Radiating coil pipe device made of copper composite material
By improving the design of the fixing components and spray pipes, the loosening problem of existing heat dissipation coil devices made of copper composite materials under vibration and impact conditions has been solved, achieving efficient heat dissipation and convenient coolant supply, and improving the stability and heat dissipation efficiency of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2026-03-10
AI Technical Summary
Existing heat dissipation coil devices made of copper composite materials are prone to loosening or damage during long-term operation or when facing complex working conditions such as vibration and impact. Furthermore, the connection and replacement of the coolant supply system are inconvenient, increasing maintenance costs and time.
The system employs fixing components, including fixing plates, fixing bolts, and slots, to enhance the stability of the heat conduction plate, heat dissipation fins, and spray pipes. Additional fixing support is provided through connecting columns and fixing plates. The spray pipes are easy to connect to the coolant supply system, and the spiral blades optimize the flow of the medium, ensuring efficient heat transfer and dissipation.
It improves the device's resistance to vibration and shock, reduces maintenance costs, ensures easy connection and replacement of the coolant supply system, and significantly improves heat dissipation efficiency and structural stability.
Smart Images

Figure CN223985617U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of radiator processing equipment, specifically to a heat dissipation coil device made of copper composite material. Background Technology
[0002] In modern industrial production and the operation of electronic equipment, heat dissipation has always been one of the key factors restricting equipment performance and stability. Traditional heat dissipation methods, such as natural heat dissipation and fan cooling, are often unable to meet the heat dissipation requirements when faced with equipment with high power density and compact structure. Therefore, it is particularly important to develop efficient and reliable heat dissipation devices.
[0003] For example, a Chinese patent proposes a heat dissipation coil device made of copper composite material, patent publication number CN212512580U. This patented device uses a coil made of copper composite material to achieve rapid heat transfer by utilizing the high thermal conductivity of copper. At the same time, the device is also equipped with heat dissipation fins to accelerate heat dissipation by increasing the heat dissipation area. However, although the above patent improves the heat dissipation efficiency to a certain extent, it still has some shortcomings. Specifically, the heat dissipation structure of the patent is relatively simple and the fixing method is not stable enough, which makes it easy to loosen or be damaged during long-term operation or when facing complex working conditions such as vibration and impact. In addition, the patent also has certain inconveniences in the connection and replacement of the coolant supply system, increasing maintenance costs and time. Therefore, we propose a heat dissipation coil device made of copper composite material. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] To address the shortcomings of existing technologies, this invention provides a heat dissipation coil device made of copper composite material, which solves the aforementioned problems.
[0006] (II) Technical Solution
[0007] To achieve the above-mentioned objectives, this utility model provides the following technical solution: a heat dissipation coil device made of copper composite material, comprising a coil, flanges for connection fixedly installed at both ends of the coil, a sealing gasket for sealing installed at the center of the flange, and multiple through holes provided on the side ends of the sealing gasket, with connecting bolts for fixing installed in the through holes, and further comprising:
[0008] A fixing component, installed on the side of the heat-conducting plate, is a structure used to fix the heat-conducting plate in place.
[0009] Preferably, heat-conducting plates for heat conduction are fixedly installed at the upper and lower ends of the coil, and multiple heat dissipation fins for heat dissipation are fixedly installed on the outer surface of the heat-conducting plate, and the heat dissipation fins are evenly arranged on the surface of the heat-conducting plate.
[0010] Preferably, a cooling spray pipe is provided on the side end of the coil, the center of the spray pipe penetrates the surface of the heat-conducting plate, and the spray pipe is arranged around the coil and the heat dissipation fins. Both ends of the spray pipe penetrate the surface of the fixing plate and are connected to the adapter. The surface of the spray pipe is provided with multiple nozzles for spraying.
[0011] Preferably, the fixing component includes a fixing plate, a slot, and fixing bolts. The fixing plate has a slot for locking on one inner end corresponding to the position of the heat-conducting plate, and multiple fixing bolts for fixing are provided on the outer side of the fixing plate corresponding to the position of the slot. One end of the fixing bolts extends through the surface of the fixing plate and into the interior of the heat-conducting plate.
