Die cooling device for copper rod machining

By introducing a water pump and flow pipe into the cooling device of the copper rod processing mold, the continuous circulation of cooling water is achieved, which solves the problem of rising cooling water temperature and improves the cooling effect of the mold and the forming efficiency of the copper rod.

CN224115158UActive Publication Date: 2026-04-14TIANJIN XINHONG RENEWABLE RESOURCES CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TIANJIN XINHONG RENEWABLE RESOURCES CO LTD
Filing Date
2025-05-06
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

In existing cooling devices, the cooling water does not circulate smoothly in the cooling tank, causing the cooling water temperature to rise and heat to accumulate inside the mold, making it difficult to achieve comprehensive cooling and resulting in poor cooling and heat dissipation effects.

Method used

A mold cooling device was designed, which includes a water pump, a cooling tank, a flow pipe, and a lifting assembly. The device uses circulating cooling water to surround and cool the shaping pipe, and combines it with an electric push rod to lift and lower the movable mold, facilitating demolding operations.

Benefits of technology

It achieves continuous circulation of cooling water, improves the cooling and heat dissipation effect of the mold, and enhances the forming efficiency and demolding convenience of copper rod processing.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224115158U_ABST
    Figure CN224115158U_ABST
Patent Text Reader

Abstract

The utility model discloses a mould cooling device for copper rod processing, which relates to the technical field of copper rod processing and comprises a base, a positioning mould is fixedly mounted at the center of the outer top surface of the base, a movable mould is arranged on the outer top surface of the positioning mould, and a first cooling cavity and a second cooling cavity are respectively arranged in the positioning mould and the movable mould. First shaping pipes distributed in a linear array mode are fixedly installed in the first cooling cavity, second shaping pipes distributed in a linear array mode are fixedly installed in the second cooling cavity, and a heat dissipation assembly used for conducting full cooling on the first shaping pipes and the second shaping pipes is arranged on the outer top face of the base. Through the arrangement of the water pump, the cooling box, the first flowing pipe, the second flowing pipe, the third flowing pipe and the fourth flowing pipe, cooling water can circularly flow in the first cooling cavity and the second cooling cavity, then the effect of continuously carrying out surrounding type cooling treatment on the first shaping pipe and the second shaping pipe is achieved, and the cooling and heat dissipation effects are improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of copper rod processing technology, and in particular to a mold cooling device for copper rod processing. Background Technology

[0002] Copper rod processing is the process of shaping copper materials into different shapes, sizes, and specifications. Copper rods can be used in various applications, such as electrical engineering, construction, machinery manufacturing, and chemical industries, which leads to a huge demand for the processing and production of such copper rods. At the same time, since the temperature of metal processing and forming is relatively high, appropriate cooling devices are needed during the processing to quickly cool the molds in the copper rod production process, so as to facilitate the rapid forming of copper rods in the later stages.

[0003] Existing cooling devices typically inject cooling water into a cooling tank within the mold. However, this method hinders the circulation of cooling water within the tank, easily leading to an increase in the water temperature and heat accumulation within the mold. Consequently, it is difficult to achieve comprehensive cooling of the molten copper within the mold, resulting in poor cooling and heat dissipation. Therefore, those skilled in the art have provided a mold cooling device for copper rod processing to address the problems mentioned in the background section. Utility Model Content

[0004] To address the shortcomings of existing technologies, this utility model provides a mold cooling device for copper rod processing, which solves the problem mentioned in the background technology that the cooling water cannot circulate inside the cooling tank, which easily leads to an increase in the temperature of the cooling water in the cooling tank, causing heat to accumulate in the mold and making it difficult to achieve comprehensive cooling of the copper liquid in the processing mold, resulting in poor cooling and heat dissipation effect.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: a mold cooling device for copper rod processing, comprising a base, a positioning mold fixedly installed at the center of the outer top surface of the base, a movable mold provided on the outer top surface of the positioning mold, a cooling chamber I and a cooling chamber II respectively opened inside the positioning mold and the movable mold, a shaping tube I arranged in a linear array fixedly installed inside the cooling chamber I, one end of several shaping tubes I extending to the outer top surface of the positioning mold, a shaping tube II arranged in a linear array fixedly installed inside the cooling chamber II, both ends of several shaping tubes II extending to the outer surfaces of the upper and lower ends of the movable mold respectively, and a lifting component for driving the movable mold and the positioning mold to be fixed or separated on the outer top surface of the base;

[0006] A water storage tank is fixed to the outer bottom surface of the base by bolt threads, and a heat dissipation component for cooling the first and second shaping tubes is provided on the outer top surface of the base.

