Correcting device for copper conductive assembly of electrolytic bath
By designing the electrolytic cell copper conductive component correction device, the push plate movement is driven by the top pressure mechanism, the precise regulation of the copper conductive component is achieved, and the problems of manual adjustments are solved in the prior art, which are time-consuming, labor-intensive, and insecure, and the operation efficiency and safety are improved.
Patent Information
- Application Number
- CN202421535803.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-01
- Publication Date
- 2025-05-02
- Estimated Expiration
- 2034-07-01
AI Technical Summary
In the prior art, the position adjustment of the copper conductive components of the electrolytic cell mainly relies on manual operation, which is time-consuming, labor-intensive, inaccurate, and unsafe, and causes certain damage to the conductive copper strips.
An electrolytic cell copper conductive assembly correction device is designed, including a frame part, a fastening adjustment part, a cantilever push plate part and a top pressure mechanism. By manually adjusting the top pressure mechanism, the parallel extension rod and push plate move are driven to achieve accurate control of the copper conductive components.
This device can accurately control the installation position of the copper conductive assembly with relatively labor-saving and precise control, which is more efficient, accurate and safe than traditional methods, and avoids damage to the conductive copper strips.
Smart Images

Figure CN222821676U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a correction device for a copper conductive component of an electrolytic cell, belonging to the field of correction tools. Background Art
[0002] like Figure 5 As shown, the electrolytic cell 50 is an indispensable equipment in the electrolytic copper refining process. The existing electrolytic cell 50 is a rectangular structure arranged side by side using concrete masonry. Two adjacent electrolytic cells are separated by a partition wall 51, and a copper conductive component 52 is arranged on the top of the partition wall. During operation, the crude copper anode plate and the metal cathode plate are mounted on the copper conductive component of the partition wall to conduct electricity. After working for a period of time, the copper conductive component needs to be offset corrected or replaced and repositioned. The position adjustment of the driven copper conductive component is generally done manually by using a steel chisel, a sledgehammer, or by manually pulling the conductive copper busbars at both ends of the electrolytic cell. This method is time-consuming and labor-intensive, inaccurate, unsafe, and causes certain damage to the conductive copper busbar. Utility Model Content
[0003] In order to solve the above problems existing in the prior art, the utility model provides a correction device for a copper conductive component of an electrolytic cell.
[0004] The technical solution of the utility model is as follows:
[0005] A correction device for a copper conductive component of an electrolytic cell, comprising:
[0006] The frame part includes a rectangular top frame, and four legs are vertically connected to the four corners of the top frame;
[0007] The tightening and adjusting part includes a tightening screw and a height-adjusting screw, wherein the tightening screw is threadedly mounted on the rear leg, and the height-adjusting screw is threadedly mounted on the top frame;
[0008] A cantilever push plate portion; the cantilever push plate portion comprises a parallel extension rod and a push plate, the parallel extension rod is movably arranged on the front side of the top frame, and the push plate is fixed to the front end of the parallel extension rod;
[0009] The pressing mechanism is arranged in the top frame and fixed to the rear side of the top frame. The front side of the pressing mechanism is connected to the rear end of the parallel extension rod. The pressing mechanism can adjust the front and rear spacing to drive the parallel extension rod to move forward and backward.
[0010] Preferably, the pressing mechanism includes a rear mounting block, a front movable block and a double-headed screw, wherein the double-headed screw is arranged between the rear mounting block and the front movable block, the threads at both ends of the double-headed screw have opposite rotation directions and are respectively screwed with a nut seat, the front and rear sides of the nut seats on the left and right sides are respectively hinged to connecting rods, and the other ends of the connecting rods on the front and rear sides are hinged to the rear mounting block and the front movable block.
[0011] Preferably, one end of the double-headed screw is an external hexagonal column, and the other end is provided with a hand wheel.
[0012] Preferably, the tightening screw and the height-adjusting screw have the same structure, and the rear ends of the tightening screw and the height-adjusting screw are rotating rods, and the front ends are baffles.
[0013] Preferably, four tightening screws are provided, two of which are respectively provided on the two rear legs; and two height-adjusting screws are provided, one on each of the left and right sides of the top frame.