[0012] Preferably, sealing plates are provided at both ends of the two fixing plates, and multiple misaligned bolts for fixing are installed on the surface of the sealing plates corresponding to the positions of the fixing plates. The lower ends of the misaligned bolts extend through the surface of the sealing plates into the interior of the fixing plates, and the misaligned bolts and fixing bolts are arranged in an alternating manner.
[0013] Preferably, the side end of the coil is provided with a plurality of connecting posts for fixing, and the two ends of the connecting posts penetrate the surface of the heat-conducting plate and the sealing plate and are connected to the fixing plate, and a sealing plate for sealing is fixedly installed at the connection between the connecting post and the heat-conducting plate.
[0014] Preferably, a spiral blade for guiding the flow is fixedly installed inside the coil, and the connecting column is arranged parallel to the position of the spray pipe.
[0015] (III) Beneficial Effects
[0016] Compared with the prior art, this utility model provides a heat dissipation coil device made of copper composite material, which has the following beneficial effects:
[0017] 1. The fixing components, including fixing plates, fixing bolts, and slots, together ensure the stability and firmness of the heat conduction plate, heat dissipation fins, and spray pipes. The connecting columns and fixing plates provide additional fixing support, enhancing the vibration and impact resistance of the entire device. The snap-fit design between the slots and the heat conduction plate, as well as the tightening effect of the fixing bolts and misaligned bolts, further improve the stability and safety of the structure. The fixing components make the device easy to disassemble and assemble, reducing maintenance costs and time. The setting of the spray pipes and adapters makes the connection and replacement of the coolant supply system simple and convenient.
[0018] 2. The heat-conducting plate also uses a material with good thermal conductivity and fits tightly with the coil to ensure efficient heat transfer to the heat dissipation fins. The design of the heat dissipation fins greatly increases the heat dissipation area, accelerates heat dissipation, and significantly improves heat dissipation efficiency. The setting of the spray pipe and its connection with the coolant supply system further reduces the temperature of the coil and heat-conducting plate by spraying coolant. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the present invention;
[0020] Figure 2 This is a partial cross-sectional view of the heat dissipation fins of this utility model;
[0021] Figure 3 This is a schematic diagram of the spray pipe of this utility model.
[0022] In the diagram: 1. Coil; 2. Flange; 3. Connecting bolt; 4. Heat-conducting plate; 5. Heat dissipation fins; 6. Fixing plate; 7. Fixing bolt; 8. Slot; 9. Spray pipe; 10. Connecting column; 11. Fixing plate; 12. Adapter; 13. Spiral blade; 14. Sealing plate; 15. Misalignment bolt; 16. Sealing plate. Detailed Implementation
[0023] 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. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.
[0024] Please see Figure 1-3 A heat dissipation coil device made of copper composite material includes a coil 1, flanges 2 for connection are fixedly installed at both ends of the coil 1, a sealing gasket for sealing is installed at the center of the flange 2, and multiple through holes are provided on the side end of the sealing gasket. The through holes are fitted with connecting bolts 3 for fixing. It also includes a fixing assembly, which is installed on the side end of a heat-conducting plate 4 and is used to fix the heat-conducting plate 4. The coil 1 is connected to the outside through the flanges 2 and the connecting bolts 3, and the heat dissipation component is fixed by the fixing assembly.
[0025] Furthermore, heat-conducting plates 4 for heat conduction are fixedly installed at the upper and lower ends of the coil 1. Multiple heat dissipation fins 5 for heat dissipation are fixedly installed on the outer surface of the heat-conducting plate 4, and the heat dissipation fins 5 are evenly arranged on the surface of the heat-conducting plate 4. Heat is transferred through the outer wall of the coil 1 to the heat-conducting plate 4 fixedly installed at the upper and lower ends. The heat dissipation fins 5 on the surface of the heat-conducting plate 4 further increase the heat dissipation area, so that the heat can be dissipated into the air more quickly.
