Cooling mechanism for drawing thick copper wire into thin copper wire
Through the design of the circulating pool and support frame structure, the fine copper wire is efficiently cooled by using the water pump and spray head, which solves the problems of deformation and low production efficiency after drawing of the fine copper wire, and achieves efficient cooling effect.
Patent Information
- Application Number
- CN202422424000.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-09
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-10-09
AI Technical Summary
After the existing thick copper wire is drawn into thin copper wire, it will be directly wound to cause deformation, increase the scrap rate, and it will be left to cool in cold water to affect production efficiency.
The circulating water tank and support frame structure is adopted, combined with water pump, water pipe, spray head and drive turntable, and the fine copper wire is efficiently cooled by circulating cold water to prevent deformation.
Effectively prevent the deformation of fine copper wires, improve production efficiency, and ensure product qualification rate.
Smart Images

Figure CN223288734U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of cooling mechanisms and relates to a cooling mechanism after a thick copper wire is drawn into a thin copper wire. Background Art
[0002] A wire drawing machine is a commonly used device in copper wire manufacturing, which is used to extrude thicker copper rods into thinner copper wires. During processing, the wire drawing machine pulls the thicker copper wire through a die. The copper wire is squeezed and becomes thinner as it passes through the die. During this process, the copper wire needs to pass through the die under the action of a large pulling force. Existing thick copper wires are directly wound after being drawn into thin copper wires. The pressure generated during the winding will cause the thin copper wires to deform, resulting in unqualified products and increased scrap rates. Some manufacturers will place the thin copper wires in cold water before winding them, which will affect the production schedule and the cooling time is long, reducing overall production efficiency. Therefore, in order to address the above problems, a cooling mechanism is proposed after the thick copper wires are drawn into thin copper wires. Utility Model Content
[0003] The purpose of the utility model is to solve the above problems and provide a cooling mechanism for drawing a thick copper wire into a thin copper wire.
[0004] In order to achieve the above purpose, the utility model adopts the following technical solutions:
[0005] A cooling mechanism for drawing thick copper wire into thin copper wire comprises a circulating water pool, a support frame is provided above the circulating water pool, and thin copper wire is provided below the support frame, water pumps are provided in both side walls of the circulating water pool, and a water pipe is provided above the water pump, the top of the water pipe is inserted into the side walls of the support frame, and the top of the water pipe is inserted into one side of the water outlet component, and the water outlet component is placed on the inner wall of the support frame, a rotating column is provided in the middle of the circulating water pool, and a driving turntable is provided on the outer sleeve of the middle of the rotating column, a motor is provided at the back end of the rotating column, and the motor is placed in the back wall of the circulating water pool, a conveying positioning block is provided below the support frame, and the thin copper wire passes through the conveying positioning block, and the thin copper wire is placed above the driving turntable.
[0006] In the above-mentioned cooling mechanism after the thick copper wire is drawn into thin copper wire, the top of the circulating water pool is fixedly connected to the bottom of the support frame, and the thin copper wire is slidably connected through the two side walls of the support frame. Side grooves are opened above the two side walls of the circulating water pool, and the top of the side grooves is open. At the same time, a water pump is fixedly connected to the side grooves.
[0007] In the above-mentioned cooling mechanism after the thick copper wire is drawn into thin copper wire, a water trough is provided in the circulating water pool, and circulating cold water is placed in the water trough. One side of the water pump is inserted into the water trough, and one side of the water pump is connected to the circulating cold water.
[0008] In the above-mentioned cooling mechanism after drawing the thick copper wire into thin copper wire, wall grooves are provided in both side walls of the support frame, and the bottom of the wall grooves is open, and the wall grooves are connected with the side grooves.
[0009] In the above-mentioned cooling mechanism after the thick copper wire is drawn into thin copper wire, the top of the water pump is fixedly connected to the bottom of the water pipe, and the top of the water pipe is respectively placed in the side groove and the wall groove. At the same time, the top of the water pump passes through the side wall of the fixed connection support frame inward.
