Efficient heat-dissipation copper-clad magnetizing clamp device
By introducing a heat dissipation control mechanism and a temperature detection device into the copper clad laminate device, the water flow rate is dynamically adjusted, which solves the problem of poor heat dissipation, achieves efficient heat dissipation and energy saving, and improves the stability and service life of the device.
Patent Information
- Application Number
- CN202511894748.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-16
- Publication Date
- 2026-02-27
AI Technical Summary
Existing copper-clad laminate devices suffer from poor heat dissipation during magnetization, leading to excessively high temperatures that affect performance and stability, and also result in water waste.
It adopts a heat dissipation control mechanism, combined with a temperature detection device and an electromagnet-driven transmission structure, to dynamically adjust the water flow speed of the heat dissipation pipe and automatically adjust the heat dissipation intensity according to temperature changes.
This achieves efficient heat dissipation for the copper clad laminate device, avoiding performance degradation caused by excessive temperature, saving energy consumption, and improving the stability and service life of the device.
Smart Images

Figure CN121583703A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of electrical appliance manufacturing auxiliary equipment, more particularly, the present application relates to a high-efficiency heat dissipation copper-clad magnetizing clamp device. BACKGROUND
[0002] In the field of modern electronic manufacturing and magnetic material processing, copper-clad plate devices are widely used in various circuit board manufacturing and magnetic element magnetizing processes as key components. However, in actual working scenarios, copper-clad plate devices often face severe heat dissipation challenges.
[0003] According to the search, the publication No. CN222851207U discloses a copper-clad plate type multi-pole planar magnetizing clamp, which comprises a heat dissipation base, a base plate and a copper-clad plate body. The heat dissipation base is fixed to the base plate by bolts. The base plate is nested with the heat dissipation base. The base plate is provided with the copper-clad plate body. The heat dissipation base is fixed to the first positioning plate by bolts. The copper-clad plate type multi-pole planar magnetizing clamp is designed according to the required pole distance of the workpiece to be magnetized and has different structures. The height precision of the copper-clad plate type multi-pole planar magnetizing clamp is used to grasp the main contradiction and improve the magnetizing effect of small magnetic strips, multi-pole distances and small pole distances. It can meet various needs. Under the condition of meeting the magnetizing requirements, the current of the copper plate is as small as possible, thereby prolonging the service life of the magnetizing clamp. Once magnetized, the multi-level planar magnetizing demand of the entire permanent magnet material is met.
[0004] In the above-mentioned patent, the heat dissipation base is provided with a circulating water channel, which is connected to a cooling water pipe through an inlet and an outlet to realize cooling water circulation for heat dissipation. However, during the magnetizing process, the heat generated by the copper-clad plate body will dynamically change due to factors such as magnetizing power and working time. If heat dissipation is always carried out at a fixed water flow rate, when the magnetizing power is low and the heat generated is small, it will cause waste of water resources. When the magnetizing power is high and a large amount of heat is generated, the fixed water flow rate may not be able to remove the heat in time, resulting in high temperature of the copper-clad plate body, which affects its performance and stability. Therefore, we propose a high-efficiency heat dissipation copper-clad magnetizing clamp device. SUMMARY
[0005] In order to overcome the above-mentioned defects of the prior art, the present application provides a high-efficiency heat dissipation copper-clad magnetizing clamp device to solve the problems raised in the background art.
[0006] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a high-efficiency heat dissipation copper-clad magnetizing clamp device, comprising a heat dissipation base and a copper-clad plate device, a heat dissipation water pipe is installed in the heat dissipation base, a water outlet pipe and a water inlet pipe are installed on the two sides of the outside of the heat dissipation base, a heat dissipation control mechanism is installed at one end of the water inlet pipe, and a temperature detection device is arranged in the heat dissipation base. The heat dissipation control mechanism includes a pipe installed at one end of the water inlet pipe, a valve body installed at the water inlet end of the pipe, and a control and adjustment component installed inside the pipe. The control and adjustment components include a mounting bracket, a fixed bracket, a water passage plate, and a mounting rod installed inside the pipe. The mounting bracket has two symmetrical grooves inside, each containing a guide rod. Each guide rod has a slide seat fitted onto its exterior. A connecting bracket is installed at one end of each slide seat, and a connecting seat is connected to one end of each connecting bracket. A connecting plate is installed on one side of both connecting seats, and a toothed plate is installed on the top side of the connecting plate. Gear 1 and bevel gear 2 are rotatably connected to the exterior of the mounting rod. A rotating plate is rotatably connected inside the fixed bracket, with bevel gear 3 installed on one side and a control plate installed on the other side. A water passage port is located at the bottom of the water passage plate. A slide rod is installed on one side of the connecting plate, with a limit plate installed at one end. A spring and a protective cover are installed on one side of the mounting bracket, and an electromagnet is installed inside one side of the mounting bracket.
