Processing and impurity removing device for metal smelting rolled products
By designing a cleaning component, a shaking component, and a disassembly component to remove impurities, the problem of impurity accumulation on the surface of the electromagnetic plate was solved, improving the impurity removal efficiency and equipment stability of metal smelting and rolling products, and extending the service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-17
- Publication Date
- 2026-03-10
AI Technical Summary
In the process of removing impurities from raw materials of metal smelting and rolling products using magnetic separation, the long-term accumulation of impurities on the surface of the electromagnetic plate leads to wear and corrosion, affecting its electromagnetic performance. Furthermore, the impurities form a thick layer on the surface of the electromagnetic plate, reducing the impurity removal effect.
A processing and impurity removal device for rolled metal products was designed, comprising a cleaning component, a shaking component, a discharge component, and a disassembly component. By incorporating gears, a gear ring, a movable shaft, and a cleaning brush, non-magnetic substances and residues on the surface of the electromagnetic plate are removed, reducing the impurity layer on the electromagnetic plate surface and improving the adsorption efficiency of magnetic impurities. The shaking component ensures uniform distribution of raw materials, improving impurity removal efficiency. The discharge component simplifies the material handling process. The disassembly component facilitates periodic replacement of the electromagnetic plate, extending the equipment's service life.
It effectively removes impurities from the surface of the electromagnetic plate, improves the magnetic adsorption capacity of the electromagnetic plate, enhances the stability and reliability of the equipment, maintains the continuous operation of the production line, and improves the impurity removal efficiency and the service life of the equipment.
Smart Images

Figure CN223980593U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of metal smelting, specifically a processing and impurity removal device for rolled metal products. Background Technology
[0002] Metal smelting and rolling products are metal products of different shapes and specifications, such as plates, pipes, strips, wires, and bars, made from metal raw materials (such as non-ferrous metals like aluminum, copper, zinc, and magnesium, as well as ferrous metals like steel) through smelting, refining, and other pretreatment processes, followed by processing techniques such as rolling, stretching, and pressing.
[0003] If impurities are added to the metal raw materials, it will have a significant impact on the quality and performance of the produced metal smelting rolled products. Therefore, magnetic separation is used to remove impurities from the metal raw materials when producing metal smelting rolled products.
[0004] Through long-term use and observation, it was found that during the process of removing impurities from raw materials of metal smelting and rolling products using magnetic separation, the long-term accumulation of impurities on the electromagnetic plate would cause wear or corrosion on its surface, thereby affecting its electromagnetic performance.
[0005] Therefore, this utility model provides a processing and impurity removal device for metal smelting and rolling products. Utility Model Content
[0006] To overcome the shortcomings of the prior art and solve at least one of the problems mentioned in the background art, a processing and impurity removal device for metal smelting and rolling products is proposed.
[0007] The technical solution adopted by this utility model to solve its technical problem is as follows: A processing and impurity removal device for metal smelting and rolling products, comprising a processing cylinder, a cylinder cover installed on the top side wall of the processing cylinder, a cleaning component provided in the middle of the inner side wall of the cylinder cover, an electromagnetic plate slidably fitted in the middle of the inner side wall of the processing cylinder, a disassembly and assembly component provided on the top side wall of the electromagnetic plate, a first motor mounted on the top side wall of the cylinder cover, a stirring shaft fixedly connected to the output end of the first motor, multiple stirring rods fixed in the middle of the side wall of the stirring shaft, the stirring rods being located inside the processing cylinder, a shaking component provided on the outer side wall of the processing cylinder, a discharge component provided on the bottom inner side wall of the processing cylinder, the cleaning component including multiple limiting rods, a first gear threadedly connected to the other end of each limiting rod, a gear ring mounted on the top side wall of the cylinder cover, the first gear and the gear ring meshing, and a second gear mounted in the middle of the side wall of the stirring shaft. The second gear is rotatably connected to the top of the cylinder cover. The second gear meshes with the first gear. A movable shaft is fixed to the bottom side wall of the first gear. Multiple first slots are opened on the top side wall of the processing cylinder. The first slots and the movable shaft are correspondingly arranged. The movable shaft rotates inside the first slot. Multiple cleaning brushes are fixed to the middle of the side wall of the movable shaft. The cleaning brushes are made of elastic material. This step, by setting up the first gear, gear ring, second gear, movable shaft, first slots, and cleaning brushes, can remove non-magnetic substances and residues attached to the surface of the electromagnetic plate, so that the electromagnetic plate can fully exert its magnetism and more effectively adsorb ferromagnetic impurities. At the same time, this setting can reduce the thick impurity layer formed by the long-term accumulation of impurities on the surface of the electromagnetic plate, thereby reducing the impact of the electromagnetic plate on the magnetic separation effect of impurities in the mixed raw materials of metal smelting and rolling, improving the stability and reliability of the equipment, and maintaining the continuous operation of the production line.
