A cathode plate washing system for electrolytic manganese
By designing an electrolytic manganese cathode plate washing system, using independently lifted soaking buckets and segmented moving cathode plates, the problem of mechanized continuous production of the plate washing process in the prior art is solved, and a more efficient and automated plate washing process is achieved.
Patent Information
- Application Number
- CN202011618503.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2020-12-30
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2040-12-30
AI Technical Summary
The existing electrolytic manganese cathode plate washing process cannot achieve mechanized continuous production, and there are problems such as frequent driving operations, difficulty in stabilizing the soaking time, poor washing effect and high labor costs.
An electrolytic manganese cathode plate washing system is designed, including a plate-up mechanism, a plate-receiving mechanism and a plate-soaking mechanism. Through independently lifted anode liquid soaking bucket, a washing liquid soaking bucket, a clean water bucket and a water glass liquid bucket, the cathode plate is realized in segmented movement and automatic soaking, avoiding driving operations.
Independent control and time adjustment of each process are achieved, poor washing effect caused by unstable immersion time is avoided, labor costs and labor intensity are reduced, production efficiency is improved, and post-processing process mechanization and automation are realized.
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Figure CN112725845B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of metallurgical mechanical equipment, in particular to a cathode plate washing system for electrolytic manganese. Background Art
[0002] The production process of electrolytic manganese consists of four stages: chemical combination (leaching), purification, electrolysis and post-treatment of electrolytic manganese.
[0003] Post-treatment of electrolytic manganese refers to a series of operations for post-treatment of electrolytic manganese products, including passivation, desulfurization, washing, drying, stripping, plate washing, packaging, and plate treatment. At present, desulfurization, washing, drying, and stripping in the post-treatment process have basically achieved mechanized production, but the cathode plate washing process cannot achieve mechanized continuous production with the previous process. The plate washing process includes anolyte liquid immersion, washing liquid (potassium dichromate solution) immersion, water washing, and water glass liquid. At present, the industry usually adopts manual plate washing, that is, the stripped cathode plate is manually lifted into the anode tank by a crane and soaked for about one minute, and then lifted to the washing liquid (potassium dichromate solution) for 10 seconds. After the washing liquid is soaked, it is manually cleaned with a high-pressure water gun and then lifted to the water glass barrel for immersion. After completing the plate washing process, it can enter the electrolytic cell.
[0004] Since manual lifting and crane washing are used, the main disadvantages are as follows: first, the crane operation is frequent and easily damaged, delaying production; second, it is difficult to stabilize the soaking time and control the plate washing effect when manually lifting into each solution barrel; third, when manually lifting in and out of each solution barrel, the residual liquid on the cathode plate is spilled on the ground, increasing the difficulty of collecting wastewater; fourth, the number of personnel required in the lifting process is at least 3 people based on an electrolytic manganese workshop with an annual output of 10,000 tons; fifth, since the number of cathode plates required for each electrolytic cell is fixed, and the peeled cathode plates are manually lifted into the plate washing process, the number of cathode plates in each lifting is uncertain, and the phenomenon of fewer or more plates often occurs in the process of entering and exiting a single electrolytic cell every day, affecting the speed of the process. Summary of the invention
[0005] In view of the deficiencies in the prior art, the invention provides an electrolytic manganese cathode plate washing system, which solves the problems in the prior art of frequent and easy damage of driving operations, and the difficulty in stabilizing the soaking time of each process resulting in poor plate washing effect.
[0006] According to an embodiment of the invention, a plate washing system for electrolytic manganese cathode plates includes a plate raising mechanism, a plate collecting mechanism and a plate immersion mechanism, wherein the plate raising mechanism is used to lift the cathode plate to the plate collecting mechanism, and the plate collecting mechanism is used to transfer the cathode plate from the plate raising mechanism to the plate immersion mechanism, the cathode plate is lifted from the plate raising mechanism to the plate collecting mechanism, and then translated to the plate immersion mechanism for plate washing; wherein the plate immersion mechanism includes a first frame, and an anode liquid soaking barrel, a washing liquid soaking barrel, a clean water barrel and a water glass liquid barrel which are independently lifted and lowered on the first frame in sequence, and a driving assembly is provided on the first frame for driving the cathode plate to move from above the anode liquid soaking barrel to above the water glass liquid barrel in sequence.