[0026] Furthermore, a cooling spray pipe 9 is provided on the side end of the coil 1. The center of the spray pipe 9 penetrates the surface of the heat conduction plate 4, and the spray pipe 9 is arranged around the coil 1 and the heat dissipation fins 5. Both ends of the spray pipe 9 penetrate the surface of the fixing plate 6 and are connected to the adapter 12. The surface of the spray pipe 9 is provided with multiple spray nozzles. The spray pipe 9 is connected to the coolant supply system through the adapter 12. When the coolant is pumped into the spray pipe 9, it will be sprayed evenly onto the heat dissipation fins 5 and the outer wall of the coil 1 through multiple nozzles. When the coolant evaporates, it will take away a large amount of heat, thereby further reducing the temperature of the coil 1 and the heat conduction plate 4.
[0027] Furthermore, the fixing assembly includes a fixing plate 6, a slot 8, and fixing bolts 7. The fixing plate 6 has a slot 8 for snapping on the inner end corresponding to the position of the heat-conducting plate 4, and multiple fixing bolts 7 for fixing are provided on the outer side of the fixing plate 6 corresponding to the position of the slot 8. One end of the fixing bolts 7 extends through the surface of the fixing plate 6 into the interior of the heat-conducting plate 4. The fixing plate 6 is snapped onto the heat-conducting plate 4 through the slot 8, and the fixing bolts 7 further tighten the heat-conducting plate 4.
[0028] Furthermore, sealing plates 14 are provided at both ends of the two fixing plates 6. Multiple misaligned bolts 15 for fixing are installed on the surface of the sealing plates 14 corresponding to the positions of the fixing plates 6. The lower ends of the misaligned bolts 15 extend through the surface of the sealing plates 14 into the interior of the fixing plates 6. The misaligned bolts 15 and the fixing bolts 7 are arranged in an alternating manner. The misaligned bolts 15 and the sealing plates 14 protect the coil 1.
[0029] Furthermore, multiple connecting posts 10 for fixing are provided on the side end of the coil 1, and the two ends of the connecting posts 10 penetrate the surface of the heat-conducting plate 4 and the sealing plate 14 and are connected to the fixing plate 11. A sealing plate 16 for sealing is fixedly installed at the connection between the connecting post 10 and the heat-conducting plate 4. The connecting post 10 fixes the heat-conducting plate 4 and the sealing plate 14, and the sealing plate 16 seals the connection between the connecting post 10 and the sealing plate 14.
[0030] Furthermore, a spiral blade 13 for guiding flow is fixedly installed inside the coil 1, and the connecting column 10 and the spray pipe 9 are arranged in parallel. The spiral blade 13 inside the coil 1 is used to guide the medium to flow in the coil 1, ensuring that the medium can flow evenly through the entire coil 1, thereby improving the heat dissipation effect. The connecting column 10 and the spray pipe 9 are not in contact.
[0031] Structural Description: 1. Coil: The coil is the core component of the heat dissipation coil device. It is made of copper composite material and has excellent thermal conductivity. The coil has flow channels inside for the flow of the medium that needs to be dissipated. Its unique spiral shape not only increases the contact area between the medium and the coil, but also optimizes the flow path of the medium in the coil and improves the heat exchange efficiency. The two ends of the coil are usually equipped with flanges for easy connection with other pipes or equipment.
[0032] 2. Flange: The flange is the connecting structure at both ends of the coil. It is connected to adjacent equipment or pipelines by bolts to ensure the continuous flow of the medium in the coil. The flange design conforms to international standards, is easy to install and disassemble, and ensures the sealing of the connection.
[0033] 3. Connecting bolts: Connecting bolts are used to fasten flanges to adjacent equipment or pipelines to ensure the stability and sealing of the connection. High-strength bolts are usually used, and they are equipped with corresponding gaskets and nuts to cope with high temperature and high pressure working environments.
[0034] 4. Heat conduction plate: The heat conduction plate is a key component in the heat dissipation coil device. It is also made of a material with good thermal conductivity. The heat conduction plate is closely attached to the outer wall of the coil and quickly conducts the heat inside the coil to the heat dissipation fins. Its surface is specially treated to improve heat conduction efficiency and corrosion resistance.
[0035] 5. Heat dissipation fins: Heat dissipation fins are an important structure for increasing the heat dissipation area. They are usually thin sheets that are evenly distributed on the surface of the heat-conducting plate. The design of the heat dissipation fins optimizes the airflow path and improves the heat dissipation efficiency. At the same time, the heat dissipation fins also have a certain strength and rigidity, which can resist external impacts and vibrations.
