Special A-grade copper ingot production device and method
By introducing vacuum cleaner components and mobile components into the copper ingot production device, the problem of dust on the surface of the electrolytic copper plate affecting the stability of the electrolyte is solved, efficient dust removal and automated production are achieved, and the purity and production efficiency of the copper ingot are improved.
Patent Information
- Application Number
- CN202510312561.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-17
- Publication Date
- 2025-06-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
After being placed for a long time, existing electrolytic copper plates will adsorb dust, causing dust to enter the electrolyte, affecting its stability and pH, thereby reducing the electrolytic effect and the purity of copper.
A special grade A copper ingot production device is designed, including a processing body, a vacuum cleaner assembly and a moving assembly. The vacuum cleaner assembly absorbs dust on the surface of the electrolytic copper plate through components such as vacuum cleaners, filter boxes and suction tubes, and filters particles through the filter plate. The mobile components drive the electrolytic copper plate to quickly enter the electrolytic cell through components such as motors, transmission rods and gears, and realize the discharge of the copper ingots.
By effectively removing dust from the surface of the electrolytic copper plate, the cleanliness of the electrolytic solution is ensured, the electrolytic effect and copper purity are improved, and the efficiency and automation of copper ingot production are improved.
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Figure CN120119299A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of copper ingot production, and particularly to a production device and method for extra A-grade copper ingots. Background Art
[0002] Crude copper (containing 99% copper) is pre-made into thick plates as anodes, and pure copper is made into thin plates as cathodes. A mixed solution of sulfuric acid and copper sulfate is used as the electrolyte. After electrification, copper dissolves from the anode into copper ions (Cu) and moves towards the cathode. After reaching the cathode, it obtains electrons and pure copper (also known as electrolytic copper) is deposited on the cathode. Impurities in the crude copper, such as iron and zinc that are more active than copper, will dissolve as ions (Zn and Fe) together with copper. Since these ions are less likely to be deposited compared to copper ions, as long as the potential difference is appropriately adjusted during electrolysis, these ions can be prevented from being deposited on the cathode. Impurities that are less active than copper, such as gold and silver, are deposited at the bottom of the electrolytic cell. The copper plates produced in this way are called "electrolytic copper" and have extremely high quality and can be used to make electrical products.
[0003] When the existing electrolytic copper plates are placed for a long time, dust is adsorbed on the electrolytic copper plates. When the electrolytic copper plates enter the electrolytic cell, the dust on the surface of the electrolytic copper will have an adverse effect on the electrolyte. The impurities in the dust may enter the electrolyte, affecting its stability and pH value, and thus reducing the electrolysis effect and the purity of copper. Summary of the Invention
[0004] The purpose of the present invention is to provide a production device and method for extra A-grade copper ingots, which solves the problems of affecting its stability and pH value, and thus reducing the electrolysis effect and the purity of copper as mentioned in the background art.
[0005] An embodiment of the present application provides a production device for extra A-grade copper ingots, including a processing main body. A electrolytic cell is fixedly connected to the lower end of the processing main body, and a dust collection component is fixedly connected to the upper end of the processing main body. The dust collection component includes a vacuum cleaner. A connection pipe is fixedly connected to the dust suction end of the vacuum cleaner. A filter box is fixedly connected to the upper end of the connection pipe. A suction pipe is fixedly connected to the upper end of the filter box. A dust suction pipe is fixedly connected to the suction pipe, and the dust suction pipe sucks the dust on the electrolytic copper plate.