[0014] Preferably, the push plate is a step-bent plate, comprising a connecting portion, a bending portion and a contact portion which are integrally connected from top to bottom, and the contact portion is located behind the connecting portion and parallel to the connecting portion.
[0015] The utility model has the following beneficial effects: during the use of the device, the activity of the top pressure mechanism is manually adjusted, thereby driving the parallel extension rod and the push plate to move, so that the installation position of the copper conductive component on the partition wall of the electrolytic cell can be adjusted more labor-savingly and accurately. Compared with the traditional working method, it is more efficient, accurate and safer. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 The rear side is a schematic diagram of the overall structure of the utility model;
[0017] Figure 2 The front side is a schematic diagram of the overall structure of the utility model;
[0018] Figure 3 This is a schematic diagram of the structure of the top pressing mechanism of the utility model;
[0019] Figure 4 This is a schematic diagram of the structure of the utility model in use state;
[0020] Figure 5 for Figure 4 A in the figure is an enlarged structural diagram. DETAILED DESCRIPTION
[0021] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0022] Example:
[0023] See also Figure 1-3, a correction device for a copper conductive component of an electrolytic cell, includes a frame part, a fastening and adjusting part, a cantilever push plate part and a top pressing mechanism 40.
[0024] The frame part includes a rectangular top frame 11, and four legs 12 are vertically connected to the four corners of the top frame 11 respectively. The distance between the front and rear legs 12 is greater than the thickness of the electrolytic cell wall, and the distance between the left and right legs 12 is greater than the thickness of the partition wall.
[0025] The tightening and adjusting part includes a tightening screw 21 and a height-adjusting screw 22. The tightening screw 21 is threadedly installed on the rear support leg 12, and the height-adjusting screw 22 is threadedly installed on the top frame 11; the tightening screw 21 and the height-adjusting screw 22 have the same structure, the rear end of the tightening screw 21 and the height-adjusting screw 22 is a rotating rod 23, and the front end is a baffle 24. The rotating rod 23 is convenient for rotation operation, and the baffle 24 increases the contact surface and improves stability; four tightening screws 21 are provided, two are respectively provided on the two rear support legs 12; two height-adjusting screws 22 are provided, one is provided on each of the left and right sides of the top frame 11; when working, the height-adjusting screw 22 is adjusted according to the required installation height of the device, and the adjustment method is to rotate the height-adjusting screw 22 to lift and lower, and then according to the thickness of the wall of the electrolytic cell, the tightening screw 21 is locked to achieve fixation, and the adjustment method is to rotate the tightening screw 21 to move back and forth.
[0026] Cantilever push plate part; the cantilever push plate part includes a parallel extension rod 31 and a push plate 32, the parallel extension rod 31 is movably arranged on the front side of the top frame 11, and the push plate 32 is fixed to the front end of the parallel extension rod 31; the push plate 32 is a stepped bent plate, including a connecting portion 321, a bent portion 322 and a contact portion 323 that are integrally connected from top to bottom, the contact portion 323 is located behind the connecting portion 321 and parallel to the connecting portion 321. The push plate 32 is designed in a stepped bent plate shape, which can improve the rigidity of the push plate 32 on the one hand, and can facilitate the lower end of the push plate 32 to more easily contact the end of the copper conductive component on the other hand.
[0027] The top pressing mechanism 40 includes a rear mounting block 41, a front movable block 42 and a double-headed screw 43. The rear mounting block 41 is fixed to the rear side of the top frame 11, the front movable block 42 is connected to the rear end of the parallel extension rod 31, and the double-headed screw 43 is arranged between the rear mounting block 41 and the front movable block 42. The two ends of the double-headed screw 43 have opposite thread rotation directions and are respectively screwed with a nut seat 44. The front and rear sides of the left and right nut seats 44 are respectively hinged to connecting rods 45, and the other ends of the front and rear connecting rods 45 are hinged to the rear mounting block 41 and the front movable block 42; when the double-headed screw When the rod 43 rotates, the nut seats 44 at both ends move closer to or away from each other, and then through the linkage effect of the connecting rod 45, the front movable block 42 is driven to move forward or backward relative to the rear mounting block 41, and then the parallel extension rod 31 and the push plate 32 are driven to move forward and backward, so as to achieve the push fine adjustment of the copper conductive component; because the deformation of the pressing mechanism 40 is achieved by the threaded transmission of the double-headed screw 43 and the nut seat 44, stepless micro-adjustment, that is, precise regulation, can be achieved; and the threaded transmission adjustment structure is safer and more labor-saving than the traditional manual prying;
[0028] Furthermore, one end of the double-headed screw 43 is an external hexagonal column 46, and the other end is provided with a handwheel 47. The handwheel 47 is used for conventional adjustment operations, and the external hexagonal column 46 can be used to connect an external wrench tool, which can reduce the difficulty of operation when the adjustment resistance is large.
