Electrolytic manganese toothed disc blanking device

By designing an electrolytic manganese toothed disc feeding device, the problem of automated cathode plate collection was solved, achieving fully automated production, improving production efficiency and reducing labor costs.

CN119262805BActive Publication Date: 2025-11-25YANCHENG ELECTRONICS EQUIP FACTORY
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Patent Information

Application Number
CN202411558200.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-04
Publication Date
2025-11-25
Estimated Expiration
2044-11-04

AI Technical Summary

Technical Problem

In existing electrolytic manganese production processes, the automation level of the cathode plate manganese sheet stripping equipment is low, and manual collection of the offline cathode plates cannot keep up with the production progress in a timely manner, resulting in low production efficiency.

Method used

An electrolytic manganese toothed disc feeding device was designed. The cathode plate is conveyed to the feeding device through the feeding device. The cathode plate is automatically collected by the cooperation of the slowly rotating feeding disc and the receiving disc. The device includes a geared motor driven reversing transmission mechanism and a blocking mechanism to ensure that the cathode plate is smoothly transferred to the receiving device.

Benefits of technology

The process achieved full automation in the production of manganese cathode sheets, improving production efficiency, reducing labor costs, and ensuring the continuity and efficient operation of the production line.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an electrolytic manganese tooth-shaped disc unloading device, which comprises a feeding device, the feeding device is used for conveying cathode plates, the top of the cathode plate is provided with an electrode rod assembly, a unloading device is arranged at the side of the feeding device close to the tail end, and a material collecting device is arranged at the output end of the unloading device; each cathode plate is conveyed to the unloading device through the feeding device; the unloading device and the material collecting device are arranged at the tail end of the feeding device of the cathode plate manganese flake stripping equipment; the cathode plate is transferred and carried from the feeding device to the material collecting device through the cooperation of the two slowly rotating unloading discs and the two material collecting discs to be concentrated and recycled, so that the technical problem that the cathode plates cannot be matched with the automatic mechanical production progress due to manual collection of the offline cathode plates in the transmission process is effectively solved, the manganese flake production efficiency is effectively improved, the labor cost of enterprises is reduced, and the full-automatic production and processing process of the complete cathode plate manganese flake production process is realized.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of chemical raw material manufacturing, in particular to a kind of electrolytic manganese zonal disc blanking device. BACKGROUND

[0002] Currently, the production process of electrolytic manganese involves drying and stripping of the manganese layer plated on the cathode plate of electrolytic manganese, and the stripping of the manganese layer plated on the cathode plate of electrolytic manganese is usually completed by manual knocking or mechanical or automatic hammering stripping machine or roll stripping machine.

[0003] The cathode plate coming out of the cathode plate manganese flake stripping equipment pipeline has a very high speed, and it is difficult for manual operation to process the continuously conveyed cathode plate in time, and the phenomenon of not being able to keep up often occurs, so a kind of electrolytic manganese zonal disc blanking device is needed to realize the automatic operation between the production line and the storage equipment, so as to realize the full automation of the cathode plate manganese flake stripping process, thereby further improving the production efficiency of the automatic production line. SUMMARY

[0004] The purpose of the present application is to provide a kind of electrolytic manganese zonal disc blanking device, to solve the above technical problems existing in the prior art.

[0005] In order to achieve the above purpose, the present application adopts the following technical scheme:

[0006] A kind of electrolytic manganese zonal disc blanking device, including feeding device, the feeding device is used to transport cathode plate, the top of the cathode plate is provided with electrode stem assembly, the feeding device is provided with blanking device near the end on one side, the output end of the blanking device is provided with material receiving device, each cathode plate is conveyed to the blanking device by the feeding device, and is collected by the material receiving device through the feeding device;