[0006] By adopting the above technical solution, the electrolytic copper plate is placed on the second conveying component, and the controller drives the second conveying component to convey. The second conveying component conveys the electrolytic copper plate to the position of the dust suction pipe, and the controller drives the vacuum cleaner to suck. The dust suction pipe sucks the dust on the surface of the electrolytic copper plate. The dust enters the interior of the vacuum cleaner through the dust suction pipe, the suction pipe, the filter box, and the connecting pipe. The filter plate inside the filter box filters the internal particles of the dust. When the staff observes that the air intake of the vacuum cleaner is not good, the staff pulls out the filter plate from the filter box by pulling the bolt to clean the filter plate. The electrolytic copper plate moves to the middle of the clamping block and the clamping plate. The controller drives the electric telescopic rod to expand and contract. The electric telescopic rod drives the clamping block to descend to clamp the electrolytic copper plate. The controller drives the motor to drive the transmission rod to rotate. The rotating transmission rod drives the gear to rotate. The rotating gear rotates on the gear plate. The gear drives the connecting plate and the electrolytic copper plate to move. When the gear rotates to the gear plate at the arc-shaped opening, the gear drives the connecting plate and the electrolytic copper plate to descend. The electrolytic copper plate enters the electrolytic cell. The formed copper ingot in the cathode area of the electrolytic copper plate is taken out of the electrolytic cell, which facilitates the entry and exit of the electrolytic copper plate into and out of the electrolytic cell, and can also take out the produced copper ingot from the electrolytic cell to realize the discharging of the copper ingot. Then the gear rotates to the other end of the arc-shaped opening, and the electrolytic copper plate moves to the first conveying component. The electric telescopic rod drives the clamping block to rise, and the clamping of the electrolytic copper plate is disconnected. The electrolytic copper plate is conveyed out through the first conveying component.
[0007] Optionally, a filter plate is movably connected inside the filter box, and a pulling bolt is fixedly connected to the upper end of the filter plate.
[0008] By adopting the above technical solution, the filter plate sucks the dust on the electrolytic copper plate, and the pulling bolt facilitates the user to pull out the filter plate.
[0009] Optionally, a moving component is arranged at the upper end of the processing main body. The moving component includes a motor and a sliding wheel. The output end of the motor is fixedly connected to a transmission rod. The upper end of the transmission rod is fixedly connected to a gear. The gear is meshed and connected to a gear plate. The lower end of the gear plate is fixedly connected to an arc-shaped opening. A rotating rod is fixedly connected inside the sliding wheel.
[0010] By adopting the above technical solution, the moving component drives the electrolytic copper plate to move.
[0011] Optionally, an arc-shaped opening is formed at the upper end of the processing main body. A guiding opening is formed at the upper end of the processing main body. A guiding wheel is rotatably connected to the guiding opening. A guiding plate is rotatably connected to the guiding wheel. The guiding plate is fixedly connected to the motor.
[0012] By adopting the above technical solution, it is ensured that the electrolytic copper plate moves into the electrolytic cell and guides the motor.
[0013] Optionally, a clamping assembly is provided on the transmission rod. The clamping assembly includes an electric telescopic rod. A clamping block is fixedly connected to the telescopic end of the electric telescopic rod. A fixing plate is fixedly connected to the upper end of the electric telescopic rod. A connecting plate is fixedly connected to the outer wall of the fixing plate. A clamping plate is fixedly connected to the lower end of the connecting plate.
[0014] By adopting the above technical solution, the clamping assembly clamps the electrolytic copper plate and moves it into the electrolytic cell.
[0015] Optionally, the rotating rod, the transmission rod and the connecting plate are rotatably connected.
[0016] By adopting the above technical solution, the rotating rod and the transmission rod drive the connecting plate to move. Optionally, a first conveying assembly and a second conveying assembly are rotatably connected to the upper end of the processing main body. A controller is fixedly connected to the outer wall of the processing main body.
[0017] By adopting the above technical solution, the first conveying assembly and the second conveying assembly convey the electrolytic copper plate.
[0018] Optionally, an anti-slip layer is provided on the upper end of the clamping plate.
[0019] By adopting the above technical solution, the stability of the electrolytic copper plate clamped by the clamping plate is ensured.