[0007] In the above embodiment, the plate loading mechanism and the plate collecting mechanism are used for conveying the cathode plate, and the cathode plate is conveyed to the first frame, and the cathode plate is moved in sections on the first frame, that is, it first stops above the anode liquid soaking barrel, and then moves to the subsequent washing liquid soaking barrel, clean water barrel and water glass liquid barrel in turn, and makes corresponding stops. When the cathode plate stops, the anode liquid soaking barrel (or washing liquid soaking barrel, or clean water barrel, or water glass liquid barrel) below rises to soak the cathode plate therein. After a predetermined time, the anode liquid soaking barrel (or washing liquid soaking barrel, or clean water barrel, or water glass liquid barrel) descends to separate the cathode plate from it, and the cathode plate continues to move.
[0008] Furthermore, the driving assembly includes a pair of first chains arranged on both sides of the first frame, and a first driving motor installed on the first frame to drive the first chains, wherein the two first chains are used to drive the cathode plate to move, that is, the cathode plate rests on the two first chains and moves with the movement of the first chains.
[0009] Furthermore, the plate washing system also includes a plurality of lifting components for driving the anode liquid soaking bucket, the washing liquid soaking bucket, the clean water bucket and the water glass liquid bucket to independently lift and lower, each of the lifting components includes a second driving motor installed on the first frame, and two active roller groups installed on the first frame and located on both sides of the second driving motor, and two driven roller groups installed on the first frame and located above the two active roller groups, a second chain is wound around the active roller group and the driven roller group located directly above it, and a universal connecting shaft is arranged between the second driving motor and the two active roller groups; the bottoms of the anode liquid soaking bucket, the washing liquid soaking bucket, the clean water bucket and the water glass liquid bucket are all hinged to the second chain close to them.
[0010] Furthermore, the upper plate mechanism includes a second frame, a pair of third chains are arranged at one end of the second frame away from the first frame, and the upper plate mechanism also includes a third drive motor installed on the second frame to drive the third chain; the second frame is also provided with a fourth chain extending from the third chain to the first chain, and a fourth drive motor installed on the second frame to drive the fourth chain.
[0011] Furthermore, the plate collecting mechanism includes a third frame connected to the first frame and the second frame and located above the two, the third frame is provided with a mobile frame that moves between the first frame and the second frame, and a rolling wheel is provided between the mobile frame and the third frame, a fifth driving motor is also installed on the third frame, and a fifth chain is provided between the fifth driving motor and the rolling wheel; a plate lifting frame is also fixedly connected to the bottom of the mobile frame, second cylinders are provided on both sides of the plate lifting frame, and the pistons of the two second cylinders are movably connected with clamps, and the middle sections of the two clamps are hinged to form an "X"-shaped clamping member.
[0012] Furthermore, the second frame is also fixedly connected to a base located above the proximal ends of the third chain and the fourth chain, and a first cylinder is hinged on the base, and the piston of the first cylinder extends obliquely downward and is hinged to a horizontally arranged rotating rod, and the two ends of the rotating rod are respectively fixedly connected to two gear rods extending obliquely downward.
[0013] Furthermore, the base is also connected with two mounting rods for rotatably connecting the two ends of the rotating rod, and the two blocking rods are located between the two mounting rods.
[0014] Furthermore, an electrolyte soaking bucket is independently lifted and arranged on the first frame, and the electrolyte soaking bucket and the clean water bucket are arranged on both sides of the water glass liquid bucket. The first frame is also equipped with a lifting component for driving the electrolyte soaking bucket to lift and lower.
[0015] Furthermore, a liquid receiving box extending from below the anolyte soaking barrel to below the electrolyte soaking barrel is also installed on the first frame.