[0008] Preferably, the shaking assembly includes a base plate located below the processing cylinder. A first vertical plate is fixedly connected to the top side wall of the base plate, and a second vertical plate is also fixedly connected to the top side wall of the base plate. The second vertical plate and the first vertical plate are correspondingly arranged. A movable disk is rotatably connected to the middle of the side wall of the second vertical plate. A second motor is mounted in the middle of the side wall of the first vertical plate. A fixed seat is fixedly connected to both the output end of the second motor and the middle of the side wall of the movable disk. A first telescopic rod is mounted at the other end of the fixed seat. Clamping plates are fixed on both sides of the first telescopic rod. This step, by setting the fixed seat, the first telescopic rod, and the clamping plates, allows the mixed raw material to be removed to be more evenly distributed in the processing cylinder, giving each particle a chance to fully contact the electromagnetic plate, increasing the probability of magnetic impurities being adsorbed, thereby improving the removal efficiency. Furthermore, shaking the processing cylinder can promote the flow of the mixed raw material in the processing cylinder, preventing the raw material from accumulating or stagnating in a certain area, which helps to maintain the continuity and stability of the magnetic separation process.
[0009] Preferably, the discharge assembly includes a bottom cover that is slidably fitted to the bottom of the processing cylinder. Multiple limiting blocks are fixed to the middle of the side wall of the bottom cover. Multiple first channels are formed in the middle of the inner side wall of the processing cylinder, with the first channels corresponding to the limiting blocks. A second channel is formed in the middle of the inner side wall of the processing cylinder, with the second channel corresponding to the limiting blocks. The second channel communicates with the first channel. This step of setting the bottom cover, limiting blocks, first channels, and second channels, compared to a traditional fixed bottom cover, eliminates the need for operators to laboriously disassemble or move the entire device; they can simply rotate the bottom cover to open it, thus facilitating the removal of the impurity-removed mixed raw materials.
[0010] Preferably, the disassembly and assembly assembly includes multiple second slots, all of which are located on the top of the electromagnetic plate. A rebound device is installed on the inner sidewall of the bottom of each second slot, and multiple second telescopic rods are fixed to the inner sidewall of the bottom of each second slot. A pull rod is fixed to the other end of each second telescopic rod, and the pull rod is correspondingly arranged with the second slot. This step, by setting the second slots, rebound devices, second telescopic rods, and pull rods, allows the electromagnetic plate to be replaced periodically, ensuring that the magnetic separator always maintains a good working condition. This reduces the reduction in impurity removal efficiency caused by wear, aging, or deterioration of magnetic properties of the electromagnetic plate, and extends the service life of the magnetic separator.
[0011] Preferably, a wiping cloth is fixed between adjacent cleaning brushes. The wiping cloth is made of elastic material. This step, by setting the wiping cloth between adjacent cleaning brushes, can effectively adsorb the impurities remaining on the electromagnetic plate. When the cleaning brush and the wiping cloth are used in combination, the cleaning brush can brush away the loose impurities on the surface of the electromagnetic plate, while the wiping cloth can further wipe away the stubborn impurities attached to the electromagnetic plate, thereby significantly improving the cleaning effect.
