A rapid cooling device for low temperature micro-fusion welding

CN224713258UActive Publication Date: 2026-09-04ANHUI ZHECHUANG ENVIRONMENTAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202521863955.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-01
Publication Date
2026-09-04
Estimated Expiration
2035-09-01

AI Technical Summary

Technical Problem

[0004]针对上述现有技术,本实用新型要解决的技术问题是冷却效果不好

Benefits of technology

[0011] In summary, the combined use of a suction pump and a cooling ring allows the circulating coolant to continuously remove heat from the welding area. Then, the medium in the cooling tank provides auxiliary cooling to the bottom of the parts, preventing localized overheating. This dual cooling system effectively controls the temperature.

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Abstract

The utility model relates to a kind of quick cooling device of low-temperature micro-fusion welding in the field of cooling device, including base, clamping table is installed on base, through cavity and backflow cavity are respectively set in base, fixedly connected with baffle between through cavity and backflow cavity, cooling ring is installed at through cavity and backflow cavity end, recess is set in cooling ring, magnetic clamping ring one is installed on cooling ring, buckle one is fixedly connected on magnetic clamping ring one, buckle one is used in recess cooperation, suction pump is fixedly connected on base, outlet valve is installed on suction pump, inlet pipe is installed on outlet valve, backflow valve is installed on suction pump, backflow pipe is installed on backflow valve, realize that circulating coolant continuously takes away welding area heat, medium in cooling box carries out auxiliary cooling to part bottom, avoid local overheating, double cooling controls temperature.
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Description

Technical Field

[0001] This utility model relates to a rapid cooling device for low-temperature micro-fusion welding, and more particularly to a rapid cooling device for low-temperature micro-fusion welding applied in the field of cooling devices. Background Technology

[0002] Rapid cooling devices for low-temperature micro-melting welding are not limited to industrial workshops; they have long permeated many products we encounter daily. By improving welding precision and reliability, they silently enhance the durability, safety, and lifespan of products. In the field of precision manufacturing (such as electronic packaging, medical devices, and aerospace component processing), low-temperature micro-melting welding technology is widely used because it can achieve high-precision connections of tiny components, making high-precision connections a core process.

[0003] However, during processing, poor cooling of the parts can easily lead to localized overheating and damage. Utility Model Content

[0004] The technical problem that this utility model aims to solve in view of the above-mentioned prior art is poor cooling effect.

[0005] To address the aforementioned problems, this utility model provides a rapid cooling device for low-temperature micro-melting welding, comprising a base with a flow cavity and a return cavity respectively, a partition fixedly connected between the flow cavity and the return cavity, a cooling ring installed at the port of the flow cavity and the return cavity, a groove on the cooling ring, a magnetic clamping ring installed on the cooling ring, and a buckle fixedly connected to the magnetic clamping ring, the buckle cooperating with the groove.

[0006] In the aforementioned rapid cooling device for low-temperature micro-melting welding, the circulating cooling speed is even faster.

[0007] As a further improvement of this application, a suction pump is fixedly connected to the base, the suction pump is equipped with a water outlet valve, the water outlet valve is equipped with a water inlet pipe, the suction pump is equipped with a return valve, and the return valve is equipped with a return pipe, which makes the control convenient and easy to operate.

[0008] As a further improvement of this application, the outlet valve is connected to the flow chamber through the inlet pipe, and the return chamber is connected to the return valve through the return pipe. The coolant in the flow chamber flows through the cooling ring and then flows into the return chamber, and then returns to the suction pump through the return pipe and the return valve, forming a circulation process.

[0009] As a further improvement of this application, a T-shaped slot is provided on the base, a T-shaped buckle is fixedly connected to the clamping platform, a magnetic groove is provided in the T-shaped slot, and a magnetic snap is fixedly connected to the connection end of the T-shaped buckle and the T-shaped slot. The T-shaped slot and the T-shaped buckle are used together, and the magnetic snap is used together with the magnetic groove. The components are used together to make the connection more stable.