[0010] In the above-mentioned cooling mechanism after the thick copper wire is drawn into thin copper wire, the top end of the water pipe is inserted into the upper side of the fixed connection water outlet component, and the water outlet component is connected to the water pipe, and the upper side of the water outlet component is fixedly connected to the inner walls on both sides of the support frame.
[0011] In the above-mentioned cooling mechanism after the thick copper wire is drawn into thin copper wire, the spray head is fixedly connected to the lower side of the other side of the water outlet component, and the spray head is connected to the water pipe, and the spray head is placed above the thin copper wire.
[0012] In the above-mentioned cooling mechanism after the thick copper wire is drawn into thin copper wire, both sides of the lower inner wall of the support frame are fixedly connected to the conveying positioning blocks, and the sliding connecting thin copper wire is inserted into the conveying positioning blocks. At the same time, there is a distance between the conveying positioning blocks and the top of the circulating water pool.
[0013] In the above-mentioned cooling mechanism after the thick copper wire is drawn into thin copper wire, the middle part of the circulating water pool is rotatably connected to a rotating column, and the back end of the rotating column is fixedly connected to a motor. A built-in space is opened above the back wall of the circulating water pool, and the bottom of the built-in space is fixedly connected to the motor.
[0014] In the above-mentioned cooling mechanism after the thick copper wire is drawn into thin copper wire, a driving turntable fixedly connected to the outer portion of the middle part of the rotating column is provided, and a conveying path is provided inside the driving turntable. At the same time, a hook water trough portion is opened on the inner wall of the driving turntable conveying path, and the thin copper wire slides between the hook water trough portions.
[0015] Compared with the existing technology, the advantages of this utility model are:
[0016] The utility model is characterized in that a support frame is provided above a circulating water pool, water pumps are provided in the inner walls on both sides of the circulating water pool, and one side of the water pump is inserted into the cold water in the circulating water pool, a water pipe is provided on the top of the water pump, and the water pipe is placed in the inner walls on both sides of the support frame above the water pipe, and the top of the water pipe is connected to the water outlet components on the inner walls on both sides of the support frame, and a spray head is provided below the water outlet component, and a rotating column is provided in the circulating water pool, and a driving turntable is provided in the middle of the rotating column. By utilizing the cooling device, the thick copper wire is effectively cooled after being drawn into the thin copper wire, thereby preventing the situation of extrusion deformation, ensuring the product quality, and increasing the production efficiency.
[0017] Other advantages, objectives and features of the present invention will be reflected in part through the following description, and in part will be understood by those skilled in the art through research and practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is an overall schematic diagram of the utility model;
[0019] Figure 2 It is an enlarged schematic diagram of point A of the present utility model;
[0020] Figure 3 It is a schematic side view of the entire interior of the utility model;
[0021] Figure 4 This is a front cross-sectional view of the driving turntable of the utility model;
[0022] Figure 5 It is a top sectional schematic diagram of the driving turntable of the utility model.
[0023] In the figure: 1. Circulating water pool; 101. Water trough; 102. Side trough; 103. Built-in space; 2. Support frame; 201. Wall trough; 3. Conveying and positioning block; 4. Water outlet assembly; 401. Spray head; 5. Water pump; 6. Water pipe; 7. Driving turntable; 701. Hook water trough; 8. Rotating column; 9. Motor; 10. Thin copper wire. DETAILED DESCRIPTION
[0024] The present invention will be further described below with reference to the accompanying drawings.
[0025] like Figure 1-5 As shown, a cooling mechanism for drawing a thick copper wire into a thin copper wire comprises a circulating water pool 1, a support frame 2 is provided above the circulating water pool 1, and a thin copper wire 10 is provided below the support frame 2, water pumps 5 are provided in both side walls of the circulating water pool 1, and a water pipe 6 is provided above the water pump 5, the top of the water pipe 6 is inserted into the two side walls of the support frame 2, and the top of the water pipe 6 is inserted into one side of the water outlet component 4, and the water outlet component 4 is placed on the inner wall of the support frame 2, a rotating column 8 is provided in the middle of the circulating water pool 1, and a driving turntable 7 is provided on the outer sleeve of the middle part of the rotating column 8, a motor 9 is provided at the back end of the rotating column 8, and the motor 9 is placed in the back wall of the circulating water pool 1, a conveying positioning block 3 is provided below the support frame 2, and the thin copper wire 10 passes through the conveying positioning block 3, and the thin copper wire 10 is placed above the driving turntable 7.