[0036] 6. Fixing plate: The fixing plate is the support and fixing structure in the heat dissipation coil device. It is used to firmly install components such as heat conduction plate and heat dissipation fins together. The design of the fixing plate takes into account heat dissipation efficiency and structural stability, and it is usually made of lightweight and high-strength materials.
[0037] 7. Fixing bolts: Fixing bolts are used to fasten the fixing plate to the heat conduction plate, heat dissipation fins and other components together to ensure the stability of the entire heat dissipation structure. The number and position of the fixing bolts are carefully calculated to ensure tight fit and uniform force between the heat dissipation components.
[0038] 8. Slot: The slot is a structure on the fixing plate, used to cooperate with the clips on the heat conduction plate or heat sink fins to achieve a quick and stable connection. The slot is designed to be simple and easy to use, and easy to install and disassemble.
[0039] 9. Spray pipe: The spray pipe is a cooling device in the heat dissipation coil unit. It is set around the coil and heat dissipation fins. The spray pipe is connected to the coolant supply system through an adapter. When the coolant is pumped into the spray pipe, it will be sprayed evenly onto the heat dissipation fins and the outer wall of the coil through multiple nozzles to achieve rapid cooling.
[0040] 10. Connecting column: The connecting column is the connecting structure in the heat dissipation coil device, used to connect the fixed plate, spray pipe and other components together to form a complete heat dissipation system. The design of the connecting column takes into account heat dissipation efficiency and structural stability, and it is usually made of lightweight and high-strength materials.
[0041] 11. Fixing plate: The fixing plate is the supporting structure in the heat dissipation coil device, used to fix the connecting column and spray pipe and other components. The design of the fixing plate meets the heat dissipation requirements and structural stability requirements, and is usually made of lightweight and high-strength materials.
[0042] 12. Adapter: The adapter is the connecting component between the spray pipe and the coolant supply system, used to enable quick connection and disconnection of the coolant. The adapter is designed with sealing and durability in mind, ensuring stable flow of coolant under high pressure and high temperature conditions.
[0043] 13. Spiral blades: Spiral blades are the guiding structures inside the coil, used to guide the flow of the medium within the coil. The design of the spiral blades optimizes the flow path of the medium within the coil, improving heat exchange efficiency. At the same time, the spiral blades also have a certain self-cleaning function, which can reduce the accumulation and blockage of the medium within the coil.
[0044] 14. Sealing plate: The sealing plate is a closed structure in the heat dissipation coil device, used to seal the two ends or sides of the coil to prevent media leakage and external impurities from entering. The design of the sealing plate takes into account both sealing and durability, and it is usually made of the same material as the coil.
[0045] 15. Offset bolts: Offset bolts are a special type of fixing bolt in which the head and threaded part are offset at a certain angle. When used to fasten components such as heat conduction plates and heat dissipation fins to the fixing plate, offset bolts can provide greater fastening force and better sealing effect.
[0046] 16. Sealing Plate: The sealing plate is a sealing structure in the heat dissipation coil device. It is usually installed at the connection parts such as flanges and connecting columns. The design of the sealing plate takes into account the sealing and corrosion resistance, which can ensure the tightness and stability of the connection parts. At the same time, the sealing plate also has a certain degree of elasticity, which can adapt to the slight deformation and vibration of the connection parts.