[0007] Preferably, a control valve is provided at one end of the water outlet pipe, and one end of the water outlet pipe and one end of the water inlet pipe are respectively installed at both ends of the heat dissipation water pipe, and the temperature detection device is located at the bottom of the copper clad laminate device.
[0008] Preferably, the slide is located inside the guide rod, and the electromagnet is ring-shaped and located outside the slide.
[0009] Preferably, the toothed plate is located on top of the gear one, and the teeth of the toothed plate mesh with the teeth of the gear one.
[0010] Preferably, the teeth of bevel gear two mesh with the teeth of bevel gear three, and both the control plate and the water inlet are semi-circular.
[0011] Preferably, the diameter of the limiting plate is larger than the diameter of the slide rod, one end of the spring is located outside the slide rod, and one end of the spring is connected to the limiting plate.
[0012] Preferably, the protective cover is located outside the limiting plate and the spring, the electromagnet corresponds to the connecting plate, and the connecting plate is made of iron.
[0013] The technical effects and advantages of this invention are as follows: In use, this invention achieves efficient heat dissipation for the copper-clad laminate device by installing heat dissipation water pipes inside the heat dissipation base and precisely adjusting the water flow rate with a heat dissipation control mechanism. When the temperature detection device detects that the temperature of the copper-clad laminate device has risen to the set high-temperature threshold, the heat dissipation control mechanism is quickly activated. Through a series of transmission structures, such as an electromagnet attracting the connecting plate, the control plate rotates to increase the opening degree of the water inlet, thereby accelerating the flow rate of water in the heat dissipation water pipe and enhancing the heat dissipation effect. Compared with traditional heat dissipation methods, this device effectively avoids problems such as performance degradation and component damage caused by excessively high temperatures in the copper-clad laminate device, greatly improving the stability and reliability of the device and extending its service life.
[0014] In use, this invention features intelligent temperature detection and control. The temperature detection device monitors the temperature of the copper-clad laminate device in real time and automatically adjusts the working state of the heat dissipation control mechanism according to temperature changes. When the temperature of the copper-clad laminate device is within the normal range, the heat dissipation control mechanism does not activate, and the water flow in the cooling pipes is not circulated, reducing unnecessary energy consumption. When the temperature rises and stronger heat dissipation is required, the heat dissipation control mechanism, control valve, and valve body are activated to adjust the water flow rate. This intelligent control method not only saves water and electricity resources and reduces operating costs, but also automatically adjusts the heat dissipation intensity according to different working scenarios and load conditions, making it highly adaptable. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of the present invention.
[0016] Figure 2 This is an internal structural diagram of the present invention.
[0017] Figure 3 This is a schematic diagram of the heat dissipation control mechanism of the present invention.
[0018] Figure 4 This is an internal view of the heat dissipation control mechanism of the present invention.
[0019] Figure 5 This is a schematic diagram of the control and adjustment component of the present invention.
[0020] Figure 6 This is a side view of the control and adjustment component of the present invention.
[0021] Figure 7 This is an internal diagram of the control and adjustment component of the present invention.