[0020] The embodiment of the present application provides a method for producing special grade A copper ingots S1: Place the electrolytic copper plate on the second conveying assembly. The controller drives the second conveying assembly to convey. The second conveying assembly conveys the electrolytic copper plate to the position of the dust suction pipe. The controller drives the vacuum cleaner to suck. The dust suction pipe sucks the dust on the surface of the electrolytic copper plate. The dust enters the interior of the vacuum cleaner through the dust suction pipe, the suction pipe, the filter box and the connecting pipe. The filter plate inside the filter box filters the internal particles of the dust. When the staff observes that the air intake of the vacuum cleaner is not good, the staff pulls out the filter plate from the filter box to clean the filter plate and clean the dust on the surface of the electrolytic copper plate, ensuring the cleanliness of the electrolyte in the electrolytic cell.
[0021] Embodiment of the present application provides a method S2 for producing special grade A copper ingots: The electrolytic copper plate is moved to the middle of the clamping block and the clamping plate. The controller drives the electric telescopic rod to expand and contract. The electric telescopic rod drives the clamping block to descend to clamp the electrolytic copper plate. The controller drives the motor to drive the transmission rod to rotate. The rotating transmission rod drives the gear to rotate. The rotating gear rotates on the gear plate. The gear drives the connecting plate and the electrolytic copper plate to move. When the gear rotates to the arc-shaped opening on the gear plate, the gear drives the connecting plate and the electrolytic copper plate to descend. The electrolytic copper plate enters the electrolytic cell. The formed copper ingot in the cathode area is taken out from the electrolytic cell, which facilitates the entry and exit of the electrolytic copper plate into and out of the electrolytic cell, and can also take out the produced copper ingot from the electrolytic cell to realize the discharging of the copper ingot. Then the gear rotates to the other end of the arc-shaped opening, the electrolytic copper plate moves to the first conveying component, the electric telescopic rod drives the clamping block to rise, and the clamping of the electrolytic copper plate is released. The electrolytic copper plate is conveyed out through the first conveying component, and the electrolytic copper plate is driven into the electrolytic cell. The feeding of multiple electrolytic copper plates one by one does not require manual operation, greatly improving the production efficiency and automation degree of the copper ingot, facilitating the entry and exit of the electrolytic copper plate into and out of the electrolytic cell, and can also take out the produced copper ingot from the electrolytic cell to realize the discharging of the copper ingot.
[0022] Compared with the prior art, the beneficial effects of the technical solution of the present application are as follows: The technical solution of the present application conveys the electrolytic copper plate through the first conveying component and the second conveying component, and the dust suction component sucks the dust on the electrolytic copper plate, so as to make the electrolyte in the electrolytic cell clean. The clamping component clamps the electrolytic copper plate, and the moving component drives the clamping component and the electrolytic copper plate to move, so that the electrolytic copper plate quickly enters the electrolytic cell. The formed copper ingot in the cathode area is taken out from the electrolytic cell, which facilitates the entry and exit of the electrolytic copper plate into and out of the electrolytic cell, and can also take out the produced copper ingot from the electrolytic cell to realize the discharging of the copper ingot. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] By reading the detailed description of the non-restrictive embodiments with reference to the following drawings, other features, objects and advantages of the present invention will become more obvious: Figure 1 It is a schematic diagram of the overall structure of a special grade A copper ingot production device of the present invention; Figure 2 It is a schematic diagram of the overall side structure of a special grade A copper ingot production device of the present invention; Figure 3 It is a schematic diagram of the clamping plate structure of a special grade A copper ingot production device of the present invention; Figure 4 It is a schematic diagram of the clamping block structure of a special grade A copper ingot production device of the present invention; Figure 5 It is a schematic diagram of the dust suction pipe structure of a special grade A copper ingot production device of the present invention; Figure 6Schematic structural diagram of the filter plate of a production device for special grade A copper ingots according to the present invention; Figure 7 Schematic structural diagram of the guiding port of a production device for special grade A copper ingots according to the present invention.
