An electrolytic manganese post-processing production line
The electrolytic manganese post-processing production line, which integrates water control, feeding, stripping and collection functions, has solved the problem of feeding electrolytic manganese plates one by one, realized automated processing, and improved production efficiency and manganese sheet processing effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-30
- Publication Date
- 2026-03-10
AI Technical Summary
The existing electrolytic manganese production line has an incompatible feeding method, which makes it difficult to feed the electrolytic manganese plates one by one, resulting in poor automation and low efficiency.
An electrolytic manganese post-processing production line integrating feeding, water control, stripping, and manganese block collection was designed. The electrolytic manganese plates are fed and stripped one by one through components such as a water control tank, toothed conveyor belt, stripping knife, drying tube, and circulating plate picking assembly. Combined with fan drying and magnetic collection, the process is automated.
It enables the individual feeding and peeling of electrolytic manganese plates, improving automation and efficiency, ensuring the drying and collection of manganese sheets, and enhancing production efficiency and glass quality.
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Figure CN116024611B_ABST
Abstract
Description
Technical Field
[0001] This invention specifically relates to the field of electrolytic manganese production line technology, and more specifically to an electrolytic manganese post-processing production line. Background Technology
[0002] The production process of electrolytic manganese consists of four stages: chemical (leaching) purification, electrolysis, and post-treatment of electrolytic manganese. Post-treatment of electrolytic manganese refers to a series of operations that process the electrolytic manganese metal product, including passivation, washing, drying, peeling, packaging, and electrode plate treatment.
[0003] Chinese Patent Publication No. CN 103526229 B discloses a feeding system for an electrolytic manganese or zinc production line, comprising a front forklift mechanism, a transition conveyor chain device, and at least two rear forklift mechanisms. The front and rear forklift mechanisms have identical structures, each containing a conveying fork, a transmission mechanism, and a power device. When the conveying fork of the front forklift mechanism rotates circumferentially under the drive of the transmission mechanism, it conveys a cathode plate from the hook of the front conveyor chain device of the electrolytic manganese production line to the hook of the transition conveyor chain device. The transition conveyor chain device moves the cathode plate to the next station. The conveying fork of the front forklift mechanism then conveys another cathode plate from the hook of the front conveyor chain device of the electrolytic manganese production line to the hook of the transition conveyor chain device. At least two cathode plates are hooked on the transition conveyor chain device. The conveying forks of the at least two rear forklift mechanisms simultaneously convey at least two cathode plates hooked on the transition conveyor chain device to hooks respectively provided on the rear conveyor chain devices of the electrolytic manganese production line.
[0004] The aforementioned patents only disclose the feeding mechanism for electrolytic manganese plates or zinc plates. However, this feeding method has poor adaptability to the entire electrolytic manganese production line and is not compatible with existing electrolytic manganese production lines. It is difficult to feed each electrolytic manganese plate individually during the feeding process.
[0005] To address this, we provide an electrolytic manganese post-processing production line that integrates feeding, water control, stripping, and manganese block collection. Compared to traditional electrolytic manganese equipment, it offers superior automation, enabling individual feeding and stripping of electrolytic manganese plates, significantly improving the glass-like properties and efficiency of the plates. Summary of the Invention
[0006] The purpose of this invention is to provide an electrolytic manganese post-processing production line that integrates feeding, water control, stripping, and manganese block collection. Compared with traditional electrolytic manganese equipment, it has better automation and can realize the individual feeding and stripping of electrolytic manganese plates, greatly improving the glass effect and efficiency of electrolytic manganese plates.
[0007] To achieve the above objectives, the present invention provides the following technical solution:
[0008] An electrolytic manganese post-processing production line includes a water control tank for controlling water content and arranging manganese cathode plates for conveying. Manganese cathode plate conveying assemblies are arranged on both sides of the water control tank. An auxiliary box is provided at one end of the water control tank, and a swing feeding assembly is provided below the auxiliary box. A frame is provided at the end of the auxiliary box away from the water control tank. Second toothed conveyor belts are provided on both sides of the frame. Both ends of the two second toothed conveyor belts are mounted on the same drive shaft, and both ends of the drive shaft are fixedly connected to the machine housing through bearing seats. A second transmission motor is also installed at one end of the drive shaft.