[0047] Working principle: The medium requiring heat dissipation flows inside coil 1. Coil 1 is made of copper composite material, which has good thermal conductivity, enabling it to quickly conduct heat from the medium to the outer wall of coil 1. As the medium flows within coil 1, heat is transferred through the outer wall of coil 1 to the heat-conducting plates 4 fixedly installed at the upper and lower ends. Heat-conducting plates 4 are also made of a material with good thermal conductivity, ensuring efficient heat transfer. The heat dissipation fins 5 on the surface of heat-conducting plates 4 further increase the heat dissipation area, allowing heat to dissipate into the air more quickly. To further enhance the heat dissipation effect, spray pipes 9 are installed on the side of coil 1 and surround coil 1 and heat dissipation fins 5. Spray pipes 9 are connected to the coolant supply system via adapter 12. When the coolant... When pumped into the spray pipe 9, it is evenly sprayed onto the outer wall of the heat dissipation fins 5 and the coil 1 through multiple nozzles. When the coolant evaporates, it will take away a lot of heat, thereby further reducing the temperature of the coil 1 and the heat conduction plate 4. The spiral blades 13 inside the coil 1 are used to guide the medium to flow in the coil 1, ensuring that the medium can flow evenly through the entire coil 1, thereby improving the heat dissipation effect. The fixing components include the fixing plate 6, fixing bolts 7, and slots 8, which together ensure the stability and firmness of the heat conduction plate 4 and the heat dissipation fins 5, and fix the spray pipe 9. The fixing plate 6 is snapped into the heat conduction plate 4 through the slots 8 and further tightened by the fixing bolts 7 and the misalignment bolts 15. The connecting column 10 and the fixing plate 11 provide additional fixing support.
[0048] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A heat dissipation coil device made of copper composite material, comprising a coil (1), flanges (2) for connection are fixedly installed at both ends of the coil (1), a sealing gasket for sealing is installed at the center of the flange (2), a plurality of through holes are provided at the side end of the sealing gasket, connecting bolts (3) for fixation are installed in the through holes, characterized in that, Also included are: A fixed component installed at the side end of the heat-conducting plate (4) for the structure of the heat-conducting plate (4) to be fixed.
2. A heat sink coil device made of a copper composite material according to claim 1, characterized in that: The upper and lower ends of the coil pipe (1) are fixedly installed with heat-conducting plates (4) for heat conduction, and the outer end surface of the heat-conducting plate (4) is fixedly installed with a plurality of heat dissipation fins (5) for heat dissipation, and the heat dissipation fins (5) are evenly arranged on the surface of the heat-conducting plate (4).
3. A heat sink coil device made of a copper composite material according to claim 1, characterized in that: The side end of the coil pipe (1) is provided with a spray pipe (9) for cooling, the center of the spray pipe (9) penetrates the surface of the heat-conducting plate (4), and the spray pipe (9) is arranged around the coil pipe (1) and the heat dissipation fin (5), and the two ends of the spray pipe (9) penetrate the surface of the fixed plate (6) and are connected with the adapter (12), and the surface of the spray pipe (9) is provided with a plurality of nozzles for spraying.
4. A heat sink coil apparatus made of a copper composite material according to claim 1, characterized in that: The fixed component includes a fixed plate (6), a clamping groove (8) and a fixed bolt (7), the inner end of the fixed plate (6) is provided with a clamping groove (8) corresponding to the position of the heat-conducting plate (4), and the outer side of the fixed plate (6) is provided with a plurality of fixed bolts (7) corresponding to the position of the clamping groove (8), and one end of the fixed bolt (7) penetrates the surface of the fixed plate (6) and extends to the inside of the heat-conducting plate (4).
5. A heat sink coil device made of a copper composite material according to claim 4, characterized in that: The two ends of the two fixed plates (6) are provided with an end plate (14), and a plurality of fixed offset bolts (15) are installed on the surface of the end plate (14) corresponding to the position of the fixed plate (6), and the lower end of the offset bolt (15) penetrates the surface of the end plate (14) and extends to the inside of the fixed plate (6), and the offset bolt (15) and the fixed bolt (7) are arranged in an interlaced manner.
6. A heat sink coil apparatus made of a copper composite material according to claim 1, characterized in that: The side end of the coil pipe (1) is provided with a plurality of connecting columns (10) for fixation, and the two ends of the connecting column (10) penetrate the surfaces of the heat-conducting plate (4) and the end plate (14) and are connected with the fixed disc (11), and the connecting column (10) is fixedly installed with a sealing sheet (16) for sealing at the connecting position with the heat-conducting plate (4).
7. A heat sink coil device made of a copper composite material according to claim 6, characterized in that: The inside of the coil pipe (1) is fixedly installed with a spiral blade (13) for flow guiding, and the connecting column (10) and the spray pipe (9) are arranged in a parallel manner.
Citation Information
Patent Citations
Heat dissipation coil device made of copper composite material
CN212512580U