[0024] In the figure: 1, processing main body; 2, first conveying component; 3, second conveying component; 4, controller; 5, dust suction component; 501, dust collector; 502, connecting pipe; 503, filter box; 504, dust suction pipe; 505, suction pipe; 506, filter plate; 507, pulling bolt; 6, electrolytic cell; 7, moving component; 701, motor; 702, transmission rod; 703, gear; 704, arc-shaped port; 705, sliding wheel; 706, rotating rod; 707, gear plate; 708, guiding plate; 709, guiding wheel; 8, clamping component; 801, connecting plate; 802, electric telescopic rod; 803, fixing plate; 804, clamping block; 805, clamping plate; 9, guiding port. Specific implementation manners
[0025] Please refer to Figure 1-7 , the present invention provides a technical solution: a production device for special grade A copper ingots, including a processing main body 1, an electrolytic cell 6 is fixedly connected to the lower end of the processing main body 1, a dust suction component 5 is fixedly connected to the upper end of the processing main body 1, the dust suction component 5 includes a dust collector 501, a connecting pipe 502 is fixedly connected to the dust suction end of the dust collector 501, a filter box 503 is fixedly connected to the upper end of the connecting pipe 502, a suction pipe 505 is fixedly connected to the upper end of the filter box 503, a dust suction pipe 504 is fixedly connected to the suction pipe 505, and the dust suction pipe 504 sucks dust from the electrolytic copper plate.
[0026] In the above technical solution, the electrolytic copper plate is placed on the second conveying component 3, and the controller 4 drives the second conveying component 3 to convey. The second conveying component 3 conveys the electrolytic copper plate to the position of the dust suction pipe 504. The controller 4 drives the vacuum cleaner 501 to suck. The dust suction pipe 504 sucks the dust on the surface of the electrolytic copper plate. The dust enters the interior of the vacuum cleaner 501 through the dust suction pipe 504, the suction pipe 505, the filter box 503, and the connecting pipe 502. The filter plate 506 inside the filter box 503 filters the internal particles of the dust. When the staff observes that the air intake of the vacuum cleaner 501 is not good, the staff pulls out the filter plate 506 from the filter box 503 through the pull bolt 507 to clean the filter plate 506. The electrolytic copper plate moves to the middle of the clamping block 804 and the clamping plate 805. The controller 4 drives the electric telescopic rod 802 to expand and contract. The electric telescopic rod 802 drives the clamping block 804 to descend to clamp the electrolytic copper plate. The controller 4 drives the motor 701 to drive the transmission rod 702 to rotate. The rotating transmission rod 702 drives the gear 703 to rotate. The rotating gear 703 rotates on the gear plate 707. The gear 703 drives the connecting plate 801 and the electrolytic copper plate to move. When the gear 703 rotates to the gear plate 707 at the arc-shaped opening 704, the gear 703 drives the connecting plate 801 and the electrolytic copper plate to descend. The electrolytic copper plate enters the electrolytic cell 6. The formed copper ingot in the cathode region of the electrolytic copper plate is taken out from the electrolytic cell 6, which facilitates the entry and exit of the electrolytic copper plate into and out of the electrolytic cell 6, and can also take out the produced copper ingot from the electrolytic cell 6 to realize the discharging of the copper ingot. Then the gear 703 rotates to the other end of the arc-shaped opening 704, and the electrolytic copper plate moves to the first conveying component 2. The electric telescopic rod 802 drives the clamping block 804 to rise, and the clamping of the electrolytic copper plate is disconnected. The electrolytic copper plate is conveyed out through the first conveying component 2.
[0027] In the technical solution of the present invention, as Figure 5 shown, the filter box 503 is movably connected with a filter plate 506 inside. The upper end of the filter plate 506 is fixedly connected with a pull bolt 507. The filter plate 506 sucks the dust on the electrolytic copper plate, and the pull bolt 507 facilitates the user to pull out the filter plate 506.
[0028] In the technical solution of the present invention, as Figure 1 shown in Figure 2 Fig. [X], a moving component 7 is provided at the upper end of the processing main body 1. The moving component 7 includes a motor 701 and a sliding wheel 705. The output end of the motor 701 is fixedly connected with a transmission rod 702. The upper end of the transmission rod 702 is fixedly connected with a gear 703. The gear 703 is meshed and connected with a gear plate 707. The lower end of the gear plate 707 is fixedly connected with an arc-shaped opening 704. The inside of the sliding wheel 705 is fixedly connected with a rotating rod 706. The moving component 7 drives the electrolytic copper plate to move.