[0009] A fixing plate is fixed inside the frame, and a material chute is provided in the middle of the fixing plate. A peeling knife is fixed on one side of the material chute. A plate holding assembly is provided above the peeling knife, and a drying tube is provided on one side of the plate holding assembly. The manganese-containing negative plate conveying assembly includes a rotating shaft rotatably connected between the water control tank and the outer frame. A first toothed conveyor belt is installed on the outer frame. The rotating shaft is connected to a first transmission motor. The first transmission motor is fixed on the outer frame. The outer frame is C-shaped and welded to the outside of the water control tank. A receiving rack is provided at the end of the frame away from the auxiliary box. A circulating plate picking assembly is also provided above the receiving rack.
[0010] The circulating plate-retrieving assembly includes a ring track, in which multiple rollers are slidably connected, and a slip ring is rotatably connected to the middle position of each roller; a second hanger is suspended at the bottom of the slip ring by a hanger rod; magnets are embedded at both ends of the second hanger.
[0011] The circular track has two T-shaped frames fixed inside, and the T-shaped frames are fixed to the base.
[0012] As a further technical solution of the present invention, the peeling blade is set at an angle of 25-35 degrees to the fixing plate, and the orientation of the peeling blade is opposite to the transmission direction of the second toothed conveyor belt.
[0013] As a further technical solution of the present invention, the drying tube is provided with two layers, and the drying tube is fixed to the top side inside the machine housing by the first hanger.
[0014] As a further technical solution of the present invention, the plate pressing assembly includes a rotating shaft, on which multiple pressure rollers are fitted, and both ends of the rotating shaft are fixed to the drive arm; the movable arm is movably connected to the fixed frame through the rotating shaft; the fixed frame is fixed to the top side inside the housing by bolts; a tension spring is also provided between the movable arm and the fixed frame.
[0015] As a further technical solution of the present invention, two fans are embedded in the top of the casing; the fans are located directly above the drying tube.
[0016] As a further technical solution of the present invention, the top of one end of the water control tank with the auxiliary box is set as a slope and a semi-circular groove is also provided; the upper surface of the auxiliary box is set as an arc shape, and the auxiliary box is connected to the water control tank.
[0017] As a further technical solution of the present invention, the swing feeding assembly includes two side supports fixed on both sides of the water control tank, and a rotating shaft is installed between the two side supports; one end of the rotating shaft is connected to the cylinder rod of the rotating cylinder; the rotating cylinder is fixed on the outside of the side supports.
[0018] The two ends of the rotating shaft are interference-fitted with drive arms; the end of the drive arm away from the rotating shaft is provided with a C-shaped hook.
[0019] As a further technical solution of the present invention, a receiving frame is provided at the end of the frame away from the auxiliary box; the receiving frame includes two sliding rods, and the sliding rods are arranged in an arc shape at the end near the frame to facilitate the sliding of the manganese accumulation plate; the bottom of the two sliding rods is fixed to the rectangular base by a support rod.
[0020] As a further technical solution of the present invention, a conveyor belt is provided directly below the material chute, and a discharge tongue is provided below one end of the conveyor belt.
[0021] As a further technical solution of the present invention, the discharge tongue is provided with a grid plate, and a collection hopper is fixed at the bottom of the grid plate; one end of the collection hopper is connected to a centrifugal collection tank through a suction pipe.