[0016] Furthermore, two spray pipes are installed on the first frame, which are located between the washing liquid soaking bucket and the clean water bucket, and between the clean water bucket and the water glass liquid bucket.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] Independently lifting anode liquid soaking barrel, washing liquid soaking barrel, clean water barrel and water glass liquid barrel are arranged in sequence on the first frame, so as to facilitate the individual control of each process. Anode liquid soaking, washing liquid (potassium dichromate solution) soaking, clean water cleaning and water glass liquid soaking are carried out independently, so that the time of each process can be conveniently adjusted, avoiding the problem of poor plate washing effect due to the difficulty in stabilizing the soaking time of each process; at the same time, it avoids the inconvenience caused by driving operation. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present invention;
[0020] Figure 2 This is a schematic diagram of the structure of the immersion plate mechanism according to an embodiment of the present invention;
[0021] Figure 3 for Figure 2 A partial enlarged schematic diagram in the middle;
[0022] Figure 4 for Figure 3 Schematic diagram of the structure from top view;
[0023] Figure 5 Schematic diagram of the connection relationship between the third chain, the fourth chain and the base in an embodiment of the present invention;
[0024] Figure 6 A schematic diagram of the connection relationship between the base and the blocking rod according to an embodiment of the present invention;
[0025] Figure 7 It is a structural schematic diagram of a plate collecting mechanism according to an embodiment of the present invention;
[0026] Figure 8 A schematic diagram of the connection relationship between the lifting plate frame and the clamping member according to an embodiment of the present invention (side view);
[0027] Fig. 9 A schematic diagram of the connection relationship between the lifting plate frame and the clamping member according to an embodiment of the present invention (front view);
[0028] In the above drawings:
[0029] The plate loading mechanism 1, the plate collecting mechanism 2, the plate immersion mechanism 3, the cathode plate 4, the first frame 5, the anode liquid soaking bucket 6, the washing liquid soaking bucket 7, the clean water bucket 8, the water glass liquid bucket 9, the spray pipe 10, the first chain 11, the first drive motor 12, the plate channel 13, the second drive motor 14, the active roller group 15, the driven roller group 16, the second chain 17, the universal connecting shaft 18, the second frame 19, the third chain 20, the third drive motor 21, the fourth chain 22, the fourth drive motor 23, the base 24, the first cylinder 25, the rotating rod 26, the blocking rod 27, the third frame 28, the moving frame 29, the rolling wheel 30, the fifth drive motor 31, the fifth chain 32, the plate lifting frame 33, the second cylinder 34, the clamping plate 35, the clamping member 36, and the mounting rod 37. DETAILED DESCRIPTION
[0030] The technical solution of the present invention is further described below in conjunction with the accompanying drawings and embodiments.
[0031] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the referred device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as limiting the present invention.
[0032] like Figure 1 , 2 As shown in Figures 3 and 4, this embodiment provides a cathode plate washing system for electrolytic manganese, which includes an upper plate mechanism 1, a plate collecting mechanism 2 and a plate immersion mechanism 3, wherein the upper plate mechanism 1 is used to lift the cathode plate 4 to the plate collecting mechanism 2, and the plate collecting mechanism 2 is used to transfer the cathode plate 4 from the upper plate mechanism 1 to the plate immersion mechanism 3, and the cathode plate 4 is lifted from the upper plate mechanism 1 to the plate collecting mechanism 2, and then translated to the plate immersion mechanism 3 for plate washing; wherein the plate immersion mechanism 3 includes a first frame 5, and an anode liquid soaking barrel 6, a washing liquid soaking barrel 7, a clean water barrel 8 and a water glass liquid barrel 9 which are independently lifted and lowered on the first frame 5 in sequence, and a driving component for driving the cathode plate 4 to move from above the anode liquid soaking barrel 6 to above the water glass liquid barrel 9 is provided on the first frame 5.
[0033] In the above embodiment, the upper plate mechanism 1 and the plate collecting mechanism 2 are used to transport the cathode plate 4, and the cathode plate 4 is transported to the first frame 5. The cathode plate 4 moves in sections on the first frame 5, that is, it first stays above the anode liquid soaking barrel 6, and then moves to the subsequent washing liquid soaking barrel 7, the clean water barrel 8 and the water glass liquid barrel 9 in sequence, and makes corresponding stops. When the cathode plate 4 stays, the anode liquid soaking barrel 6 (or the washing liquid soaking barrel 7, or the clean water barrel 8, or the water glass liquid barrel 9) below rises to soak the cathode plate 4 therein. After a predetermined time, the anode liquid soaking barrel 6 (or the washing liquid soaking barrel 7, or the clean water barrel 8, or the water glass liquid barrel 9) descends to separate the cathode plate 4 from it, and the cathode plate 4 continues to move.