[0026] The bottom of the support frame 2 is fixedly connected above the circulating water pool 1, and thin copper wires 10 are slidably connected through the two side walls of the support frame 2. Side grooves 102 are opened above the two side walls of the circulating water pool 1, and the top of the side grooves 102 is open. At the same time, the water pump 5 is fixedly connected to the side grooves 102.
[0027] A support frame 2 is provided above the circulating water pool 1 to form an integral body, and a thin copper wire 10 is passed through the inside of the two for cooling. Cold water is provided in the circulating water pool 1 and is connected to the outside for circulation.
[0028] Furthermore, a water tank 101 is provided in the circulating water pool 1 , and circulating cold water is placed in the water tank 101 . One side of the water pump 5 is inserted into the water tank 101 , and one side of the water pump 5 is connected to the circulating cold water.
[0029] After water pumps 5 are provided in the side walls on both sides of the circulating water pool 1 , one side of the water pump 5 is inserted into the cold water in the circulating water pool 1 , so that the water pump 5 pumps out the cold water in the circulating water pool 1 .
[0030] Furthermore, wall grooves 201 are formed in both side walls of the support frame 2 , and the bottom of the wall grooves 201 is open, so that the inside of the wall grooves 201 is communicated with the inside of the side grooves 102 .
[0031] Furthermore, the top of the water pump 5 is fixedly connected to the bottom of the water pipe 6, and the top of the water pipe 6 is respectively placed in the side groove 102 and the wall groove 201, while the top of the water pump 5 passes through the side wall of the fixed connection support frame 2 and faces inward.
[0032] After a water pipe 6 is provided on the top of the water pump 5 , the water pump 5 transports the cold water in the circulating water pool 1 into the water pipe 6 and then sprays it out from the other end of the water pipe 6 .
[0033] Furthermore, the top end of the water pipe 6 is inserted into and fixedly connected to the upper side of the water outlet component 4 , and the water outlet component 4 is communicated with the water pipe 6 , and the upper side of the water outlet component 4 is fixedly connected to the inner walls on both sides of the support frame 2 .
[0034] The water outlet assembly 4 is connected above the water pipe 6 , and the water outlet assembly 4 is connected to the inner walls on both sides of the support frame 2 . The cold water in the circulating water pool 1 is transported to the water outlet assembly 4 through the water pump 5 in the water pipe 6 .
[0035] Furthermore, a spray head 401 is fixedly connected to the lower part of the other side of the water outlet component 4 , and the spray head 401 is communicated with the water pipe 6 , and the spray head 401 is placed above the thin copper wire 10 .
[0036] A spray head 401 is provided below the water outlet assembly 4. Since the spray head 401 is facing the thin copper wire 10 passing through the interior, the cold water in the water outlet assembly 4 is sprayed onto the thin copper wire 10 from the spray head 401, cooling one end of the thin copper wire 10 for the first time.
[0037] The conveying positioning blocks 3 are fixedly connected on both sides of the lower inner wall of the front side of the support frame 2, and the conveying positioning blocks 3 are inserted into the sliding connection thin copper wires 10. At the same time, there is a distance between the conveying positioning blocks 3 and the top of the circulating water pool 1.
[0038] The support frame 2 is provided with a conveying positioning block 3. By using two conveying positioning blocks 3, the thin copper wire 10 can pass continuously and stably above the circulating water pool 1. At the same time, the conveying positioning blocks 3 can straighten the thin copper wire 10 and allow the thin copper wire 10 to pass through the inner wall on the other side of the support frame 2.