[0022] The attached diagram is labeled as follows: 1. Heat dissipation base; 2. Heat dissipation water pipe; 3. Water outlet pipe; 4. Water inlet pipe; 5. Heat dissipation control mechanism; 6. Copper-clad laminate device; 7. Temperature detection device; 51. Pipe; 52. Valve body; 53. Control and adjustment assembly; 531. Mounting bracket; 532. Fixing bracket; 533. Water passage plate; 534. Groove; 535. Guide rod; 536. Slide seat; 537. Connecting bracket; 538. Connecting seat; 539. Connecting plate; 5310. Gear plate; 5311. Mounting rod; 5312. Gear one; 5313. Bevel gear two; 5314. Rotating plate; 5315. Bevel gear three; 5316. Control board; 5317. Water inlet; 5318. Slide rod; 5319. Limiting plate; 5320. Spring; 5321. Protective cover; 5322. Electromagnet. Detailed Implementation
[0023] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0024] As attached Figures 1-7 The high-efficiency heat dissipation copper-clad magnetic clamp device shown includes a heat dissipation base 1 and a copper-clad plate device 6. A heat dissipation water pipe 2 is installed inside the heat dissipation base 1. An outlet water pipe 3 and an inlet water pipe 4 are respectively installed on the two sides of the outside of the heat dissipation base 1. A heat dissipation control mechanism 5 is installed at one end of the inlet water pipe 4. A temperature detection device 7 is installed inside the heat dissipation base 1. A control valve is installed at one end of the outlet water pipe 3. One end of the outlet water pipe 3 and the inlet water pipe 4 are respectively installed at both ends of the heat dissipation water pipe 2. The temperature detection device 7 is located at the bottom of the copper-clad plate device 6. The heat dissipation control mechanism 5 includes a pipe 51 installed at one end of the water inlet pipe 4, a valve body 52 installed at the water inlet end of the pipe 51, and a control and adjustment component 53 installed inside the pipe 51. The control and adjustment assembly 53 includes a mounting bracket 531, a fixing bracket 532, a water flow plate 533, and a mounting rod 5311 installed inside the pipe 51. The mounting bracket 531 has two symmetrical grooves 534 inside, each groove 534 housing a guide rod 535. Each guide rod 535 has a slide seat 536 fitted onto its exterior, located inside the guide rod 535. Each slide seat 536 has a connecting bracket 537 installed at one end. Each connecting bracket 537 has a connecting bracket 537 installed at one end. A connecting base 538 is connected, and a connecting plate 539 is mounted on one side of both connecting bases 538. A toothed plate 5310 is mounted on the top side of the connecting plate 539. Gear 1 5312 and bevel gear 2 5313 are rotatably connected to the outside of the mounting rod 5311. The toothed plate 5310 is located on top of gear 1 5312, and the teeth of the toothed plate 5310 mesh with the teeth of gear 1 5312. A rotating plate 5314 is rotatably connected inside the fixing bracket 532. A toothed plate 5314 is mounted on one side of the rotating plate 5314. The teeth of bevel gear 3 5315 mesh with the teeth of bevel gear 2 5313. A control plate 5316 is installed on the other side of the rotating plate 5314. A water inlet 5317 is opened at the bottom of the water passage plate 533. Both the control plate 5316 and the water inlet 5317 are semi-circular. A slide rod 5318 is installed on one side of the connecting plate 539. A limit plate 5319 is installed at one end of the slide rod 5318. A spring 5320 and a protective cover 5321 are respectively installed on the outer side of the mounting bracket 531. The diameter of the limiting plate 5319 is larger than the diameter of the slide rod 5318. One end of the spring 5320 is located outside the slide rod 5318 and is connected to the limiting plate 5319. An electromagnet 5322 is installed inside one side of the mounting bracket 531. The electromagnet 5322 is ring-shaped and located outside the slide rod 5318. The protective cover 5321 is located outside the limiting plate 5319 and the spring 5320. The electromagnet 5322 corresponds to the connecting plate 539, which is made of iron. The device mainly consists of a heat dissipation base 1 and a copper-clad laminate device 6. The heat dissipation base 1 is also equipped with a temperature detection device 7, which is located at the bottom of the copper-clad laminate device 6 and is used to detect the temperature of the copper-clad laminate device 6 in real time. The control valve installed at one end of the water outlet pipe 3 is mainly used to control the discharge of water in the heat dissipation water pipe 2. During normal operation of the device, the water discharge of the water outlet pipe 3 can be controlled by adjusting the control valve according to factors such as heat dissipation demand and system pressure. This works in conjunction with the heat dissipation control mechanism 5 to adjust the inlet water flow, thereby maintaining the stability and efficiency of water circulation in the heat dissipation water pipe 2 and ensuring the heat dissipation effect of the copper clad laminate device 6. When the electromagnet 5322 is energized, it attracts the connecting plate 539, causing the slide bar 5318 to move, and the spring 5320 stores elastic potential energy; when the electromagnet 5322 is de-energized, the magnetic force disappears, the spring 5320 releases the elastic potential energy, and drives the connecting plate 539 and other components to return to their original positions; the spring 5320 plays the role of reset and buffer.