[0029] The working principle of this utility model:
[0030] like Figure 4-5 As shown, according to the offset direction of the copper conductive component 52, a device of the utility model is set up at one end of the partition wall 51 of the electrolytic cell 50. As shown in the figure, the top frame 11 is set up above the side wall of the electrolytic cell, and the four legs 12 are respectively straddling the side wall of the electrolytic cell and both sides of the partition wall. According to the required installation height of the device and the thickness of the wall of the electrolytic cell, the tightening screw 21 is tightened to achieve fixed installation; after the frame is installed, the push plate 32 is driven to move forward and backward by the top pressure mechanism 40, and the push plate 32 further pushes the copper conductive component 52 on the partition wall 51 to move, thereby realizing the adjustment operation.
[0031] The above description is only an embodiment of the present invention, and does not limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made by using the contents of the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.
Claims
1. A calibration device for copper conductive components of an electrolytic cell, characterized in that: include The frame portion includes a rectangular top frame (11), and four legs (12) are vertically connected to the four corners of the top frame (11); The tightening and adjusting part comprises a tightening screw (21) and a height-adjusting screw (22), wherein the tightening screw (21) is screwed and mounted on the rear support leg (12), and the height-adjusting screw (22) is screwed and mounted on the top frame (11); A cantilever push plate portion; the cantilever push plate portion comprises a parallel extension rod (31) and a push plate (32), the parallel extension rod (31) is movably arranged on the front side of the top frame (11), and the push plate (32) is fixed to the front end of the parallel extension rod (31); A pressing mechanism (40); the pressing mechanism (40) is arranged in the top frame (11) and fixed to the rear side of the top frame (11); the front side of the pressing mechanism (40) is connected to the rear end of the parallel extension rod (31); the pressing mechanism (40) can adjust the front and rear spacing to drive the parallel extension rod (31) to move forward and backward.
2. The electrolytic cell copper conductive component correction device according to claim 1, characterized in that: The pressing mechanism (40) comprises a rear mounting block (41), a front movable block (42) and a double-headed screw (43); the double-headed screw (43) is arranged between the rear mounting block (41) and the front movable block (42); the threads at both ends of the double-headed screw (43) are rotated in opposite directions and are respectively screwed with a nut seat (44); the front and rear sides of the nut seats (44) on the left and right sides are respectively hinged with connecting rods (45); the other ends of the connecting rods (45) on the front and rear sides are hinged to the rear mounting block (41) and the front movable block (42).
3. The electrolytic cell copper conductive component correction device according to claim 2, characterized in that: One end of the double-headed screw (43) is an outer hexagonal column (46), and the other end is provided with a hand wheel (47).
4. The electrolytic cell copper conductive component correction device according to claim 1, characterized in that: The tightening screw (21) and the height-adjusting screw (22) have the same structure; the rear ends of the tightening screw (21) and the height-adjusting screw (22) are rotating rods (23) and the front ends are baffles (24).
5. The electrolytic cell copper conductive component correction device according to claim 1, characterized in that: Four tightening screws (21) are provided, two of which are provided on the two rear legs (12) respectively; two height adjustment screws (22) are provided, one of which is provided on each of the left and right sides of the top frame (11).
6. The electrolytic cell copper conductive component correction device according to claim 1, characterized in that: The push plate (32) is a stepped bent plate, comprising a connecting portion (321), a bent portion (322) and a contact portion (323) which are integrally connected from top to bottom, and the contact portion (323) is located behind the connecting portion (321) and parallel to the connecting portion (321).