[0034] In this embodiment, independently lifting anode liquid soaking barrel 6, washing liquid soaking barrel 7, clean water barrel 8 and water glass liquid barrel 9 are sequentially arranged on the first frame 5, so as to facilitate the individual control of each process, and independently carry out anode liquid soaking, washing liquid (potassium dichromate solution) soaking, clean water cleaning and water glass liquid soaking, so that each process can be conveniently adjusted in time, avoiding the problem of poor plate washing effect due to the difficulty in stabilizing the soaking time of each process; at the same time, avoiding the inconvenience caused by driving operation.
[0035] like Figure 1 As shown, preferably, the first frame 5 is also provided with an electrolyte soaking bucket ( Figure 1 Not shown in the figure, its arrangement and structure are consistent with the anode liquid soaking barrel 6, the washing liquid soaking barrel 7, the clean water barrel 8 and the water glass liquid barrel 9), and the electrolyte soaking barrel and the clean water barrel 8 are arranged on both sides of the water glass liquid barrel 9. After washing the plate, it directly enters the electrolyte soaking barrel to avoid the trouble of transferring again.
[0036] like Figure 2 As shown, preferably, the driving assembly includes a pair of first chains 11 arranged on both sides of the first frame 5, and a first driving motor 12 installed on the first frame 5 to drive the first chain 11, wherein the cathode plate 4 rests on the two first chains 11 and moves with the movement of the first chain 11, and the first driving motor 12 rotates to drive the first chain 11 to rotate, thereby driving the cathode plate 4 on the first chain 11 to follow and move. A plate channel 13 for the cathode plate 4 to move through is formed between the two first chains 11 (the third chain 20 and the fourth chain 22 described later are also two groups, and also form a plate channel 13), and the anode liquid soaking barrel 6, the washing liquid soaking barrel 7, the clean water barrel 8, the water glass liquid barrel 9 and the electrolyte soaking barrel are all located below the plate channel 13. When the cathode plate 4 moves with the first chain 11, the cathode plate 4 just passes over the anode liquid soaking barrel 6, the washing liquid soaking barrel 7, the clean water barrel 8, the water glass liquid barrel 9 and the electrolyte soaking barrel in sequence, which is convenient for soaking operation.
[0037] like Figure 2 , 3 As shown in 4, preferably, the plate washing system also includes a plurality of lifting components for driving the anode liquid soaking barrel 6, the washing liquid soaking barrel 7, the clean water barrel 8, the water glass liquid barrel 9 and the electrolyte soaking barrel to independently lift and lower, each of the lifting components includes a second driving motor 14 installed on the first frame 5, and two active roller groups 15 installed on the first frame 5 and located on both sides of the second driving motor 14, and two driven roller groups 16 installed on the first frame 5 and located above the two active roller groups 15, a second chain 17 is wound between the active roller group 15 and the driven roller group 16 located directly above it, and a universal connecting shaft 18 is arranged between the second driving motor 14 and the two active roller groups 15; the bottoms of the anode liquid soaking barrel 6, the washing liquid soaking barrel 7, the clean water barrel 8, the water glass liquid barrel 9 and the electrolyte soaking barrel are all hinged to the second chain 17 close thereto. The second drive motor 14 rotates through the universal joint shaft 18 connected thereto to drive the second chains 17 on both sides, thereby driving the anode liquid soaking barrel 6, or the washing liquid soaking barrel 7, or the clean water barrel 8, or the water glass liquid barrel 9, or the electrolyte soaking barrel hinged to the second chain 17 to rise and fall.
[0038] like Figure 1 , 5 As shown, preferably, the upper plate mechanism 1 includes a second frame 19, a pair of third chains 20 are arranged at one end of the second frame 19 away from the first frame 5, and the upper plate mechanism 1 also includes a third driving motor 21 installed on the second frame 19 to drive the third chain 20; the second frame 19 is also provided with a fourth chain 22 extending from the third chain 20 to the first chain 11, and a fourth driving motor 23 installed on the second frame 19 to drive the fourth chain 22. The third chain 20 drives the cathode plate 4 to move forward, moves to the fourth chain 22, and continues to move forward to transport the cathode plate 4 to the first frame 5.
[0039] like Figure 5 As shown, preferably, in order to smoothly transfer the cathode plate 4 from the third chain 20 to the fourth chain 22 , the third chain 20 is arranged obliquely upward, the fourth chain 22 is arranged horizontally, and the upper end of the third chain 20 is higher than the fourth chain 22 .