[0025] The working principle of this invention is as follows: The copper clad laminate device 6 is an existing structure as disclosed in CN222851207U, which includes: a substrate, a copper clad laminate body, a magnetizing power input line, a magnetizing power output line, a first positioning plate, a second positioning plate, a bracket, and a magnetic core; the specific implementation method will not be described in detail here.
[0026] The temperature detection device 7 is located at the bottom of the copper clad laminate device 6 and continuously detects the temperature of the copper clad laminate device 6. When the detected temperature is within the normal range, the entire device remains in its current state, the heat dissipation control mechanism 5 does not perform any special actions, and the water flow in the heat dissipation pipe 2 does not circulate. When the temperature detection device 7 detects that the temperature of the copper clad laminate device 6 rises to the set high temperature threshold, the heat dissipation control mechanism 5 starts to work, and the control valve and valve body 52 are activated. At this time, the electromagnet 5322 installed inside one side of the mounting bracket 531 is energized. Since the connecting plate 539 is made of iron, the magnetic force generated by the electromagnet 5322 attracts the connecting plate 539 to move closer to the electromagnet 5322. When the connecting plate 539 moves, it drives the slide rod 5318 installed on one side and the toothed plate 5310 installed on the top of the other side to move together. During the movement of the slide rod 5318, the limiting plate 5319 at one end of it compresses the spring 5320 installed on the outside of the mounting bracket 531. At the same time, the slide rod 5318 and the limiting plate 5319 move inside the protective cover 5321. The protective cover 5321 plays the role of protecting the spring 5320 and other components. When the toothed plate 5310 moves, its teeth mesh with the teeth of gear 5312 mounted on the mounting rod 5311, thus causing gear 5312 to rotate. A bevel gear 5313 is also mounted on the mounting rod 5311. The rotation of gear 5312 causes the mounting rod 5311 to rotate, which in turn causes bevel gear 5313 to rotate. Since the teeth of bevel gear 5313 mesh with the teeth of bevel gear 5315 mounted on one side of the rotating plate 5314 inside the fixed frame 532, the rotation of bevel gear 5313 will drive bevel gear 5315 to rotate. 315 rotates, causing the rotating plate 5314 to rotate; when the rotating plate 5314 rotates, the control plate 5316 installed on its other side rotates accordingly. Since both the control plate 5316 and the water inlet 5317 at the bottom of the water-passing plate 533 are semi-circular, the rotation of the control plate 5316 will change the opening degree of the water inlet 5317. When the temperature rises and heat dissipation needs to be strengthened, the rotation of the control plate 5316 will increase the opening degree of the water inlet 5317, allowing more water to flow through the water inlet 5317, thereby accelerating the flow speed of the water in the heat dissipation pipe 2 and enhancing the heat dissipation effect. When the temperature of the copper clad laminate device 6 drops below the set temperature due to enhanced heat dissipation, the electromagnet 5322 is de-energized and the magnetic force disappears. At this time, the compressed spring 5320 generates elastic force, pushing the limit plate 5319 and the slide bar 5318 to move away from the electromagnet 5322. This, in turn, causes the connecting plate 539, the toothed plate 5310, and other components to move in the opposite direction, causing the rotating plate 5314 and the control plate 5316 to rotate in the opposite direction. This restores the opening degree of the water inlet 5317 to its initial state, and the water flow speed in the cooling water pipe 2 also returns to normal, so as to meet the heat dissipation requirements of the copper clad laminate device 6 at normal temperature.