[0007] The blanking device includes a load-bearing frame, a mounting plate is fixedly installed on the top of the load-bearing frame, a reduction motor is fixedly installed on the top center of the mounting plate through a motor bracket, the two coaxial output ends of the reduction motor are respectively in transmission connection with the input ends of the variable direction transmission mechanism one and the variable direction transmission mechanism two, the output ends of the variable direction transmission mechanism one and the variable direction transmission mechanism two are provided with blanking discs, a plurality of material taking grooves are uniformly provided in the circumferential direction of the blanking disc, the variable direction transmission mechanism one and the variable direction transmission mechanism two are completely the same in structure, and are symmetrically arranged with the center of the mounting plate as the origin, the reduction motor drives the two blanking discs to rotate synchronously in the same direction through the variable direction transmission mechanism one and the variable direction transmission mechanism two;

[0008] The cathode plate is driven by the feeding device to be between the two discharging discs, the electrode rod assembly is clamped into the corresponding material taking grooves of the two discharging discs respectively near the two ends, the middle part of the mounting plate is provided with a material blocking mechanism, the two discharging discs drive the cathode plate to move by rotating and guide the cathode plate into the material collecting device through the material blocking mechanism for collection;

[0009] The material collecting device comprises a conveying bracket, two synchronous shafts and a driving shaft, the two synchronous shafts are both installed on the left and right sides of the front top of the conveying bracket through bearing seats, the top of the conveying bracket is respectively provided with conveying assembly one and conveying assembly two on the left and right sides along the length direction, the two synchronous shafts are power shafts of the conveying assembly one and the conveying assembly two respectively, one end adjacent to the two synchronous shafts is fixedly installed with a receiving disc, the receiving disc is uniformly provided with a receiving groove along the circumference, and the electrode rod assembly is clamped into the corresponding receiving grooves of the two receiving discs respectively near the two ends.

[0010] The feeding device comprises a mounting bracket, the mounting bracket is provided with a conveying wheel device in the middle part along the length direction, the bottom of the cathode plate is placed on the wheel group surface of the conveying wheel device for conveying, the top of the mounting bracket is provided with a guide wheel group along the length direction, the cathode plate is guided by the guide wheel group during the conveying process, and the guide wheel group at the discharging device is protruded towards the discharging device for pushing the cathode plate to the discharging device.

[0011] Further, the first rotating shaft, the second rotating shaft and the fourth rotating shaft are all fixedly installed with the mounting plate through bearing seats, one end of the first rotating shaft is fixedly installed with the output shaft of the side of the speed reducer through a shaft coupling, the first rotating shaft, the second rotating shaft and the third rotating shaft are connected through a right-angle steering gear, one end of the third rotating shaft and the fourth rotating shaft is fixedly installed with a synchronous wheel, the two synchronous wheels are connected through a synchronous belt in transmission, the discharging disc is fixedly installed on the other end of the fourth rotating shaft and located in front of the mounting plate near the feeding device.

[0012] Further, the outer part of the two synchronous wheels and the synchronous belt is covered with a protective shell, and the protective shell is fixedly installed with the mounting plate.

[0013] Further, the bottom of the conveying bracket is provided with a driving device near the front face, the driving shaft is installed on the bottom of the front face of the conveying bracket through a bearing seat, the driving device drives the driving shaft to rotate, the two ends of the driving shaft are both provided with a transmission assembly, and the driving shaft is in transmission connection with the two synchronous shafts through the two groups of transmission assemblies.

[0014] Furthermore, the feeding tray and the receiving tray rotate in the same direction, there is a gap between the feeding tray and the receiving tray on the same side, the two feeding trays are located between the two receiving trays, and the number of the picking slots and the number of the receiving slots are matched.

[0015] Furthermore, the material blocking mechanism includes a crossbar, which is fixedly installed horizontally in the middle of the mounting plate. Baffles are fixedly connected to both ends of the crossbar, and the baffles are correspondingly arranged above the material picking trough and the material receiving trough.

[0016] Furthermore, the structures of the first and second conveying components are completely identical. The first conveying component includes two follower wheels. One follower wheel is mounted on the surface of the synchronous shaft, and the other follower wheel is connected to the rear end of the conveying bracket by a bearing. The two follower wheels are connected by a conveyor belt. A support plate is provided at the bottom of the inner ring of the conveyor belt, and the support plate is fixedly installed with the conveying bracket.