[0029] In the technical solution of the present invention, as Figure 2As shown, an arc-shaped opening 704 is provided at the upper end of the processing main body 1, and a guiding opening 9 is provided at the upper end of the processing main body 1. A guiding wheel 709 is rotatably connected to the guiding opening 9, and a guiding plate 708 is rotatably connected to the guiding wheel 709. The guiding plate 708 is fixedly connected to the motor 701 to ensure that the electrolytic copper plate moves into the electrolytic cell 6 and guides the motor 701.
[0030] In the technical solution of the present invention, as Figure 2 and Figure 3 and Figure 4 As shown, a clamping assembly 8 is provided on the transmission rod 702. The clamping assembly 8 includes an electric telescopic rod 802. A clamping block 804 is fixedly connected to the telescopic end of the electric telescopic rod 802. A fixing plate 803 is fixedly connected to the upper end of the electric telescopic rod 802. A connecting plate 801 is fixedly connected to the outer wall of the fixing plate 803. A clamping plate 805 is fixedly connected to the lower end of the connecting plate 801. The clamping assembly 8 clamps the electrolytic copper plate and moves it into the electrolytic cell 6.
[0031] In the technical solution of the present invention, as Figure 2 shown, the rotating rod 706, the transmission rod 702 and the connecting plate 801 are rotatably connected, and the rotating rod 706 and the transmission rod 702 drive the connecting plate 801 to move.
[0032] In the technical solution of the present invention, as Figure 1 shown, a first conveying assembly 2 and a second conveying assembly 3 are rotatably connected to the upper end of the processing main body 1. A controller 4 is fixedly connected to the outer wall of the processing main body 1. The first conveying assembly 2 and the second conveying assembly 3 convey the electrolytic copper plate.
[0033] In the technical solution of the present invention, as Figure 3 shown, an anti-slip layer is provided at the upper end of the clamping plate 805 to ensure the stability of the clamping plate 805 for the electrolytic copper plate.
[0034] The embodiment of the present application provides a method for producing special grade A copper ingots S1: Place the electrolytic copper plate on the second conveying assembly 3. The controller 4 drives the second conveying assembly 3 to convey. The second conveying assembly 3 conveys the electrolytic copper plate to the position of the dust suction pipe 504. The controller 4 drives the vacuum cleaner 501 to suck. The dust suction pipe 504 sucks the dust on the surface of the electrolytic copper plate. The dust enters the interior of the vacuum cleaner 501 through the dust suction pipe 504, the suction pipe 505, the filter box 503, and the connecting pipe 502. The filter plate 506 inside the filter box 503 filters the particles inside the dust. When the staff observes that the air intake volume of the vacuum cleaner 501 is not good, the staff pulls out the filter plate 506 from the filter box 503 by pulling the bolt 507 to clean the filter plate 506 and clean the dust on the surface of the electrolytic copper plate to ensure the cleanliness of the electrolyte in the electrolytic cell 6.
[0035] Embodiment of the present application provides a method for producing special-grade copper ingots S2: The electrolytic copper plate is moved to the middle of the clamping block 804 and the clamping plate 805. The controller 4 drives the electric telescopic rod 802 to extend and retract. The electric telescopic rod 802 drives the clamping block 804 to descend to clamp the electrolytic copper plate. The controller 4 drives the motor 701 to drive the transmission rod 702 to rotate. The rotating transmission rod 702 drives the gear 703 to rotate. The rotating gear 703 rotates on the gear 703 plate. The gear 703 drives the connecting plate 801 and the electrolytic copper plate to move. The gear 703 rotates to the gear 703 plate at the arc-shaped opening 704. The gear 703 drives the connecting plate 801 and the electrolytic copper plate to descend. The electrolytic copper plate enters the electrolytic cell 6. The formed copper ingot in the cathode region is taken out of the electrolytic cell 6, which facilitates the entry and exit of the electrolytic copper plate into and out of the electrolytic cell 6, and can also take out the produced copper ingot from the electrolytic cell 6 to realize the discharging of the copper ingot. Then the gear 703 rotates to the other end of the arc-shaped opening 704. The electrolytic copper plate moves onto the first conveying assembly 2. The electric telescopic rod 802 drives the clamping block 804 to rise to release the clamping of the electrolytic copper plate. The electrolytic copper plate is conveyed out through the first conveying assembly 2, driving the electrolytic copper plate into the electrolytic cell 6. The feeding of multiple electrolytic copper plates one by one does not require manual operation, greatly improving the production efficiency and automation degree of copper ingots, facilitating the entry and exit of the electrolytic copper plate into and out of the electrolytic cell 6, and can also take out the produced copper ingot from the electrolytic cell 6 to realize the discharging of the copper ingot.