[0022] Compared with the prior art, the beneficial effects of the present invention are:
[0023] 1. The present invention relates to water control of manganese cathode plates; the electrolyzed manganese cathode plates are placed in a water control tank, and water control is achieved by utilizing the weight of the water itself and its gravity flow function to reduce the moisture on the manganese cathode plates. During the water control process, a first transmission motor drives a first toothed transmission belt to rotate through a rotating shaft. The first toothed transmission belt achieves fixed-distance transmission of the manganese cathode plates through its external teeth, ensuring that the manganese cathode plates do not accumulate or collide with each other during transmission.
[0024] 2. In this invention, the feeding of the manganese accumulation plate is achieved by setting the top of the auxiliary box at one end of the water control tank as a slope and also opening a semi-circular groove. When the first toothed conveyor belt transports the manganese accumulation plate to the end, the manganese accumulation plate slides down the slope and falls into the semi-circular groove. At this time, the rotary cylinder drives the rotary shaft to rotate, and the C-shaped hook set at the end of the drive arm hooks the shaft at both ends of the top of the manganese accumulation plate and lifts the manganese accumulation plate. The manganese accumulation plate slides along the arc-shaped part at the top of the auxiliary box, so that the manganese accumulation plate changes from a vertical state to a horizontal state until the manganese accumulation plate is transported to the frame body, so that the second toothed conveyor belt can connect and transport the manganese accumulation plate.
[0025] 3. In this invention, the manganese-accumulated negative plate is peeled off. A second transmission motor drives a second toothed transmission belt to rotate, and the manganese-accumulated negative plate is transported through external teeth. During the transport process, the manganese-accumulated negative plate will be above the peeling knife. At this time, the movable arm flips downward under the tension of the tension spring and presses the pressure roller onto the manganese-accumulated negative plate, so that the manganese-accumulated surface at the bottom of the negative plate is tightly attached to the peeling knife. Under the continuous transport of the second toothed transmission belt, the peeling knife peels off the manganese-accumulated negative plate at the bottom. After peeling, the manganese-accumulated negative plate continues to be transported. The fan blows out the hot air generated by the drying tube, so that the manganese-accumulated negative plate is dried. Finally, the manganese-accumulated negative plate slides out along the receiving rack for subsequent processing.
[0026] 4. In this invention, the collection and residue treatment of manganese flakes are carried out by the following steps: the manganese flakes fall onto the conveyor belt through the chute and are then transported to the discharge tongue; large manganese flakes are picked up by workers and then dried and packaged; small manganese flakes and powder are drawn into a centrifugal collection tank through a suction pipe under strong negative pressure for unified processing with the small manganese flakes and powder.
[0027] 5. In this invention, after the manganese-accumulating negative plate slides out along the receiving rack, the worker pulls the second hanger to make the roller slide on the circular track. When the magnets at both ends of the second hanger come into contact with the manganese-accumulating negative plate, they are instantly attracted. Then, the worker moves the second hanger to the designated position and uses a rubber rod to gently vibrate the manganese-accumulating negative plate, causing the manganese flakes remaining on the negative plate to be shaken off for collection. Since the lifting rod is welded to the bottom of the slip ring, and the slip ring is rotatably connected to the roller, the roller does not affect the normal lifting and transmission of the second hanger when it rolls, thus providing good flexibility. Attached Figure Description
[0028] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0029] Figure 2 In this invention Figure 1 A partial structural diagram.
[0030] Figure 3 In this invention Figure 2 A schematic diagram of the rear structure.
[0031] Figure 4 In this invention Figure 2 The left view.
[0032] Figure 5 In this invention Figure 4 AA sectional view.
[0033] Figure 6 In this invention Figure 1 A schematic diagram of the internal structure.
[0034] Figure 7 In this invention Figure 6 Enlarged diagram of point B.
[0035] Figure 8 In this invention Figure 3 Enlarged diagram of point C.
[0036] Figure 9 In this invention Figure 2 Enlarged diagram of point D.
[0037] Figure 10 This is a schematic diagram of the circulating plate-retrieving assembly structure in this invention.
[0038] Figure 11 This is a planar sectional view of the roller in this invention.