[0017] Furthermore, the driving device includes a drive motor, which is fixedly installed with the transmission bracket. A drive wheel is fixedly installed at the end of the output shaft of the drive motor, and a driven wheel is fixedly installed in the middle of the drive shaft. The drive wheel and the driven wheel are connected by a transmission chain.

[0018] Furthermore, the transmission assembly includes two transmission wheels, which are respectively mounted on one end of the synchronous shaft and the drive shaft on the same side, and the two transmission wheels are connected by a transmission belt.

[0019] The beneficial effects of this invention are:

[0020] This invention addresses the technical problem of manually collecting cathode plates during the production process, which hinders the progress of automated machinery. The invention utilizes a feeding device and a receiving device at the tail end of the feeding device of a cathode plate manganese sheet stripping equipment. Through the cooperation of two slowly rotating feeding discs and two receiving discs, the cathode plates are transferred from the feeding device to the receiving device for centralized recycling. This effectively solves the technical problem of manually collecting cathode plates during the transmission process, which prevents coordination with the automated machinery's production schedule. Consequently, it significantly improves manganese sheet production efficiency, reduces labor costs, and provides a fully automated production process for complete cathode plate manganese sheet production. Attached Figure Description

[0021] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0022] Figure 2 This is a three-dimensional exploded view of the feeding device;

[0023] Figure 3 This is a three-dimensional structural diagram of the material receiving device;

[0024] Figure 4 This is a three-dimensional structural diagram of the feeding device.

[0025] Reference numerals are provided in the attached figures; where 1 is the feeding device; 11 is the geared motor; 12 is the first reversing transmission mechanism; 121 is the first rotating shaft; 122 is the right-angle steering gear; 123 is the second rotating shaft; 124 is the fourth rotating shaft; 125 is the synchronous pulley; 126 is the synchronous belt; 127 is the third rotating shaft; 128 is the protective shell; 13 is the mounting plate; 14 is the feeding tray; 141 is the material receiving chute; 15 is the load-bearing frame; 16 is the material blocking mechanism; 161 is the crossbar; 162 is the baffle; 17 is the second reversing transmission mechanism; 2 is the receiving device; 21 is the conveyor support; 2 2. Conveying Component 1; 221. Support Plate; 222. Conveyor Belt; 223. Follower Wheel; 23. Conveying Component 2; 24. Synchronous Shaft; 25. Transmission Component; 251. Transmission Wheel; 252. Transmission Belt; 26. Receiving Tray; 261. Receiving Groove; 27. Drive Shaft; 28. Drive Unit; 281. Drive Motor; 282. Drive Wheel; 283. Driven Wheel; 284. Transmission Chain; 3. Feeding Device; 31. Guide Wheel Group; 32. Conveying Wheel Device; 33. Mounting Bracket; 4. Cathode Plate; 41. Electrode Rod Assembly. Detailed Implementation

[0026] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the present invention will be briefly introduced below in conjunction with the accompanying drawings and descriptions of the embodiments or the prior art. Obviously, the following description of the structure of the accompanying drawings is only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. It should be noted that the description of these embodiments is for the purpose of helping to understand the present invention, but does not constitute a limitation of the present invention.

[0027] Example:

[0028] like Figures 1-4 As shown, this embodiment provides an electrolytic manganese toothed disc feeding device, including a feeding device 3, which is used to transport cathode plates 4. An electrode rod assembly 41 is provided on the top of the cathode plate 4. A feeding device 1 is provided on one side of the feeding device 3 near the end. A receiving device 2 is provided at the output end of the feeding device 1. Each cathode plate 4 is conveyed to the feeding device 1 through the feeding device 3 and transported to the receiving device 2 for collection through the feeding device 3.