[0036] During use, place the electrolytic copper plate on the second conveying assembly 3. The controller 4 drives the second conveying assembly 3 to convey. The second conveying assembly 3 conveys the electrolytic copper plate to the position of the dust suction pipe 504. The controller 4 drives the vacuum cleaner 501 to suck. The dust suction pipe 504 sucks the dust on the surface of the electrolytic copper plate. The dust enters the interior of the vacuum cleaner 501 through the dust suction pipe 504, the suction pipe 505, the filter box 503, and the connecting pipe 502. The filter plate 506 inside the filter box 503 filters the internal particles of the dust. When the staff observes that the air intake of the vacuum cleaner 501 is poor, the staff pulls out the filter plate 506 from the filter box 503 by pulling the bolt 507 to clean the filter plate 506. The electrolytic copper plate moves to the middle of the clamping block 804 and the clamping plate 805. The controller 4 drives the electric telescopic rod 802 to extend and retract. The electric telescopic rod 802 drives the clamping block 804 to descend to clamp the electrolytic copper plate. The controller 4 drives the motor 701 to drive the transmission rod 702 to rotate. The rotating transmission rod 702 drives the gear 703 to rotate. The rotating gear 703 rotates on the gear plate 707. The gear 703 drives the connecting plate 801 and the electrolytic copper plate to move. When the gear 703 rotates to the gear plate 707 at the arc-shaped opening 704, the gear 703 drives the connecting plate 801 and the electrolytic copper plate to descend. The electrolytic copper plate enters the electrolytic cell 6. Take out the formed copper ingot in the cathode area of the electrolytic copper plate from the electrolytic cell 6, which facilitates the entry and exit of the electrolytic copper plate into and out of the electrolytic cell 6, and can also take out the produced copper ingot from the electrolytic cell 6 to realize the discharging of the copper ingot. Then the gear 703 rotates to the other end of the arc-shaped opening 704, and the electrolytic copper plate moves to the first conveying assembly 2. The electric telescopic rod 802 drives the clamping block 804 to rise to release the clamping of the electrolytic copper plate. The electrolytic copper plate is conveyed out through the first conveying assembly 2.
Claims
1. A production device for special grade A copper ingots, characterized in that: The invention comprises a processing body (1), wherein the lower end of the processing body (1) is fixedly connected to an electrolytic cell (6), and the upper end of the processing body (1) is fixedly connected to a dust suction component (5), wherein the dust suction component (5) comprises a dust collector (501), wherein the dust suction end of the dust collector (501) is fixedly connected to a connecting pipe (502), wherein the upper end of the connecting pipe (502) is fixedly connected to a filter box (503), wherein the upper end of the filter box (503) is fixedly connected to a suction pipe (505), wherein the suction pipe (505) is fixedly connected to a dust suction pipe (504), and wherein the dust suction pipe (504) is used to suction dust on the electrolytic copper plate.
2. A special grade A copper ingot production device according to claim 1, characterized in that: A filter plate (506) is movably connected inside the filter box (503), and a pull bolt (507) is fixedly connected to the upper end of the filter plate (506).