[0039] In the diagram: 1-Water control tank, 2-First toothed conveyor belt, 3-Outer frame, 4-First transmission motor, 5-Auxiliary box, 6-Oscillating feeding assembly, 7-Frame body, 8-Second toothed conveyor belt, 9-Fixing plate, 10-Chassis body, 11-Fan, 12-Sheet pressing assembly, 13-Drying pipe, 14-First hanger, 15-Peeling knife, 16-Second transmission motor, 17-Discharge chute, 18-Transmission belt, 19-Discharge tongue, 20-Grid plate, 21-Collection hopper, 22-Extraction pipe, 23-Centrifugal collection tank, 24-Receiving rack; 25-Circulating plate taking assembly;
[0040] 121-Rotating shaft, 122-Pressure roller, 123-Moving arm, 124-Fixed frame, 125-Tension spring;
[0041] 61-Side support, 62-Rotary cylinder, 63-Rotary shaft, 64-Drive arm;
[0042] 251-Circular track, 252-Roller, 253-Second hanger, 254-T-shaped frame, 255-Base, 256-Magnet, 257-Slip ring, 258-Hanging rod. Detailed Implementation
[0043] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0044] Please see Figure 1-11 In this embodiment of the invention, an electrolytic manganese post-processing production line includes a water control tank 1, which is used for water control and arrangement conveying of manganese accumulation cathode plates. Manganese accumulation cathode plate conveying assemblies are arranged on both sides of the water control tank 1. An auxiliary box 5 is provided at one end of the water control tank 1, and a swing feeding assembly 6 is provided below the auxiliary box 5. A frame body 7 is provided at the end of the auxiliary box 5 away from the water control tank 1. Second toothed conveyor belts 8 are provided on both sides of the frame body 7. Both ends of the two second toothed conveyor belts 8 are mounted on the same drive shaft, and both ends of the drive shaft are fixedly connected to the housing 10 through bearing seats. A second transmission motor 16 is also installed at one end of the drive shaft.
[0045] A fixing plate 9 is fixed inside the frame body 7, and a material discharge groove 17 is provided in the middle of the fixing plate 9. A peeling knife 15 is fixed on one side of the material discharge groove 17. A plate pressing assembly 12 is provided above the peeling knife 15, and a drying tube 13 is provided on one side of the plate pressing assembly 12.
[0046] The manganese-accumulating negative plate conveying assembly includes a rotating shaft rotatably connected between the water control tank 1 and the outer frame 3, and a first toothed conveyor belt 2 is fitted on the outer frame 3. The rotating shaft is connected to a first transmission motor 4. The first transmission motor 4 is fixed on the outer frame 3. The outer frame 3 is C-shaped and welded to the outside of the water control tank 1. A receiving rack 24 is provided at the end of the frame body 7 away from the auxiliary box 5. A circulating plate picking assembly 25 is also provided above the receiving rack 24.
[0047] The circulating plate-retrieving assembly 25 includes an annular track 251, in which multiple rollers 252 are slidably connected, and a slip ring 257 is rotatably connected to the middle position of each roller 252; a second hanger 253 is suspended at the bottom of the slip ring 257 by a hanger rod 258; magnets 256 are embedded at both ends of the second hanger 253.
[0048] The annular track 251 has two T-shaped frames 254 fixed inside, and the T-shaped frames 254 are fixed on the base 255.
[0049] In this embodiment, the peeling blade 15 is set at an angle of 25-35 degrees to the fixing plate 9, and the orientation of the peeling blade 15 is opposite to the transmission direction of the second toothed conveyor belt 8.
[0050] In this embodiment, the drying tube 13 is provided with two layers, and the drying tube 13 is fixed to the top side inside the chassis 10 by the first hanger 14.
[0051] In this embodiment, the plate pressing assembly 12 includes a rotating shaft 121, on which multiple pressure rollers 122 are mounted, and both ends of the rotating shaft 121 are fixed to the drive arm 64; the movable arm 123 is movably connected to the fixed frame 124 through the rotating shaft; the fixed frame 124 is fixed to the top side inside the housing 10 by bolts; a tension spring 125 is also provided between the movable arm 123 and the fixed frame 124.