[0029] The feeding device 1 includes a load-bearing frame 15. A mounting plate 13 is fixedly installed on the top of the load-bearing frame 15. A geared motor 11 is fixedly installed on the top center of the mounting plate 13 via a motor frame. The two coaxial output ends of the geared motor 11 are respectively connected to the input ends of the first reversing transmission mechanism 12 and the second reversing transmission mechanism 17. The output ends of the first reversing transmission mechanism 12 and the second reversing transmission mechanism 17 are each provided with a feeding plate 14. The feeding plate 14 is evenly provided with multiple material picking slots 141 along the circumferential direction. The first reversing transmission mechanism 12 and the second reversing transmission mechanism 17 have the same structure and are symmetrically arranged with the center of the mounting plate 13 as the origin. The geared motor 11 drives the two feeding plates 14 to rotate synchronously in the same direction through the first reversing transmission mechanism 12 and the second reversing transmission mechanism 17.

[0030] The cathode plate 4 is driven to the space between the two feeding trays 14 by the feeding device 3. The electrode rod assembly 41 is inserted into the corresponding picking slots 141 of the two feeding trays 14 near both ends. A baffle mechanism 16 is provided in the middle of the mounting plate 13. The two feeding trays 14 rotate to drive the cathode plate 4 to move and are guided into the collecting device 2 for collection by the baffle mechanism 16.

[0031] The feeding device 3 includes a mounting bracket 33. A conveying wheel device 32 is provided in the middle along the length direction of the mounting bracket 33. The bottom of the cathode plate 4 is placed on the wheel assembly surface of the conveying wheel device 32 for conveying. A guide wheel assembly 31 is provided at the top of the mounting bracket 33 along the length direction. The cathode plate 4 is guided by the guide wheel assembly 31 during the conveying process. The guide wheel assembly 31 at the unloading device 1 protrudes towards it to push the cathode plate 4 to the unloading device 1.

[0032] Specifically, such as Figures 1-2 As shown in Figure 4, in order to connect the manganese sheet stripping equipment production line and the cathode plate 4 storage equipment to match the feeding rate of the fully automatic production equipment, a feeding device 1 is set at the tail end of the feeding device 3.

[0033] In this device, a geared motor 11 is installed at the center of the top of the conveying bracket 21 of the feeding device 1. The geared motor 11 has two coaxial output ends. The geared motor 11 drives the first reversing transmission mechanism 12 and the second reversing transmission mechanism 17, thereby transmitting the rotational power to the two feeding discs 14 to make them rotate slowly. At the same time, each cathode plate 4 is conveyed to the feeding device 1 one by one by the friction of each wheel set of the conveying wheel device 32. The guide wheel set 31 on the top of the mounting bracket 33 pushes the cathode plate 4 towards the two feeding discs 14 through the protrusion of the guide wheel set 31 on the top of the feeding device 1. The cathode plate 4 is then inserted into the material picking groove 141 of the two feeding discs 14 by the two electrode rod assemblies on the top of the cathode plate 4. The cathode plate 4 is then disengaged from the conveying device 14 by the material picking groove 141 as the feeding discs 14 rotate. The material receiving device 3 continues to rotate through the unloading tray 14 until it falls out of the picking trough 141 at the falling cutting point. Under the guidance of the blocking mechanism 16, it falls into the receiving trough 261 of the two receiving trays 26. The receiving trays 26 continue to rotate in the same direction and are sent to the top of the first conveyor assembly 22 and the second conveyor assembly 23. The conveyor belt 222 continues to move forward through the friction between it and the electrode rod assembly 41, thus completing the fully automated production process of the cathode plate 4 being unloaded and collected. This effectively solves the technical problem in the transmission process where the cathode plate 4 is collected manually, which makes it impossible to keep up with the production progress of the automated machinery. This effectively improves the production efficiency of manganese sheets, reduces the labor costs of enterprises, and completes the fully automated production process of the cathode plate 4 manganese sheet production process.