[0039] The rotating column 8 is connected by rotating in the middle of the circulating water pool 1, and the back end of the rotating column 8 is fixedly connected to the motor 9. A built-in space 103 is opened above the back wall of the circulating water pool 1, and the bottom of the built-in space 103 is fixedly connected to the motor 9.
[0040] Furthermore, a driving turntable 7 is fixedly connected to the outer middle portion of the rotating column 8, and a conveying path is provided inside the driving turntable 7. At the same time, a hook water trough portion 701 is opened on the inner wall of the conveying path of the driving turntable 7, and a thin copper wire 10 slides between the hook water trough portions 701.
[0041] The rotating column 8 provided in the circulating water pool 1 will rotate slowly with the motor 9, so that the rotating column 8 will drive the driving turntable 7 to rotate, and then the thin copper wire 10 can pass through the driving turntable 7 smoothly. Since a hook water trough portion 701 is provided in the driving turntable 7, after the hook water trough portion 701 enters the cold water, the inside will be filled with cold water, and then the hook water trough portion 701 will turn to the top with the cold water, and the cold water will overflow and sprinkle on the passing thin copper wire 10 to cool it down.
[0042] Working principle:
[0043] A support frame 2 is provided above the circulating water pool 1, so that the circulating water pool 1 and the support frame 2 form a whole for cooling the thin copper wire 10. Water pumps 5 are provided in the inner walls on both sides of the circulating water pool 1, and one side of the water pump 5 is inserted into the cold water in the circulating water pool 1. A water pipe 6 is provided on the top of the water pump 5, so that the water pump 5 transports the cold water in the circulating water pool 1 to the water pipe 6. Since the water pipe 6 is placed on the inner walls on both sides of the support frame 2, and the top of the water pipe 6 is connected to the water outlet assembly 4 on the inner walls on both sides of the support frame 2, and a spray head 401 is provided below the water outlet assembly 4, the cold water in the circulating water pool 1 passes through the water pump 5 and the water pipe 6 and is sprayed from the spray head 401. A conveying positioning block 3 is provided in the support frame 2, and the thin copper wire 10 passes through the conveying positioning block 3. The spray heads 401 on both sides respectively perform in-cooling and out-cooling on the thin copper wire 10.
[0044] In addition, a rotating column 8 is provided in the circulating water pool 1, and a driving turntable 7 is provided in the middle of the rotating column 8. At the same time, a hook water trough portion 701 is provided in the driving turntable 7. After the driving turntable 7 is rotated by the motor 9, the hook water trough portion 701 will be filled with cold water in the circulating water pool 1. Then, after the hook water trough portion 701 continues to rotate, the cold water will flow out when it is at the top, and the flowing cold water will also cool the thin copper wire 10 passing through.
[0045] The specific embodiments described herein are merely examples of the spirit of the present invention. Those skilled in the art may make various modifications or additions to the specific embodiments described, or replace them with similar methods, without departing from the spirit of the present invention.
[0046] Although this document frequently uses terms such as 1. upper mold plate; 2. insulation board; 201. clamping groove; 3. upper mold base; 301. upper mold core groove; 4. lower mold base; 401. lower mold core groove; 5. support block; 6. lower mold plate; 7. ejector plate assembly; 8. injection port assembly; 9. upper mold core plate; 10. lower mold core plate; 11. ejector column assembly; 12. ejector pin; 13. runner assembly; 14. positioning column; 15. positioning hole; 16. support column, the possibility of using other terms is not excluded. These terms are used only to more conveniently describe and explain the essence of the present invention. Interpreting them as any additional limitation is contrary to the spirit of the present invention.