[0007] As a further technical solution of this utility model, the heat dissipation assembly includes a cooling box fixedly installed on the right end of the outer top surface of the base. The cooling box is provided with an S-shaped condenser tube. The two ends of the condenser tube extend to the outside of the cooling box. A flow tube one and a flow tube two are respectively connected through the left outer wall of the positioning mold and the movable mold. A flow tube three and a flow tube four are respectively connected through the right outer wall of the positioning mold and the movable mold. A water pump is fixedly installed on the right outer wall of the water storage tank.

[0008] As a further technical solution of this utility model, one end of the condenser tube is connected to the output end of the water pump through a pipe one, and the other end of the condenser tube is connected to flow pipe three and flow pipe four through a three-way connector one. The input end of the water pump is connected to the water storage tank through a pipe two. The ends of flow pipe one and flow pipe two that are close to each other are connected to pipe three through a three-way connector two. Pipe three is connected to the water storage tank.

[0009] As a further technical solution of this utility model, the lifting assembly includes guide rods fixedly installed at the four corners of the outer top surface of the base, a top plate fixedly installed at one end of the four guide rods, an electric push rod fixedly installed at the center of the outer top surface of the top plate, the upper output end of the electric push rod extending to the outer bottom surface of the top plate and fixedly installed with a horizontal plate, and L-shaped connecting plates fixedly installed on the left and right outer side walls of the movable mold.

[0010] As a further technical solution of this utility model, straight plates are fixedly installed on the outer top surfaces of the two L-shaped connecting plates. The front and rear ends of the two straight plates are slidably sleeved on the outer peripheral surface of the guide rod, and at the same time, one end of each of the two straight plates is fixedly connected to the left and right outer walls of the horizontal plate respectively.

[0011] As a further technical solution of this utility model, an annular groove is provided on the outer top surface of several shaping tubes one, and a retaining ring that matches the annular groove is fixedly installed on the outer bottom surface of several shaping tubes two, and the retaining ring is engaged in the inner side of the annular groove.

[0012] This utility model provides a mold cooling device for copper rod processing, which has the following advantages compared with the prior art:

[0013] 1. This design provides a mold cooling device for copper rod processing. Through the installation of a water pump, cooling tank, flow pipe one, flow pipe two, flow pipe three, and flow pipe four, the cooling water can continuously circulate in cooling chamber one and cooling chamber two, thereby achieving a continuous surrounding cooling effect on shaping tube one and shaping tube two, improving the cooling and heat dissipation effect and the forming efficiency after copper rod processing.

[0014] 2. This design provides a mold cooling device for copper rod processing. Through the installation of an electric push rod, guide rod, horizontal plate, straight plate, and L-shaped connecting plate, the movable mold can be driven to move up and down, thereby facilitating the subsequent demolding and re-molding operations after the copper rod has cooled. Attached Figure Description

[0015] Figure 1 This is a first three-dimensional structural schematic diagram of a mold cooling device for copper rod processing;

[0016] Figure 2 This is a second three-dimensional structural diagram of a mold cooling device for copper rod processing;

[0017] Figure 3 This is a cross-sectional three-dimensional structural diagram of a mold cooling device for copper rod processing;

[0018] Figure 4 A three-dimensional structural diagram of a heat dissipation component for a mold cooling device used in copper rod processing;

[0019] Figure 5 This is a three-dimensional structural diagram of a lifting component for a mold cooling device used in copper rod processing.

[0020] In the picture:

[0021] Base; 101. Positioning mold; 102. Movable mold; 103. Cooling chamber one; 104. Cooling chamber two; 105. Shaping tube one; 106. Shaping tube two; 107. Water storage tank;

[0022] Lifting assembly; 201, guide rod; 202, top plate; 203, electric push rod; 204, horizontal plate; 205, L-shaped connecting plate; 206, straight plate;

[0023] Heat dissipation components; 301, Cooling box; 302, Condenser tube; 303, Flow tube one; 304, Flow tube two; 305, Flow tube three; 306, Flow tube four; 307, Water pump; 308, Pipe one; 309, T-joint one; 310, Pipe two; 311, T-joint two; 312, Pipe three.

[0024] Annular groove; 401, retaining ring. Detailed Implementation

[0025] 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.