[0010] As another improvement of this application, a magnetic clamping ring II is installed on the clamping platform, and a cooling box is fixedly connected to the bottom of the clamping platform. An opening I is opened on the top of the cooling box, and an opening II is opened on the bottom of the cooling box. A sealing ring is installed in the opening II, which adds a cooling method and facilitates local cooling.

[0011] In summary, the combined use of a suction pump and a cooling ring allows the circulating coolant to continuously remove heat from the welding area. Then, the medium in the cooling tank provides auxiliary cooling to the bottom of the parts, preventing localized overheating. This dual cooling system effectively controls the temperature. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the structure of the first embodiment of this application;

[0013] Figure 2 Explosion of the first embodiment of this application Figure 1 ;

[0014] Figure 3 A cross-sectional view of the first embodiment of this application. Figure 1 ;

[0015] Figure 4 Explosion of the first embodiment of this application Figure 2 ;

[0016] Figure 5 A cross-sectional view of the first embodiment of this application. Figure 2 ;

[0017] Figure 6 Explosion of the first embodiment of this application Figure 2 Part A;

[0018] Figure 7 A cross-sectional view of the first embodiment of this application. Figure 2 Part B;

[0019] Figure 8 A cross-sectional view of the first embodiment of this application. Figure 2 Part C.

[0020] Explanation of the labels in the diagram:

[0021] 1. Base; 101. Flow chamber; 102. Partition plate; 1021. Cooling ring; 103. Return chamber; 104. Magnetic clamping ring one; 105. Groove; 106. Buckle one; 107. T-shaped slot; 2. Suction pump; 201. Water outlet valve; 202. Water inlet pipe; 203. Return valve; 204. Return pipe; 3. Clamping platform; 301. Magnetic clamping ring two; 302. T-shaped buckle; 303. Cooling box; 304. Opening one; 305. Opening two; 306. Magnetic buckle; 307. Sealing ring; 4. Welded components. Detailed Implementation

[0022] The following describes one embodiment of this application in detail with reference to the accompanying drawings.

[0023] First implementation method:

[0024] The base 1 includes a flow chamber 101 and a return chamber 103, with a partition 102 fixedly connected between them. A cooling ring 1021 is installed at the ports of the flow chamber 101 and the return chamber 103, with a groove 105 on the cooling ring 1021. A magnetic clamping ring 104 is installed on the cooling ring 1021, and a buckle 106 is fixedly connected to the magnetic clamping ring 104, engaging with the groove 105. A suction pump 2 is fixedly connected to the base 1, with an outlet valve 201 and an inlet pipe 202 installed on the outlet valve 201. A return valve 203 is installed on the suction pump 2, with a return pipe 204 installed on the return valve 203. The outlet valve 201 is connected to the flow chamber 101 via the inlet pipe 202, and the return chamber 103 is connected to the return valve 203 via the return pipe 204. The coolant in the flow chamber 101 flows through the cooling ring 1021 and then flows into the return chamber 103. It then returns to the suction pump 2 through the return pipe 204 and the return valve 203, forming a circulation process. A T-shaped slot 107 is provided on the base 1. A clamping platform 3 is installed on the base 1. A T-shaped buckle 302 is fixedly connected to the clamping platform 3. A magnetic groove 108 is provided in the T-shaped slot 107. A magnetic buckle 306 is fixedly connected to the connection end of the T-shaped buckle 302 and the T-shaped slot 107. The T-shaped slot 107 and the T-shaped buckle 302 are used together. The magnetic buckle 306 and the magnetic groove 108 are used together. A magnetic clamping ring 301 is installed on the clamping platform 3. A cooling box 303 is fixedly connected to the bottom of the clamping platform 3. An opening 304 is provided above the cooling box 303. An opening 305 is provided at the bottom of the cooling box 303. A sealing ring 307 is installed in the opening 305.