[0012] Preferably, an anti-slip pad is fixed to the middle of the side wall of the clamping plate. The anti-slip pad is made of elastic material. This step of setting the anti-slip pad can increase the friction between the clamping plate and the processing cylinder, thereby preventing the processing cylinder from sliding or shifting during the clamping process, which helps to improve the stability and accuracy of clamping.
[0013] Preferably, the bottom side wall of the bottom cover is equipped with a handle, which is located below the processing cylinder. This step provides a direct gripping point by setting the handle, allowing the operator to easily rotate the bottom cover.
[0014] The beneficial effects of this utility model are as follows:
[0015] 1. The present invention discloses a processing and impurity removal device for metal smelting and rolling products. By setting a first gear, a gear ring, a second gear, a movable shaft, a first groove, and a cleaning brush, it can remove non-magnetic substances and residues adhering to the surface of an electromagnetic plate, enabling the electromagnetic plate to fully exert its magnetism and more effectively adsorb ferromagnetic impurities. At the same time, this setting can reduce the thick impurity layer formed by the long-term accumulation of impurities on the surface of the electromagnetic plate, thereby reducing the impact of the electromagnetic plate on the magnetic separation effect of impurities in the mixed raw materials of metal smelting and rolling products, improving the stability and reliability of the equipment, and maintaining the continuous operation of the production line.
[0016] 2. The metal smelting and rolling product processing and impurity removal device of this utility model, by setting a fixed base, a first telescopic rod and a clamping plate, can make the mixed raw materials to be removed more evenly distributed in the processing cylinder, so that each particle has the opportunity to fully contact the electromagnetic plate, increasing the probability of magnetic impurities being adsorbed, thereby improving the impurity removal efficiency. Moreover, shaking the processing cylinder can promote the flow of mixed raw materials in the processing cylinder, prevent the raw materials from accumulating or stagnating in a certain area, and help maintain the continuity and stability of the magnetic separation process. Attached Figure Description
[0017] The present invention will be further described below with reference to the accompanying drawings.
[0018] Figure 1 This is a perspective view of the present invention;
[0019] Figure 2 This is a schematic diagram of the mating structure of the bottom plate and the processing cylinder in this utility model;
[0020] Figure 3 This is a schematic diagram of the cooperative structure of the electromagnetic plate and the cleaning brush in this utility model;
[0021] Figure 4 This is a schematic diagram of the cooperation structure between the clamping plate and the anti-slip pad in this utility model;
[0022] Figure 5 yes Figure 3 Enlarged view of a portion of point A in the middle.
[0023] Legend:
[0024] 1. Processing cylinder; 11. Cylinder cover; 12. Electromagnetic plate; 13. First motor; 14. Stirring shaft; 15. Stirring rod; 2. Limiting rod; 21. First gear; 22. Gear ring; 23. Second gear; 24. Movable shaft; 25. First slot; 26. Cleaning brush; 3. Base plate; 31. First upright plate; 32. Second upright plate; 33. Movable disc; 34. Second motor; 35. Fixed base; 36. First telescopic rod; 37. Clamping plate; 4. Bottom cover; 41. Limiting block; 42. First channel; 43. Second channel; 5. Second slot; 51. Rebound device; 52. Second telescopic rod; 53. Pull rod; 6. Wiping cloth; 7. Anti-slip mat; 8. Handle. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0026] Specific implementation examples are given below.