[0052] In this embodiment, two fans 11 are embedded in the top of the casing 10; the fans 11 are located directly above the drying tube 13.
[0053] In this embodiment, the top of one end of the water control tank 1 with the auxiliary box 5 is set as a slope and a semi-circular groove is also provided; the upper surface of the auxiliary box 5 is set as an arc shape, and the auxiliary box 5 is connected to the water control tank 1.
[0054] More specifically, the swing feeding assembly 6 includes two side supports 61 fixed on both sides of the water control tank 1, and a rotating shaft 63 is installed between the two side supports 61; one end of the rotating shaft 63 is connected to the cylinder rod of the rotating cylinder 62; the rotating cylinder 62 is fixed on the outside of the side supports 61.
[0055] The two ends of the rotating shaft 63 are interference-fitted with drive arms 64; a C-shaped hook is provided at the end of the drive arm 64 away from the rotating shaft 63.
[0056] By adopting the above technical solution, since the top of the auxiliary box 5 at one end of the water control tank 1 is set as a slope and a semi-circular groove is also provided, when the first toothed conveyor belt 2 transports the manganese-accumulating negative plate to the end, the manganese-accumulating negative plate slides down the slope and falls into the semi-circular groove. At this time, the rotary cylinder 62 drives the rotary shaft 63 to rotate, and the C-shaped hook at the end of the drive arm 64 hooks the shafts at both ends of the top of the manganese-accumulating negative plate and lifts the manganese-accumulating negative plate. The manganese-accumulating negative plate slides along the arc-shaped part at the top of the auxiliary box 5, so that the manganese-accumulating negative plate changes from a vertical state to a horizontal state until the manganese-accumulating negative plate is transported to the frame body 7, so that the second toothed conveyor belt 8 can connect and transport the manganese-accumulating negative plate.
[0057] In this embodiment, a receiving rack 24 is provided at the end of the frame body 7 away from the auxiliary box 5; the receiving rack 24 includes two sliding rods, and the sliding rods are arranged in an arc shape at the end near the frame body 7 to facilitate the sliding of the manganese accumulation plate; the bottom of the two sliding rods is fixed to the rectangular base by a support rod.
[0058] In this embodiment, a conveyor belt 18 is provided directly below the material chute 17, and a discharge tongue 19 is provided below one end of the conveyor belt 18.
[0059] More specifically, the discharge tongue 19 is provided with a grid plate 20, and a collection hopper 21 is fixed at the bottom of the grid plate 20; one end of the collection hopper 21 is connected to the centrifugal collection tank 23 through a suction pipe 22.
[0060] By adopting the above technical solution, manganese flakes fall onto the conveyor belt 18 through the chute 17, and then fall onto the discharge tongue 19 under the transmission of the conveyor belt 18; large manganese flakes are picked up by the staff and then dried and packaged; small manganese flakes and powder are drawn into the centrifugal collection tank 23 through the extraction pipe 22 under strong negative pressure, so as to be processed together with the small manganese flakes and powder.
[0061] A method of using an electrolytic manganese post-processing production line includes the following steps: Step 1: Water control of manganese accumulation plates; The electrolytic manganese accumulation plates are placed in a water control tank 1, and water control is achieved by utilizing the weight of the water itself and its gravity flow function to reduce the moisture on the manganese accumulation plates. During the water control process, the first transmission motor 4 drives the first toothed transmission belt 2 to rotate through the rotating shaft. The first toothed transmission belt 2 achieves fixed-distance transmission of the manganese accumulation plates through its external teeth, ensuring that the manganese accumulation plates do not accumulate or collide with each other during transmission.