[0034] The reversing transmission mechanism 12 includes a first rotating shaft 121, a second rotating shaft 123, a third rotating shaft 127, and a fourth rotating shaft 124. The first rotating shaft 121, the second rotating shaft 123, and the fourth rotating shaft 124 are all fixedly installed on the mounting plate 13 via bearing seats. One end of the first rotating shaft 121 is fixedly installed on the output shaft of the geared motor 11 via a coupling. The first rotating shaft 121, the second rotating shaft 123, and the third rotating shaft 127 are connected by a right-angle steering gear 122. One end of the third rotating shaft 127 and the fourth rotating shaft 124 are both fixedly installed with synchronous pulleys 125. The two synchronous pulleys 125 are connected by a synchronous belt 126. The feeding tray 14 is fixedly installed on the other end of the fourth rotating shaft 124 and is located in front of the mounting plate 13 near the feeding device 3.

[0035] The outer covers of the two synchronous pulleys 125 and the synchronous belt 126 are provided with protective housings 128, and the protective housings 128 are fixedly installed with the mounting plate 13.

[0036] Specifically, such as Figure 2As shown, in order to match the installation position of the production line equipment, it is necessary to change the transmission direction of the rotational force of the geared motor 11 through the reversing transmission mechanism 12 and the reversing transmission mechanism 17, so that the central axis of the two feeding discs 14 rotates parallel to the ground. Each axis is connected by a right-angle deflector 122 to change the direction so that the feeding discs 14 have rotational power to move the cathode plate 4 while meeting the appropriate installation position.

[0037] The receiving device 2 includes a conveying bracket 21, two synchronous shafts 24 and a drive shaft 27. The two synchronous shafts 24 are installed on the left and right sides of the top front of the conveying bracket 21 through bearing seats. The top of the conveying bracket 21 is provided with a first conveying component 22 and a second conveying component 23 on the left and right sides along the length direction. The two synchronous shafts 24 are the power shafts of the first conveying component 22 and the second conveying component 23, respectively.

[0038] A drive device 28 is provided at the bottom of the conveyor support 21 near the front. The drive shaft 27 is installed at the bottom of the front of the conveyor support 21 through a bearing seat. The drive device 28 drives the drive shaft 27 to rotate. Both ends of the drive shaft 27 are provided with transmission components 25. The drive shaft 27 is connected to two synchronous shafts 24 through two sets of transmission components 25. A receiving tray 26 is fixedly installed at one adjacent end of the two synchronous shafts 24. The receiving tray 26 has receiving grooves 261 evenly opened along the circumference. The electrode rod assembly 41 is respectively inserted into the corresponding receiving grooves 261 of the two receiving trays 26 near both ends.

[0039] The feeding tray 14 and the receiving tray 26 rotate in the same direction. There is a gap between the feeding tray 14 and the receiving tray 26 on the same side. The two feeding trays 14 are located between the two receiving trays 26. The number of feeding troughs 141 and receiving troughs 261 are matched.

[0040] The material blocking mechanism 16 includes a crossbar 161, which is fixedly installed horizontally in the middle of the mounting plate 13. Baffles 162 are fixedly connected to both ends of the crossbar 161, and the baffles 162 are respectively arranged above the material picking groove 141 and the material receiving groove 261.

[0041] The structures of conveying component 1 22 and conveying component 23 are completely identical. Conveying component 1 22 includes two follower wheels 223. One follower wheel 223 is mounted on the surface of the synchronous shaft 24, and the other follower wheel 223 is connected to the rear end of the conveying bracket 21 by a bearing. The two follower wheels 223 are connected by a conveyor belt 222. A support plate 221 is provided at the bottom of the inner ring of the conveyor belt 222. The support plate 221 is fixedly installed with the conveying bracket 21.

[0042] The drive unit 28 includes a drive motor 281, which is fixedly mounted to the transmission bracket 21. A drive wheel 282 is fixedly mounted at the end of the output shaft of the drive motor 281, and a driven wheel 283 is fixedly mounted in the middle of the drive shaft 27. The drive wheel 282 and the driven wheel 283 are connected by a transmission chain 284.

[0043] The transmission assembly 25 includes two transmission wheels 251, which are respectively mounted on one end of the synchronous shaft 24 and the drive shaft 27 on the same side. The two transmission wheels 251 are connected by a transmission belt 252.