[0027] like Figures 1 to 3As shown in the figure, a processing and impurity removal device for metal smelting and rolling products according to an embodiment of the present invention includes a processing cylinder 1. A cylinder cover 11 is installed on the top side wall of the processing cylinder 1. A cleaning component is provided in the middle of the inner side wall of the cylinder cover 11. An electromagnetic plate 12 is slidably fitted in the middle of the inner side wall of the processing cylinder 1. A disassembly and assembly component is provided on the top side wall of the electromagnetic plate 12. A first motor 13 is assembled on the top side wall of the cylinder cover 11. A stirring shaft 14 is fixedly connected to the output end of the first motor 13. Multiple stirring rods 15 are fixed in the middle of the side wall of the stirring shaft 14. The stirring rods 15 are located inside the processing cylinder 1. A shaking component is provided on the outer side wall of the processing cylinder 1. A discharge component is provided on the bottom inner side wall of the processing cylinder 1. During operation, the operator fixes the processing cylinder 1 between the shaking components, then opens the cylinder cover 11, pours the mixed raw material to be impurity removed into the processing cylinder 1, and then starts the first motor 13. 13 drives the stirring shaft 14 to rotate. When the stirring shaft 14 rotates, it drives multiple stirring rods 15 to rotate synchronously, so that the multiple stirring rods 15 continuously stir the mixed raw materials inside the processing cylinder 1. At this time, the processing personnel turn on the electromagnetic plate 12. The electromagnetic plate 12 will attract the ferromagnetic impurities in the mixed raw materials. After the impurity removal operation is completed, the processing personnel open the discharge component and take out the mixed raw materials after impurity removal. Then, the power supply to the electromagnetic plate 12 is turned off. At this time, the ferromagnetic impurities attracted to the surface of the electromagnetic plate 12 will fall to the outside of the processing cylinder 1 due to the loss of attraction. Then, the processing personnel use the cleaning component to clean the surface of the electromagnetic plate 12 and remove the impurities remaining on it. When the electromagnetic plate 12 can no longer attract ferromagnetic impurities due to overuse, the processing personnel use the disassembly and assembly component to remove it from the inside of the processing cylinder 1 and replace it.
[0028] like Figures 1 to 3As shown, the cleaning assembly includes multiple limiting rods 2, with a first gear 21 threadedly connected to the other end of each limiting rod 2. A gear ring 22 is fitted onto the top side wall of the cylinder cover 11, and the first gear 21 and the gear ring 22 are meshed together. A second gear 23 is fitted onto the middle of the side wall of the stirring shaft 14, and the second gear 23 is rotatably connected to the top of the cylinder cover 11, meshing with the first gear 21. A movable shaft 24 is fixed to the bottom side wall of the first gear 21. Multiple first slots 25 are opened on the top side wall of the processing cylinder 1, and the first slots 25 are correspondingly arranged with the movable shaft 24. The movable shaft 24 rotates inside the first slots 25. Multiple cleaning brushes 26 are fixed to the middle of the side wall of the movable shaft 24. The cleaning brushes 26 are made of elastic material. During operation, the operator removes the multiple first gears 21 from the bottom of the limiting rods 2 and meshes them between the gear ring 22 and the second gear 23. Then, the first motor 13 is started, which drives the second gear 23 to rotate. When rotating, multiple first gears 21 will rotate. At this time, the first gears 21 will rotate around the gear ring 22 and the second gear 23 under the drive of the gear ring 22. At this time, the movable shaft 24 fixed to the bottom of the first gear 21 will rotate with the cleaning brush 26 inside the processing cylinder 1. At this time, multiple cleaning brushes 26 will clean the surface of the electromagnetic plate 12 in contact with it under the action of revolution and rotation. This step, by setting the first gear 21, gear ring 22, second gear 23, movable shaft 24, first slot 25 and cleaning brushes 26, can remove non-magnetic substances and residues attached to the surface of the electromagnetic plate 12, so that the electromagnetic plate 12 can give full play to its magnetism and more effectively adsorb ferromagnetic impurities. At the same time, this setting can reduce the thick impurity layer formed by the long-term accumulation of impurities on the surface of the electromagnetic plate 12, thereby reducing the impact of the electromagnetic plate 12 on the magnetic separation effect of impurities in the mixed raw materials of metal smelting and rolling, improving the stability and reliability of the equipment, and maintaining the continuous operation of the production line.