[0040] like Figure 5 , 6As shown, preferably, in order to conveniently count the number of cathode plates 4 entering the first frame 5, the second frame 19 is also fixedly connected with a base 24 located above the proximal ends of the third chain 20 and the fourth chain 22, and the base 24 is hinged with a first cylinder 25, and the piston of the first cylinder 25 extends obliquely downward and is hinged with a horizontally arranged rotating rod 26, and the two ends of the rotating rod 26 are respectively fixedly connected with two blocking rods 27 extending obliquely downward. Initially, the two blocking rods 27 move backward and upward under the action of the first cylinder 25 to open a channel for the cathode plates 4 to move forward. When the number is appropriate (such as 10 or 20 pieces, etc.), the first cylinder 25 drives the two blocking rods 27 to return to their original positions, blocking the channel for the cathode plates 4 to move forward, so that the cathode plates 4 are divided into sections on the moving path, which is convenient for segmenting, fixed number washing and electrolyte immersion of the cathode plates 4;
[0041] In particular, in order to facilitate counting, a counter can be installed on the base 24. When a suitable number (a predetermined value, such as the aforementioned "10 pieces, or 20 pieces, etc.") is reached, the first cylinder 25 starts to operate, thereby replacing manual counting and improving accuracy.
[0042] like Figure 1 , 7 As shown in Figures 8 and 9, preferably, the plate collecting mechanism 2 includes a third frame 28 connected to the first frame 5 and the second frame 19 and located above the two, a mobile frame 29 moving between the first frame 5 and the second frame 19 is provided on the third frame 28, and a rolling wheel 30 is provided between the mobile frame 29 and the third frame 28, a fifth driving motor 31 is also installed on the third frame 28, and a fifth chain 32 is provided between the fifth driving motor 31 and the rolling wheel 30; a plate lifting frame 33 is also fixedly connected below the mobile frame 29, second cylinders 34 are provided on both sides of the plate lifting frame 33, and the pistons of the two second cylinders 34 are movably connected with clamps 35, and the middle sections of the two clamps 35 are hinged to form an "X"-shaped clamping member 36. The fifth driving motor 31 drives the rolling wheel 30 to roll through the fifth chain 32, so that the mobile frame 29 moves back and forth on the third frame 28 to move the cathode plate 4 from the second frame 19 to the first frame 5. When moving, the plate lifting frame 33 arranged on the mobile frame 29 is connected to the cathode plate 4. Specifically, the lower end of the clamping member 36 is driven by the second cylinder 34 to clamp the cathode plate 4, and then the clamped cathode plate 4 is moved to the first frame 5 through the mobile frame 29, and then the clamping is released. The movement of each section of the cathode plate 4 can be achieved by reciprocating, thereby ensuring the continuity of the operation.
[0043] like Figure 6As shown, preferably, two mounting rods 37 for rotatably connecting the two ends of the rotating rod 26 are further connected to the base 24, and the two blocking rods 27 are located between the two mounting rods 37. The arrangement of the mounting rods 37 provides a horizontal support basis for the rotating rod 26, so that the rotating rod 26 can only rotate during the operation of the second cylinder 34, thereby realizing a more stable driving of the blocking rod 27 by the first cylinder 25.
[0044] like Figure 2 As shown, preferably, the first frame 5 is also equipped with two spray pipes 10 located between the washing liquid soaking barrel 7 and the clean water barrel 8, and between the clean water barrel 8 and the water glass liquid barrel 9, wherein the spray pipe 10 is provided with a solenoid valve, which automatically opens for spraying when the cathode plate 4 passes by, effectively controlling the water volume, and through the clean water spraying, the attached liquid on the cathode plate 4 can be separated from it faster, avoiding the soaking liquid of the previous process from being brought into the next process, affecting the plate washing effect.
[0045] Preferably, in order to prevent the liquid from flowing to the ground below the system during the plate washing and electrolyte immersion processes, a liquid receiving box extending from below the anode liquid immersion barrel 6 to below the electrolyte immersion barrel is also installed on the first frame 5, and a pipeline is provided on the liquid receiving box, through which the liquid in the liquid receiving box can be recovered.
[0046] Compared with the prior art, the present invention has the following beneficial effects:
[0047] The present invention avoids the use of a crane, has a simple structure, has few faults, saves labor costs, reduces labor intensity, saves water and is environmentally friendly. The plate washing and front-end stripping processes are separated, and the soaking time can be adjusted according to the plate and the soaking liquid, which has a better effect. The entire post-processing process of electrolytic manganese metal desulfurization, water washing, drying, stripping, and plate washing can be mechanized and automated, thereby realizing the automated production line of manganese metal production.