[0062] Step 2: Feeding the manganese negative plate. Since the top of the auxiliary box 5 at one end of the water control tank 1 is set as a slope and a semi-circular groove is also opened, when the first toothed conveyor belt 2 transports the manganese negative plate to the end, the manganese negative plate slides down the slope and falls into the semi-circular groove. At this time, the rotary cylinder 62 drives the rotary shaft 63 to rotate. The C-shaped hook set at the end of the drive arm 64 hooks the shaft at both ends of the top of the manganese negative plate and lifts the manganese negative plate. The manganese negative plate slides along the arc part at the top of the auxiliary box 5, so that the manganese negative plate changes from a vertical state to a horizontal state until the manganese negative plate is transported to the frame body 7, so that the second toothed conveyor belt 8 can connect and transport the manganese negative plate.
[0063] Step 3: Peeling the manganese-accumulated negative plate. The second transmission motor 16 drives the second toothed transmission belt 8 to rotate, and the manganese-accumulated negative plate is transported through the external teeth. During the transport process, the manganese-accumulated negative plate will be above the peeling knife 15. At this time, the movable arm 123 flips downward under the tension of the tension spring 125 and presses the pressure roller 122 onto the manganese-accumulated negative plate, so that the manganese-accumulated surface at the bottom of the negative plate is tightly attached to the peeling knife 15. Under the continuous transport of the second toothed transmission belt 8, the peeling knife 15 peels off the manganese accumulation at the bottom of the negative plate. After peeling, the negative plate continues to be transported, and the fan 11 blows out the hot air generated by the drying tube 13, so that the negative plate is dried. The manganese negative plate slides out along the receiving rack 24. The worker pulls the second hanger 253, causing the roller 252 to slide on the circular track 251. When the magnets 256 at both ends of the second hanger 253 come into contact with the manganese negative plate, they are instantly attracted. Then the worker moves the second hanger 253 to the designated position and uses a rubber rod to gently vibrate the manganese negative plate, causing the manganese sheets remaining on the negative plate to fall off for collection. Since the lifting rod 258 is welded to the bottom of the slip ring 257, and the slip ring 257 is rotatably connected to the roller 252, the roller 252 does not affect the normal lifting and transmission of the second hanger 253 when it rolls, thus providing good flexibility.
[0064] Step 4: Collection and Residue Treatment of Manganese Flakes. The manganese flakes fall onto the conveyor belt 18 through the chute 17, and then onto the discharge tongue 19. Large manganese flakes are picked up by workers and then dried and packaged. Small manganese flakes and powder are drawn into the centrifugal collection tank 23 through the extraction pipe 22 under strong negative pressure for unified treatment with the small manganese flakes and powder.
[0065] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0066] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An electrolytic manganese aftertreatment production line, characterized in that: Including control water pool (1), the control water pool (1) is used for the control water of manganese negative plate and arrangement delivery, the both sides of control water pool (1) are provided with manganese negative plate delivery assembly;Control water pool (1) one end is provided with auxiliary box (5), and below auxiliary box (5) is provided with swing loading assembly (6);The one end of auxiliary box (5) away from control water pool (1) is provided with rack body (7), the both sides of the rack body (7) are provided with second gear tooth transmission belt (8), the both ends of two second gear tooth transmission belt (8) are installed on the same transmission shaft, and the transmission shaft both ends are fixedly connected with machine box body (10) through belt seat bearing, and one end of transmission shaft is also cooperatively installed with second transmission motor (16); The fixed plate (9) is fixed in the rack body (7), and the blanking groove (17) is formed in the middle position of the fixed plate (9), and the stripping knife (15) is fixed on one side of the blanking groove (17); The plate pressing assembly (12) is arranged above the stripping knife (15), and the drying pipe (13) is arranged on one side of the plate pressing assembly (12). The manganese negative plate conveying assembly comprises a rotating shaft rotatably connected between the control water pool (1) and the outer side frame (3), and a first