[0029] like Figure 1 and Figure 4As shown, the shaking assembly includes a base plate 3, which is located below the processing cylinder 1. A first vertical plate 31 is fixedly connected to the top side wall of the base plate 3, and a second vertical plate 32 is also fixedly connected to the top side wall of the base plate 3. The second vertical plate 32 and the first vertical plate 31 are correspondingly arranged. A movable disk 33 is rotatably connected to the middle of the side wall of the second vertical plate 32. A second motor 34 is assembled in the middle of the side wall of the first vertical plate 31. A fixed seat 35 is fixedly connected to both the output end of the second motor 34 and the middle of the side wall of the movable disk 33. A first telescopic rod 36 is assembled at the other end of the fixed seat 35. Clamping plates 37 are fixed on both sides of the first telescopic rod 36. During operation, the operator first fixes the processing cylinder 1 between multiple clamping plates 37. During the process of pouring the mixed raw material to be removed into the processing cylinder 1 for magnetic separation... The second motor 34 is started, which drives the fixed base 35 to rotate. When the fixed base 35 rotates, it drives the first telescopic rod 36 and the clamping plate 37 to rotate synchronously. At this time, the processing cylinder 1, which is fixed inside the clamping plate 37, will swing with the rotation of the clamping plate 37. This step, by setting the fixed base 35, the first telescopic rod 36 and the clamping plate 37, can make the mixed raw material to be removed more evenly distributed in the processing cylinder 1, so that each particle has the opportunity to fully contact the electromagnetic plate 12, increasing the probability of magnetic impurities being adsorbed, thereby improving the removal efficiency. Moreover, shaking the processing cylinder 1 can promote the flow of the mixed raw material in the processing cylinder 1, prevent the raw material from accumulating or stagnating in a certain area, and help maintain the continuity and stability of the magnetic separation process.
[0030] like Figure 2 As shown, the discharge assembly includes a bottom cover 4, which is slidably fitted onto the bottom of the processing cylinder 1. Multiple limiting blocks 41 are fixed to the middle of the side wall of the bottom cover 4. Multiple first channels 42 are formed in the middle of the inner side wall of the processing cylinder 1, with the first channels 42 corresponding to the limiting blocks 41. A second channel 43 is formed in the middle of the inner side wall of the processing cylinder 1, with the second channel 43 corresponding to the limiting blocks 41. The second channel 43 communicates with the first channels 42. After the impurity removal operation is completed, the operator rotates the bottom cover 4, causing the multiple limiting blocks 41 to slide along the second channel 43. When the limiting block 41 enters the first channel 42, the bottom cover 4 is pulled outward. At this time, the limiting block 41 will slide along the first channel 42 and the bottom cover 4 will be removed from the bottom of the processing cylinder 1. Then the processing personnel can take out the mixed raw materials in the processing cylinder 1. This step sets the bottom cover 4, the limiting block 41, the first channel 42 and the second channel 43. Compared with the traditional fixed bottom cover 4, the processing personnel do not need to disassemble or move the entire equipment with great effort. They can simply rotate the bottom cover 4 to open it, so as to conveniently take out the mixed raw materials after impurity removal.
[0031] like Figure 3 and Figure 5As shown, the disassembly and assembly assembly includes multiple second slots 5, all of which are located on the top of the electromagnetic plate 12. A rebounder 51 is mounted on the inner bottom wall of each second slot 5, and multiple second telescopic rods 52 are fixed to the inner bottom wall of each second slot 5. A pull rod 53 is fixed to the other end of each second telescopic rod 52. The pull rod 53 is correspondingly positioned to the second slot 5. When the electromagnetic plate 12 can no longer adsorb ferromagnetic impurities due to overuse, the operator opens the cylinder cover 11 and presses down on the pull rod 53. Under the action of the rebounder 51, the rebounder 51 pushes the pull rod 53 out of the second slot 5. At this time, the operator pulls the pull rod 53 to remove the electromagnetic plate 12 from the processing cylinder 1 and replaces it with a new electromagnetic plate 12. This step, by setting up the second slots 5, rebounder 51, second telescopic rods 52, and pull rods 53, allows for the periodic replacement of the electromagnetic plate 12, ensuring the magnetic separator always maintains a good working condition, reducing the reduction in impurity removal efficiency due to wear, aging, or decreased magnetic properties of the electromagnetic plate 12, and extending the service life of the magnetic separator.
