wind direction adjustment mechanism (13) includes a first motor (1301) installed on the upper surface of the support plate (14). The output end of the first motor (1301) passes through the device body (1) and is connected to a threaded rod (1302).
3. The environmentally friendly and energy-saving heat dissipation device according to claim 2, characterized in that, The end of the threaded rod (1302) away from the first motor (1301) is rotatably connected to the inside of the device body (1). The threaded rod (1302) is threadedly connected to a threaded sleeve (1303). The threaded sleeve (1303) is fixedly connected to a limit strip (1304). The inside of the device body (1) is provided with a limit groove (15) that is compatible with the limit strip (1304).
4. The environmentally friendly and energy-saving heat dissipation device according to claim 3, characterized in that, The limiting strip (1304) is fixedly connected to the connecting plate (1305), the connecting plate (1305) is equipped with a plurality of first hinge seats (1307), and the main body (1) of the device is rotatably connected to a plurality of adjusting fans (1306).
5. The environmentally friendly and energy-saving heat dissipation device according to claim 4, characterized in that, Each of the regulating fans (1306) is equipped with a second hinge seat (1309), and each of the first hinge seats (1307) is rotatably connected to a connecting rod (1308). The end of each connecting rod (1308) away from the first hinge seat (1307) is rotatably connected to a corresponding second hinge seat (1309).
6. The environmentally friendly and energy-saving heat dissipation device according to claim 5, characterized in that, The device body (1) is provided with a fan assembly (16) inside. The fan assembly (16) includes a fan housing (1601) installed inside the device body (1). A support frame (1602) is installed inside the fan housing (1601). A second motor (1603) is installed inside the support frame (1602). Multiple fan blades (1604) are fixedly connected to the end of the output end of the second motor (1603) that extends out of the support frame (1602).
7. The environmentally friendly and energy-saving heat dissipation device according to claim 1, characterized in that, The device body (1) is equipped with a snap-fit bracket (17) inside, and a snap-fit slot (18) is opened inside the device body (1). The snap-fit bracket (17) and the snap-fit slot (18) are used to snap-fit a dustproof plate (19).
8. The environmentally friendly and energy-saving heat dissipation device according to claim 1, characterized in that, A grid plate (20) is installed on the left side of the main body (1) of the device, and four fixing bolts (21) are threaded inside the grid plate (20).
9. The environmentally friendly and energy-saving heat dissipation device according to claim 1, characterized in that, The bottom surface of the device body (1) is equipped with four casters (22), and the outer surface of the device body (1) is equipped with a controller (23).
10. The environmentally friendly and energy-saving heat dissipation device according to claim 1, characterized in that, The water storage tank (2) is connected to a water inlet (11), and the outer surface of the water storage tank (2) is provided with a scale mark (12) for observing the water level in the water storage tank (2).