[0044] Specifically, such as Figure 3 As shown, the receiving device 2 simultaneously drives the rotation of two receiving trays 26 and the operation of conveying components 1 and 23 through a set of drive devices 28. Since the cathode plate 4 needs to pass through the inside of the conveying bracket 21, the linkage between the left and right sides of the conveying bracket 21 cannot be achieved through horizontal shaft transmission inside the conveying bracket 21. Therefore, synchronous shafts 24 are set on both sides of the top of the front of the conveying bracket 21, and the receiving trays 26 are fixedly installed at the ends of the synchronous shafts 24. The synchronous shafts 24 are connected to the drive devices 28 through the transmission components 25 to achieve synchronous and co-rotation of the two synchronous shafts 24. Then, the two synchronous shafts 24 are used as the drive source to drive the operation of conveying components 1 and 23 respectively. Thus, through the single drive motor 281 that drives the rotation, the receiving device completes the function of catching the falling cathode plate 4 and transferring it between conveying components 1 and 23 for continued transmission to the downstream process. The structure is ingenious and reasonable, effectively reducing the equipment manufacturing cost and floor space, improving production efficiency, and facilitating maintenance and repair.

[0045] Finally, it should be noted that the above are merely preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.

Claims

1. An electrolytic manganese toothed disc feeding device, comprising a feeding device (3), the feeding device (3) being used to transport a cathode plate (4), wherein an electrode rod assembly (41) is disposed on the top of the cathode plate (4), characterized in that, A feeding device (1) is provided on one side of the feeding device (3) near the end. A receiving device (2) is provided at the output end of the feeding device (1). Each cathode plate (4) is conveyed to the feeding device (1) through the feeding device (3) and transported to the receiving device (2) for collection through the feeding device (3). The feeding device (1) includes a load-bearing frame (15), and a mounting plate (13) is fixedly installed on the top of the load-bearing frame (15). A geared motor (11) is fixedly installed at the center of the top of the mounting plate (13) via a motor frame. The two coaxial output ends of the geared motor (11) are respectively connected to the input ends of the first reversing transmission mechanism (12) and the second reversing transmission mechanism (17). The output ends of the first reversing transmission mechanism (12) and the second reversing transmission mechanism (17) are both provided with feeding trays (14). The feeding trays (14) are evenly provided with multiple material picking slots (141) along the circumferential direction. The first reversing transmission mechanism (12) and the second reversing transmission mechanism (17) have the same structure and are symmetrically arranged with the center of the mounting plate (13) as the origin. The geared motor (11) drives the two feeding trays (14) to rotate synchronously in the same direction through the first reversing transmission mechanism (12) and the second reversing transmission mechanism (17). The cathode plate (4) is driven between the two feeding trays (14) by the feeding device (3). The electrode rod assembly (41) is respectively inserted into the corresponding material picking slots (141) of the two feeding trays (14) near its two ends. A baffle mechanism (16) is provided in the middle of the mounting plate (13). The two feeding trays (14) rotate to drive the cathode plate (4) to move and are guided into the receiving device (2) by the baffle mechanism (16) for collection. The receiving device (2) includes a conveying bracket (21), two synchronous shafts (24) and a drive shaft (27). The two synchronous shafts (24) are installed on the left and right sides of the top front of the conveying bracket (21) through bearing seats. The top of the conveying bracket (21) is provided with a first conveying component (22) and a second conveying component (23) on the left and right sides along the length direction. The two synchronous shafts (24) are the power shafts of the first conveying component (22) and the second conveying component (23) respectively. Each of the two synchronous shafts (24) is fixedly installed with a receiving plate (26) at one of its adjacent ends. The receiving plate (26) is evenly provided with receiving grooves (261) along its circumference. The electrode rod assembly (41) is inserted into the receiving grooves (261) corresponding to the two receiving plates (26) near its two ends. The receiving plate (26) is rotated in the same direction and sent to the top of the first conveying assembly (22) and the second conveying assembly (23). The feeding device (3) includes a mounting bracket (33), and a conveying wheel device (32) is provided in the middle along the length direction of the mounting bracket (33). The bottom of the cathode plate (4) is placed on the wheel assembly surface of the conveying wheel device (32) for conveying. A guide wheel assembly (31) is provided at the top of the mounting bracket (33) along the length direction. The cathode plate (4) is guided by the guide wheel assembly (31) during the conveying process. The guide wheel assembly (31) at the unloading device (1) protrudes to push the cathode plate (4) toward the unloading device (1).