[0025] When using the device, the operator first adds coolant to the cooling tank 303. The worker puts the part to be processed into the cooling tank 303 through the opening 304 at the top and through the sealing ring 307 in the opening 305. The sealing ring 307 is made of elastic sealing material to prevent coolant leakage and to clamp the part to be processed. After the part to be processed is fixed, the clamping table 3 is installed. The T-shaped buckle 302 is aligned with the T-shaped slot 107 and the clamping table 3 is pushed to align the magnetic buckle 306 with the magnetic groove 108. At this time, the clamping table 3 and the base 1 are installed. Then, according to the size of the part to be processed, the corresponding size magnetic clamping ring 104 is selected. The buckle 106 is aligned with the groove 105 and the magnetic clamping ring 104 is installed. The drive power supply 4 and the suction pump 2 installed next to the suction pump 2 are turned on and the device starts to work.

[0026] When the device is running, the coolant in the suction pump 2 is discharged from the outlet valve 201, flows through the inlet pipe 202 into the flow chamber 101, then flows through the cooling ring 1021 into the return chamber 103, and then returns to the suction pump 2 through the return pipe 204 and the return valve 203 to form a circulation process, ensuring that the cooling ring 1021 is always at an appropriate temperature to cool the workpiece. The operator processes the workpiece through the welding component 4, which is located on the left side of the suction pump 2 and can be adjusted in height and angle through its bracket. During the processing, the device continuously controls the temperature through the dual cooling of the cooling ring 1021 and the cooling box 303, preventing damage caused by excessive temperature during processing.

[0027] The system employs a dual design of circulating cooling ring 1021 and liquid immersion cooling in cooling box 303. This design not only continuously removes heat from the welding area through circulating coolant, but also provides auxiliary cooling to the bottom of the parts through the medium in cooling box 303, preventing localized overheating.

[0028] In light of current practical needs, the above-described embodiments adopted in this application are not limited to these. Any changes made within the scope of knowledge possessed by those skilled in the art without departing from the concept of this application still fall within the protection scope of this utility model.

Claims

1. A rapid cooling device for low-temperature micro-melting welding, comprising a flow cavity (101) and a return cavity (103) respectively disposed in a base (1), characterized in that: A partition (102) is fixedly connected between the flow chamber (101) and the return chamber (103). A cooling ring (1021) is installed at the port of the flow chamber (101) and the return chamber (103). A groove (105) is provided on the cooling ring (1021). A magnetic clamping ring (104) is installed on the cooling ring (1021). A buckle (106) is fixedly connected to the magnetic clamping ring (104). The buckle (106) is used in conjunction with the groove (105).

2. The rapid cooling device for low-temperature micro-fusion welding according to claim 1, characterized in that: A suction pump (2) is fixedly connected to the base (1). A water outlet valve (201) is installed on the suction pump (2). A water inlet pipe (202) is installed on the water outlet valve (201). A return valve (203) is installed on the suction pump (2). A return pipe (204) is installed on the return valve (203).

3. The rapid cooling device for low-temperature micro-fusion welding according to claim 2, characterized in that: The outlet valve (201) is connected to the flow chamber (101) through the inlet pipe (202), and the return chamber (103) is connected to the return valve (203) through the return pipe (204).

4. The rapid cooling device for low-temperature micro-fusion welding according to claim 3, characterized in that: The coolant in the flow chamber (101) flows through the cooling ring (1021) and then into the return chamber (103), and then returns to the suction pump (2) through the return pipe (204) and the return valve (203) to form a circulation process.

5. The rapid cooling device for low-temperature micro-fusion welding according to claim 1, characterized in that: The base (1) has a T-shaped slot (107) and a clamping platform (3) is installed on the base (1). A T-shaped buckle (302) is fixedly connected to the clamping platform (3). A magnetic groove (108) is provided in the T-shaped slot (107). A magnetic buckle (306) is fixedly connected to the T-shaped buckle (302) and the T-shaped slot (107). The T-shaped slot (107) and the T-shaped buckle (302) are used together, and the magnetic buckle (306) and the magnetic groove (108) are used together.

6. The rapid cooling device for low-temperature micro-fusion welding according to claim 5, characterized in that: A magnetic clamping ring 2 (301) is installed on the clamping platform (3). A cooling box (303) is fixedly connected to the bottom of the clamping platform (3). An opening 1 (304) is opened above the cooling box (303). An opening 2 (305) is opened at the bottom of the cooling box (303). A sealing ring (307) is installed in the opening 2 (305).