gear tooth transmission belt (2) is cooperatively installed on the outer side frame (3), and the rotating shaft is cooperatively connected with a first transmission motor (4); The first transmission motor (4) is fixed on the outer side frame (3); The outer side frame (3) is arranged in a C shape and is welded on the outer side of the control water pool (1); The one end of the rack body (7) away from the auxiliary box (5) is provided with a receiving rack (24); And a circulating plate taking assembly (25) is further arranged above the receiving rack (24); The circulating plate taking assembly (25) comprises a ring track (251), a plurality of rollers (252) are slidably connected in the ring track (251), and a slip ring (257) is rotatably connected in the middle position of each roller (252); The bottom of the slip ring (257) is hoisted with a second hanging bracket (253) through a suspender (258); The both ends of the second hanging bracket (253) are embedded with magnets (256); Two T-shaped frames (254) are fixed inside the ring track (251), and the T-shaped frames (254) are fixed on the base (255); The swing loading assembly (6) comprises two side supports (61) fixed on the both sides of the control water pool (1), and a rotating shaft (63) is cooperatively installed between the two side supports (61); One end of the rotating shaft (63) is cooperatively connected with the cylinder rod of a rotary air cylinder (62); The rotary air cylinder (62) is fixed on the outer side of the side support (61); The both ends of the rotating shaft (63) are cooperatively connected with a driving arm (64) through interference fit; The one end of the driving arm (64) away from the rotating shaft (63) is provided with a C-shaped hook. The stripping knife (15) is arranged at an angle of 25-35 degrees with the fixed plate (9), and the direction of the stripping knife (15) is opposite to the transmission direction of the second gear tooth transmission belt (8).
2. The electrolytic manganese post-treatment production line according to claim 1, characterized in that: The drying pipe (13) is provided with two layers, and the drying pipe (13) is fixed inside the top side of the machine box body (10) through the first hanging bracket (14).
3. The electrolytic manganese post-treatment production line according to claim 1, characterized in that: The plate pressing assembly (12) comprises a rotating shaft (121) on which a plurality of pressing wheels (122) are fitted and installed, and both ends of the rotating shaft (121) are fixed with movable arms (123); the movable arms (123) are movably connected with the fixed frame (124) through the rotating shaft; the fixed frame (124) is fixed on the top side inside the cabinet body (10) through bolts; the movable arms (123) and the fixed frame (124) are further provided with tension springs (125).
4. The electrolytic manganese post-treatment production line according to claim 3, characterized in that: The top of the cabinet body (10) is embedded with two fans (11); the fans (11) are located directly above the drying pipe (13).
5. The electrolytic manganese post-treatment production line according to claim 1, characterized in that: One end of the auxiliary box (5) of the water control pool (1) is provided with an inclined slope, and a semicircular groove is further formed; the upper surface of the auxiliary box (5) is provided with an arc shape, and the auxiliary box (5) is connected with the water control pool (1).
6. The electrolytic manganese post-treatment production line according to claim 1, characterized in that: The material receiving frame (24) comprises two slide rods, and the slide rods are provided with an arc shape at one end close to the rack body (7) to facilitate the sliding of the manganese accumulation negative plate; the bottoms of the two slide rods are fixed on the rectangular seat through support rods.
7. The electrolytic manganese post-treatment production line according to claim 1, characterized in that: The blanking groove (17) is provided with a conveying belt (18) below, and a discharging tongue (19) is arranged below one end of the conveying belt (18).
8. The electrolytic manganese post-treatment production line according to claim 7, characterized in that: The discharging tongue (19) is provided with a grid plate (20), and the bottom of the grid plate (20) is fixed with a collecting hopper (21); one end of the collecting hopper (21) is connected with a centrifugal collecting tank (23) through a material pumping pipe (22). The discharging tongue (19) is provided with a grid plate (20), and the bottom of the grid plate (20) is fixed with a collecting hopper (21); one end of the collecting hopper (21) is connected with a centrifugal collecting tank (23) through a material pumping pipe (22).
Citation Information
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