[0026] Please see Figures 1-5This utility model provides a technical solution for a mold cooling device for copper rod processing: It includes a base 1, a positioning mold 101 fixedly installed at the center of the outer top surface of the base 1, a movable mold 102 provided on the outer top surface of the positioning mold 101, cooling chamber 103 and cooling chamber 2 104 respectively opened inside the positioning mold 101 and the movable mold 102, respectively, cooling chamber 103 having a first cooling chamber 103 having a first cooling chamber 105 fixedly installed in a linear array, one end of several first cooling chamber 105 extending to the outer top surface of the positioning mold 101, cooling chamber 2 having a second cooling chamber 104 having a second cooling chamber 106 fixedly installed in a linear array, both ends of several second cooling chamber 106 extending to the upper and lower outer surfaces of the movable mold 102, respectively, and a lifting assembly 2 provided on the outer top surface of the base 1 for fixing or separating the movable mold 102 from the positioning mold 101, the lifting assembly 2 including components fixedly installed on the base 1. The four corner guide rods 201 on the outer top surface of the base 1 are connected to a top plate 202 at one end. An electric push rod 203 is fixedly installed at the center of the outer top surface of the top plate 202. The upper output end of the electric push rod 203 extends to the outer bottom surface of the top plate 202 and is fixedly installed with a horizontal plate 204. L-shaped connecting plates 205 are fixedly installed on the outer side walls of the left and right sides of the movable mold 102. Straight... The two straight plates 206 are slidably sleeved on the outer circumferential surface of the guide rod 201 at their front and rear ends. At the same time, the corresponding ends of the two straight plates 206 are fixedly connected to the outer walls of the left and right sides of the horizontal plate 204. The outer top surface of several shaping tubes 105 is provided with annular grooves 4, and the outer bottom surface of several shaping tubes 106 is fixedly installed with retaining rings 401 that match the annular grooves 4. The retaining rings 401 are engaged in the inner side of the annular grooves 4. In use, the electric push rod 203 is first activated to drive the horizontal plate 204 to move downward along the outside of the guide rod 201 through the straight plate 206, thereby moving the movable mold 102 closer to the positioning mold 101, so that the retaining ring 401 is sealed and engaged in the inner side of the annular groove 4, thereby fixing and connecting the first shaping tube 105 and the second shaping tube 106. Then, the copper liquid is sequentially poured into the inside of the first shaping tube 105 and the second shaping tube 106 for cooling and forming. After cooling and forming, the electric push rod 203 is activated again to drive the movable mold 102 to separate from the positioning mold 101, thereby facilitating the demolding operation of the copper rod.

[0027] A water storage tank 107 is fixed to the outer bottom surface of the base 1 by bolt threads. A heat dissipation assembly 3 for cooling the first shaping tube 105 and the second shaping tube 106 is provided on the outer top surface of the base 1. The heat dissipation assembly 3 includes a cooling box 301 fixedly installed on the right end of the outer top surface of the base 1. The interior of the cooling box 301 is provided with an S-shaped condenser tube 302. The two ends of the condenser tube 302 extend to the outside of the cooling box 301. A flow tube 1 303 and a flow tube 2 304 are respectively connected through the left outer wall of the positioning mold 101 and the movable mold 102. A flow tube 1 303 and a flow tube 2 304 are respectively connected through the right outer wall of the positioning mold 101 and the movable mold 102. A water pump 307 is fixedly installed on the right outer wall of the water storage tank 107, with flow pipe 305 and flow pipe 4 306 connected. One end of the condenser pipe 302 is connected to the output end of the water pump 307 through pipe 1 308, and the other end of the condenser pipe 302 is connected to flow pipe 305 and flow pipe 4 306 through tee connector 1 309. The input end of the water pump 307 is connected to the water storage tank 107 through pipe 2 310. The ends of flow pipe 1 303 and flow pipe 2 304 that are close to each other are connected to pipe 3 312 through tee connector 2 311. Pipe 3 312 is connected to the water storage tank 107. After the molten copper is injected into the mold, the water pump 307 is controlled and started to transport clean water from the water storage tank 107 to the condenser tube 302 inside the cooling tank 301 through pipe 2 310 and pipe 1 308. The coolant in the cooling tank 301 is cooled to form cooling water, which is injected into the cooling chamber 103 and cooling chamber 2 104 through flow pipe 1 303 and flow pipe 2 304 respectively. Then it is discharged through flow pipe 3 305 and flow pipe 4 306, and then flows back to the water storage tank 107 through pipe 3 312. This cycle is repeated, so that the cooling water flows continuously in the cooling chamber 103 and cooling chamber 2 103, which achieves the effect of continuous surrounding cooling of the shaping tube 105 and shaping tube 2 106, improving the cooling and heat dissipation effect. In addition, since the flow pipe 1 303, flow pipe 2 304, flow pipe 3 305, and flow pipe 4 306 are extensible, they are flexible to use and easy to operate.

[0028] The working principle of this utility model is as follows: When in use, the electric push rod 203 is activated to drive the horizontal plate 204 to move the movable mold 102 closer to the positioning mold 101, so that the retaining ring 401 is sealed and engaged in the inner side of the annular groove 4, thereby allowing the first shaping tube 105 and the second shaping tube 106 to be interconnected.