[0048] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solution of the present invention can be modified or replaced by equivalents without departing from the purpose and scope of the technical solution of the present invention, which should be included in the scope of the claims of the present invention.
Claims
1. A cathode plate washing system for electrolytic manganese, It is characterized in that The invention comprises a plate loading mechanism, a plate collecting mechanism and a plate immersion mechanism; wherein the plate immersion mechanism comprises a first frame, and an anode liquid immersion bucket, a washing liquid immersion bucket, a clean water bucket and a water glass liquid bucket which are independently lifted and lowered in sequence on the first frame, and a driving component which drives the cathode plate to move from above the anode liquid immersion bucket to above the water glass liquid bucket in sequence on the first frame; and further comprises a plurality of lifting components for driving the anode liquid immersion bucket, the washing liquid immersion bucket, the clean water bucket and the water glass liquid bucket to independently lift and lower, and each lifting component comprises a second driving motor installed on the first frame, and a driving component installed on the first frame. Two active roller groups mounted on the first frame and located on both sides of the second drive motor, and two driven roller groups mounted on the first frame and located above the two active roller groups, a second chain is wound between the active roller group and the driven roller group, and a universal connecting shaft is arranged between the second drive motor and the two active roller groups; the bottoms of the anode liquid soaking bucket, the washing liquid soaking bucket, the clean water bucket and the water glass liquid bucket are all hinged to the second chain close thereto; the upper plate mechanism includes a second frame, a pair of third chains are arranged at one end of the second frame away from the first frame, and the upper plate mechanism also includes a third chain mounted on the second frame The third driving motor on the first frame; the driving assembly includes a pair of first chains arranged on both sides of the first frame, the second frame is also provided with a fourth chain extending from the third chain to the first chain, and a fourth driving motor installed on the second frame; the plate collecting mechanism includes a third frame connected to both the first frame and the second frame and located above the first frame and the second frame, the third frame is provided with a moving frame moving between the first frame and the second frame, and a rolling wheel is provided between the moving frame and the third frame, and a fifth driving motor is also installed on the third frame, and the fifth driving motor and the rolling wheel are connected to each other. A fifth chain is arranged between the moving wheels; a lifting plate frame is also fixedly connected to the lower part of the moving frame, second cylinders are arranged on both sides of the lifting plate frame, and the pistons of the two second cylinders are movably connected with clamps, and the middle sections of the two clamps are hinged to form an "X"-shaped clamping piece; the second frame is also fixedly connected to a base located above the proximal ends of the third chain and the fourth chain, a counter is also installed on the base, the first cylinder is hinged on the base, and the piston of the first cylinder extends obliquely downward and is hinged to a horizontally arranged rotating rod, and the two ends of the rotating rod are respectively fixedly connected to two blocking rods extending obliquely downward.
2. The electrolytic manganese cathode plate washing system according to claim 1, It is characterized in that The driving assembly also includes a first driving motor mounted on the first frame, wherein the two first chains are used to drive the cathode plate to move.
3. The electrolytic manganese cathode plate washing system according to claim 1, It is characterized in that An electrolyte soaking bucket is also independently lifted and arranged on the first frame, and the electrolyte soaking bucket and the clean water bucket are arranged on both sides of the water glass liquid bucket. A lifting component for driving the electrolyte soaking bucket to lift and lower is also installed on the first frame.
4. The electrolytic manganese cathode plate washing system as claimed in claim 3, It is characterized in that The first frame is also provided with a liquid receiving box extending from below the anolyte soaking barrel to below the electrolyte soaking barrel.
5. The electrolytic manganese cathode plate washing system as claimed in claim 4, It is characterized in that The first frame is also provided with two spray pipes located between the washing liquid soaking bucket and the clean water bucket, and between the clean water bucket and the water glass liquid bucket.
6. The electrolytic manganese cathode plate washing system according to claim 1, It is characterized in that The base is also connected with two mounting rods for rotatably connecting the two ends of the rotating rod, and the two blocking rods are located between the two mounting rods.
Citation Information
Patent Citations
Electrolytic manganese negative plate washing device
CN213951372U