2. The electrolytic manganese toothed disc feeding device according to claim 1, characterized in that, The reversing transmission mechanism (12) includes a first rotating shaft (121), a second rotating shaft (123), a third rotating shaft (127), and a fourth rotating shaft (124). The first rotating shaft (121), the second rotating shaft (123), and the fourth rotating shaft (124) are all fixedly mounted to the mounting plate (13) via bearing seats. One end of the first rotating shaft (121) is fixedly mounted to the output shaft on one side of the reduction motor (11) via a coupling. The second rotating shaft (123) and the third rotating shaft (127) are connected by a right-angle steering gear (122). One end of the third rotating shaft (127) and the fourth rotating shaft (124) are fixedly installed with a synchronous pulley (125). The two synchronous pulleys (125) are connected by a synchronous belt (126). The feeding tray (14) is fixedly installed at the other end of the fourth rotating shaft (124) and is located in front of the mounting plate (13) near the feeding device (3).

3. The electrolytic manganese toothed disc feeding device according to claim 2, characterized in that, The two synchronous pulleys (125) and the synchronous belt (126) are covered with protective housings (128), which are fixedly installed with the mounting plate (13).

4. The electrolytic manganese toothed disc feeding device according to claim 2, characterized in that, A drive device (28) is provided at the bottom of the conveying bracket (21) near the front. The drive shaft (27) is mounted on the bottom of the front of the conveying bracket (21) through a bearing seat. The drive device (28) drives the drive shaft (27) to rotate. Both ends of the drive shaft (27) are provided with transmission components (25). The drive shaft (27) is connected to two synchronous shafts (24) through two sets of transmission components (25).

5. The electrolytic manganese toothed disc feeding device according to claim 4, characterized in that, The feeding tray (14) and the receiving tray (26) rotate in the same direction. There is a gap between the feeding tray (14) and the receiving tray (26) on the same side. The two feeding trays (14) are located between the two receiving trays (26). The number of the picking troughs (141) and the receiving troughs (261) are matched.

6. The electrolytic manganese toothed disc feeding device according to claim 5, characterized in that, The material blocking mechanism (16) includes a crossbar (161), which is fixedly installed horizontally in the middle of the mounting plate (13). The crossbar (161) is fixedly connected to baffles (162) near both ends. The baffles (162) are respectively arranged above the material picking groove (141) and the material receiving groove (261).

7. The electrolytic manganese toothed disc feeding device according to claim 4, characterized in that, The first transmission component (22) and the second transmission component (23) have the same structure. The first transmission component (22) includes two follower wheels (223). One follower wheel (223) is installed on the surface of the synchronous shaft (24), and the other follower wheel (223) is connected to the rear end of the transmission bracket (21) by a bearing. The two follower wheels (223) are connected by a transmission belt (222). A support plate (221) is provided at the bottom of the inner ring of the transmission belt (222). The support plate (221) is fixedly installed with the transmission bracket (21).

8. The electrolytic manganese toothed disc feeding device according to claim 7, characterized in that, The drive device (28) includes a drive motor (281), which is fixedly installed with the transmission bracket (21). A drive wheel (282) is fixedly installed at the end of the output shaft of the drive motor (281), and a driven wheel (283) is fixedly installed in the middle of the drive shaft (27). The drive wheel (282) and the driven wheel (283) are connected by a transmission chain (284).

9. The electrolytic manganese toothed disc feeding device according to claim 8, characterized in that, The transmission assembly (25) includes two transmission wheels (251), which are respectively installed on one end of the synchronous shaft (24) and the drive shaft (27) on the same side. The two transmission wheels (251) are connected by a transmission belt (252).

Citation Information

Patent Citations

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