[0029] Simultaneously, molten copper is sequentially poured into the interior of shaping tube 105 and shaping tube 206.

[0030] At the same time, the water pump 307 is started to transport the clean water in the water storage tank 107 to the condenser tube 302 inside the cooling tank 301 for cooling and forming cooling water. Then, it is injected into the interior of the cooling chamber 103 and the cooling chamber 204 through the flow pipe 1 303 and the flow pipe 2 304 respectively to continuously surround and cool the shaping tube 105 and the shaping tube 2 106.

[0031] Secondly, the cooling water flows out along flow pipe 305 and flow pipe 406, and then flows back to the water storage tank 107 via pipe 312.

[0032] Finally, the electric push rod 203 is activated again to separate the movable mold 102 from the positioning mold 101, making it easier to demold the formed copper rod.

[0033] The above description is merely a preferred embodiment of this utility model. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model. Structures, devices, and operating methods not specifically described or explained in this utility model are implemented according to conventional methods in the art, unless otherwise specified or limited.

Claims

1. A mold cooling device for copper rod processing, characterized in that, The system includes a base (1), a positioning mold (101) is fixedly installed at the center of the outer top surface of the base (1), a movable mold (102) is provided on the outer top surface of the positioning mold (101), a cooling cavity one (103) and a cooling cavity two (104) are respectively opened inside the positioning mold (101) and the movable mold (102), a first cooling cavity (103) and a second cooling cavity (104) are respectively opened inside the first cooling cavity (103), a first shaping tube (105) is fixedly installed in a linear array, one end of several first shaping tubes (105) extends to the outer top surface of the positioning mold (101), a second shaping tube (106) is fixedly installed in a linear array inside the second cooling cavity (104), two ends of several second shaping tubes (106) extend to the outer surfaces of the upper and lower ends of the movable mold (102), and a lifting component (2) is provided on the outer top surface of the base (1) for driving the movable mold (102) to be fixed or separated from the positioning mold (101). The base (1) has a water tank (107) fixed to its outer bottom surface by bolt threads, and a heat dissipation component (3) for cooling the first shaping tube (105) and the second shaping tube (106) is provided on the outer top surface of the base (1).

2. The mold cooling device for copper rod processing according to claim 1, characterized in that, The heat dissipation assembly (3) includes a cooling box (301) fixedly installed on the right end of the outer top surface of the base (1). The cooling box (301) is provided with an S-shaped condenser pipe (302) inside. The two ends of the condenser pipe (302) extend to the outside of the cooling box (301). The left outer wall of the positioning mold (101) and the movable mold (102) are respectively connected by a flow pipe one (303) and a flow pipe two (304). The right outer wall of the positioning mold (101) and the movable mold (102) are respectively connected by a flow pipe three (305) and a flow pipe four (306). A water pump (307) is fixedly installed on the right outer wall of the water storage tank (107).

3. A mold cooling device for copper rod processing according to claim 2, characterized in that, One end of the condenser tube (302) is connected to the output end of the water pump (307) through pipe one (308), and the other end of the condenser tube (302) is connected to flow pipe three (305) and flow pipe four (306) through tee connector one (309). The input end of the water pump (307) is connected to the water storage tank (107) through pipe two (310). The ends of flow pipe one (303) and flow pipe two (304) that are close to each other are connected to pipe three (312) through tee connector two (311). Pipe three (312) is connected to the water storage tank (107).

4. A mold cooling device for copper rod processing according to claim 1, characterized in that, The lifting assembly (2) includes guide rods (201) fixedly installed at the four corners of the outer top surface of the base (1). One end of the four guide rods (201) is fixedly installed on a top plate (202). An electric push rod (203) is fixedly installed at the center of the outer top surface of the top plate (202). The upper output end of the electric push rod (203) extends to the outer bottom surface of the top plate (202) and is fixedly installed on a horizontal plate (204). L-shaped connecting plates (205) are fixedly installed on the left and right outer side walls of the movable mold (102).

5. A mold cooling device for copper rod processing according to claim 4, characterized in that, Straight plates (206) are fixedly installed on the outer top surfaces of the two L-shaped connecting plates (205). The front and rear ends of the two straight plates (206) are slidably sleeved on the outer peripheral surface of the guide rod (201). At the same time, one end of each of the two straight plates (206) is fixedly connected to the left and right outer walls of the horizontal plate (204).

6. A mold cooling device for copper rod processing according to claim 1, characterized in that, An annular groove (4) is provided on the outer top surface of several shaping tubes one (105), and a retaining ring (401) that matches the annular groove (4) is fixedly installed on the outer bottom surface of several shaping tubes two (106), and the retaining ring (401) is engaged in the inner side of the annular groove (4).