3. The production device of special grade A copper ingot according to claim 1, characterized in that: A moving assembly (7) is arranged at the upper end of the processing body (1), and the moving assembly (7) comprises a motor (701) and a sliding wheel (705); a transmission rod (702) is fixedly connected to the output end of the motor (701); a gear (703) is fixedly connected to the upper end of the transmission rod (702); the gear (703) is meshingly connected to a gear plate (707); an arc-shaped opening (704) is fixedly connected to the lower end of the gear plate (707); and a rotating rod (706) is fixedly connected inside the sliding wheel (705).
4. The production device of special grade A copper ingot according to claim 1, characterized in that: An arc-shaped opening (704) is provided at the upper end of the processing body (1), a guide opening (9) is provided at the upper end of the processing body (1), a guide wheel (709) is rotatably connected to the guide opening (9), a guide plate (708) is rotatably connected to the guide wheel (709), and the guide plate (708) is fixedly connected to the motor (701).
5. The production device of special grade A copper ingot according to claim 3, characterized in that: The transmission rod (702) is provided with a clamping assembly (8), the clamping assembly (8) comprising an electric telescopic rod (802), the telescopic end of the electric telescopic rod (802) being fixedly connected to a clamping block (804), the upper end of the electric telescopic rod (802) being fixedly connected to a fixing plate (803), the outer wall of the fixing plate (803) being fixedly connected to a connecting plate (801), and the lower end of the connecting plate (801) being fixedly connected to a clamping plate (805).
6. The production device of special grade A copper ingot according to claim 3, characterized in that: The rotating rod (706), the transmission rod (702) and the connecting plate (801) are rotatably connected.
7. The production device of special grade A copper ingot according to claim 1, characterized in that: The upper end of the processing body (1) is rotatably connected to a first conveying assembly (2) and a second conveying assembly (3), and the outer wall of the processing body (1) is fixedly connected to a controller (4).
8. The production device of special grade A copper ingot according to claim 5, characterized in that: The upper end of the clamping plate (805) is provided with an anti-slip layer.
9. A method for producing special grade A copper ingot according to any one of claims 1 to 8, characterized in that: The steps include: S1: placing the electrolytic copper plate on the second conveying assembly (3), the controller (4) drives the second conveying assembly (3) to convey, the second conveying assembly (3) conveys the electrolytic copper plate to the position of the dust suction pipe (504), the controller (4) drives the dust collector (501) to suck, the dust suction pipe (504) sucks the dust on the surface of the electrolytic copper plate, the dust enters the interior of the dust collector (501) through the dust suction pipe (504), the suction pipe (505), the filter box (503), and the connecting pipe (502), the filter plate (506) inside the filter box (503) filters the particles inside the dust, and when the staff observes that the air intake of the dust collector (501) is not good, the staff pulls the bolt (507) to pull the filter plate (506) out of the filter box (503), and cleans the filter plate (506); S2: The electrolytic copper plate moves to the middle of the clamping block (804) and the clamping plate (805), the controller (4) drives the electric telescopic rod (802) to extend and retract, the electric telescopic rod (802) drives the clamping block (804) to descend to clamp the electrolytic copper plate, the controller (4) drives the motor (701) to drive the transmission rod (702) to rotate, the rotating transmission rod (702) drives the gear (703) to rotate, the rotating gear (703) rotates on the gear plate (707), the gear (703) drives the connecting plate (801) and the electrolytic copper plate to move, the gear (703) rotates to the gear on the arc-shaped opening (704) The plate (707) is driven by the gear (703) to drive the connecting plate (801) and the electrolytic copper plate to descend, and the electrolytic copper plate enters the electrolytic cell (6), and the formed copper ingot in the cathode area is taken out from the electrolytic cell (6), so that the electrolytic copper plate can enter and exit the electrolytic cell (6) conveniently, and the copper ingot after production can also be taken out of the electrolytic cell (6), so as to realize the discharge of the copper ingot, and then the gear (703) is rotated to the other end of the arc-shaped opening (704), and the electrolytic copper plate is moved to the first conveying component (2), and the electric telescopic rod (802) drives the clamping block (804) to rise, disconnects the clamping of the electrolytic copper plate, and the electrolytic copper plate is conveyed out through the first conveying component (2).