Claims
1. A cooling mechanism for drawing a thick copper wire into a thin copper wire, comprising a circulating water pool (1), characterized in that: A support frame (2) is provided above the circulating water pool (1), and a thin copper wire (10) is provided below the support frame (2). Water pumps (5) are provided in both side walls of the circulating water pool (1), and a water pipe (6) is provided above the water pump (5). The top of the water pipe (6) is inserted into the side walls of the support frame (2), and the top of the water pipe (6) is inserted into one side of the water outlet component (4). At the same time, the water outlet component (4) is placed on the inner wall of the support frame (2). A rotating column (8) is provided in the middle of the circulating water pool (1), and a driving turntable (7) is provided on the outer sleeve of the middle of the rotating column (8). A motor (9) is provided at the back end of the rotating column (8), and the motor (9) is placed in the back wall of the circulating water pool (1). A conveying positioning block (3) is provided below the support frame (2), and the thin copper wire (10) passes through the conveying positioning block (3). At the same time, the thin copper wire (10) is placed above the driving turntable (7).
2. The cooling mechanism after drawing thick copper wire into thin copper wire according to claim 1, characterized in that: The top of the circulating water pool (1) is fixedly connected to the bottom of the support frame (2), and thin copper wires (10) are slidably connected through the two side walls of the support frame (2). Side grooves (102) are provided above the two side walls of the circulating water pool (1), and the tops of the side grooves (102) are open. At the same time, the side grooves (102) are fixedly connected to the water pumps (5).
3. The cooling mechanism after drawing a thick copper wire into a thin copper wire according to claim 2, characterized in that: A water trough (101) is provided in the circulating water pool (1), and circulating cold water is placed in the water trough (101). One side of the water pump (5) is inserted into the water trough (101), and one side of the water pump (5) is connected to the circulating cold water.
4. The cooling mechanism after drawing a thick copper wire into a thin copper wire according to claim 3, characterized in that: Wall grooves (201) are provided in both side walls of the support frame (2), and the lower side of the wall grooves (201) is open. The interior of the wall grooves (201) is communicated with the interior of the side grooves (102).
5. The cooling mechanism after drawing a thick copper wire into a thin copper wire according to claim 4, characterized in that: The top of the water pump (5) is fixedly connected to the bottom of the water pipe (6), and the top of the water pipe (6) is respectively placed in the side groove portion (102) and the wall groove portion (201), while the top of the water pump (5) passes through the side wall of the fixed connection support frame (2) and faces inward.
6. The cooling mechanism after drawing a thick copper wire into a thin copper wire according to claim 5, characterized in that: The top outlet end of the water pipe (6) is inserted into and fixedly connected to the upper side of the water outlet assembly (4), and the water outlet assembly (4) is communicated with the water pipe (6). The upper side of the water outlet assembly (4) is fixedly connected to the inner walls on both sides of the support frame (2).
7. The cooling mechanism after drawing a thick copper wire into a thin copper wire according to claim 6, characterized in that: A spray head (401) is fixedly connected to the lower portion of the other side of the water outlet assembly (4), and the spray head (401) is communicated with the water pipe (6). The spray head (401) is placed above the thin copper wire (10).
8. The cooling mechanism after drawing a thick copper wire into a thin copper wire according to claim 7, characterized in that: Both sides of the lower inner wall of the front side of the support frame (2) are fixedly connected to the conveying positioning blocks (3), and a sliding connection thin copper wire (10) is inserted into the conveying positioning blocks (3), and there is a distance between the conveying positioning blocks (3) and the top of the circulating water pool (1).
9. The cooling mechanism after drawing a thick copper wire into a thin copper wire according to claim 8, characterized in that: The middle part of the circulating water pool (1) is rotatably connected to a rotating column (8), and the back end of the rotating column (8) is fixedly connected to a motor (9). A built-in space (103) is provided above the back wall of the circulating water pool (1), and the bottom of the built-in space (103) is fixedly connected to the motor (9).
10. The cooling mechanism after drawing a thick copper wire into a thin copper wire according to claim 9, characterized in that: The middle portion of the rotating column (8) is provided with an outer portion fixedly connected to the driving rotating disk (7), and a conveying path is provided inside the driving rotating disk (7). At the same time, a hook water trough portion (701) is opened on the inner wall of the conveying path of the driving rotating disk (7), and a thin copper wire (10) slides between the hook water trough portions (701).