[0027] Finally, the following points should be noted: First, in the description of this invention, it should be noted that, unless otherwise specified and limited, the terms "installation", "connection", and "linkage" should be interpreted broadly, and can refer to mechanical connection or electrical connection, or internal connection between two components, or direct connection. "Up", "down", "left", "right", etc. are only used to indicate relative positional relationship. When the absolute position of the object being described changes, the relative positional relationship may change. Secondly: The accompanying drawings of the embodiments disclosed in this invention only involve the structures involved in the embodiments disclosed in this invention. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this invention can be combined with each other. In conclusion, the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A high-efficiency heat dissipation copper-clad magnetic clamping device, comprising a heat dissipation base (1) and a copper-clad plate device (6), characterized in that: The heat dissipation base (1) is equipped with a heat dissipation water pipe (2) inside. The heat dissipation base (1) is equipped with an outlet pipe (3) and an inlet pipe (4) on its outer sides respectively. A heat dissipation control mechanism (5) is installed at one end of the inlet pipe (4). A temperature detection device (7) is installed inside the heat dissipation base (1). The heat dissipation control mechanism (5) includes a pipe (51) installed at one end of the water inlet pipe (4), a valve body (52) is installed at the water inlet end of the pipe (51), and a control and adjustment component (53) is provided inside the pipe (51). The control and adjustment assembly (53) includes a mounting bracket (531), a fixing bracket (532), a water-passing plate (533), and a mounting rod (5311) installed inside the pipe (51). The mounting bracket (531) has two symmetrical grooves (534) inside. Guide rods (535) are installed inside each of the two grooves (534). Slide seats (536) are fitted onto the outside of each of the two guide rods (535). A connecting bracket (537) is installed at one end of each of the two slide seats (536). A connecting seat (538) is connected to one end of each of the two connecting brackets (537). A connecting plate (539) is installed on one side of each of the two connecting seats (538). A toothed plate (5310) is installed on the top side of the connecting plate (539). Gear 1 (5312) and bevel gear 2 (5313) are rotatably connected to the outside of the mounting rod (5311). A rotating plate (5314) is rotatably connected inside the fixed frame (532). A bevel gear 3 (5315) is installed on one side of the rotating plate (5314). A control plate (5316) is installed on the other side of the rotating plate (5314). A water inlet (5317) is opened at the bottom of the water-passing plate (533). A sliding rod (5318) is installed on one side of the connecting plate (539). A limit plate (5319) is installed at one end of the sliding rod (5318). A spring (5320) and a protective cover (5321) are installed on the outside of the mounting frame (531). An electromagnet (5322) is installed inside one side of the mounting frame (531).
2. The high-efficiency heat dissipation copper-plated magnetizing fixture device according to claim 1, characterized in that: A control valve is provided at one end of the water outlet pipe (3), and one end of the water outlet pipe (3) and the water inlet pipe (4) are respectively installed at both ends of the heat dissipation water pipe (2). The temperature detection device (7) is located at the bottom of the copper clad laminate device (6).
3. The high-efficiency heat dissipation copper-plated magnetizing fixture device according to claim 1, characterized in that: The slide block (536) is located inside the guide rod (535), and the electromagnet (5322) is annular and located outside the slide rod (5318).
4. The high-efficiency heat dissipation copper-plated magnetizing fixture device according to claim 1, characterized in that: The toothed plate (5310) is located on top of the gear (5312), and the teeth of the toothed plate (5310) mesh with the teeth of the gear (5312).
5. The high-efficiency heat dissipation copper-plated magnetizing fixture device according to claim 1, characterized in that: The teeth of the second bevel gear (5313) mesh with the teeth of the third bevel gear (5315), and the control plate (5316) and the water inlet (5317) are both semi-circular.
6. The high-efficiency heat dissipation copper-plated magnetizing fixture device according to claim 1, characterized in that: The diameter of the limiting plate (5319) is larger than the diameter of the slide rod (5318). One end of the spring (5320) is located outside the slide rod (5318), and one end of the spring (5320) is connected to the limiting plate (5319).
7. The high-efficiency heat dissipation copper-plated magnetizing fixture device according to claim 1, characterized in that: The protective cover (5321) is located outside the limiting plate (5319) and the spring (5320), and the electromagnet (5322) corresponds to the connecting plate (539), which is made of iron.
Citation Information
Patent Citations
Copper-clad plate type multi-pole plane magnetizing clamp
CN222851207U