[0032] like Figure 2 and Figure 3 As shown, a wiping cloth 6 is fixed between adjacent cleaning brushes 26. The wiping cloth 6 is made of elastic material. By setting the wiping cloth 6 between adjacent cleaning brushes 26, this step can effectively absorb the impurities remaining on the electromagnetic plate 12. When the cleaning brushes 26 and the wiping cloth 6 are used together, the cleaning brushes 26 can brush away the loose impurities on the surface of the electromagnetic plate 12, while the wiping cloth 6 can further wipe away the stubborn impurities attached to the electromagnetic plate 12, thereby significantly improving the cleaning effect.
[0033] like Figure 1 and Figure 4 As shown, an anti-slip pad 7 is fixed to the middle of the side wall of the clamping plate 37. The anti-slip pad 7 is made of elastic material. This step can increase the friction between the clamping plate 37 and the processing cylinder 1 by setting the anti-slip pad 7, thereby preventing the processing cylinder 1 from sliding or shifting during the clamping process, which helps to improve the stability and accuracy of the clamping.
[0034] like Figure 2 As shown, a handle 8 is fitted on the bottom side wall of the bottom cover 4. The handle 8 is located below the processing cylinder 1. This step provides a direct gripping point by setting the handle 8, allowing the operator to easily rotate the bottom cover 4.
[0035] Working principle: The operator fixes the processing cylinder 1 between the shaking components, then opens the cylinder cover 11 and pours the mixed raw material to be cleaned into the processing cylinder 1. The first motor 13 is then started, which drives the stirring shaft 14 to rotate. The rotation of the stirring shaft 14 drives multiple stirring rods 15 to rotate synchronously, causing the stirring rods 15 to continuously stir the mixed raw material inside the processing cylinder 1. At this time, the operator connects the electromagnetic plate 12, which attracts ferromagnetic impurities in the mixed raw material. After the cleanup operation is completed, the operator opens the discharge component to remove the cleaned mixed raw material, and then disconnects the power supply to the electromagnetic plate 12. The ferromagnetic impurities attracted to the surface of the electromagnetic plate 12 are then removed. Impurities will fall outside the processing cylinder 1 due to loss of adsorption. Then, the operator uses a cleaning assembly to clean the surface of the electromagnetic plate 12, removing any remaining impurities. When the electromagnetic plate 12 can no longer adsorb ferromagnetic impurities due to overuse, the operator uses a disassembly assembly to remove it from the processing cylinder 1 and replace it. The operator removes multiple first gears 21 from the bottom of the limiting rod 2 and meshes them between the gear ring 22 and the second gear 23. Then, the first motor 13 is started, which drives the second gear 23 to rotate. The rotation of the second gear 23 drives the multiple first gears 21 to rotate. At this time, the first gears 21 rotate around the gear ring 22 under its influence. As the second gear 23 rotates, the movable shaft 24 fixed to the bottom of the first gear 21 rotates, carrying the cleaning brush 26 inside the processing cylinder 1. Multiple cleaning brushes 26 clean the surface of the electromagnetic plate 12 they contact under the action of revolution and rotation. The processing operator has previously fixed the processing cylinder 1 between multiple clamping plates 37. During the magnetic separation process of pouring the mixed raw material to be removed into the processing cylinder 1, the second motor 34 is started. The second motor 34 drives the fixed base 35 to rotate. When the fixed base 35 rotates, it drives the first telescopic rod 36 and the clamping plates 37 to rotate synchronously. At this time, the processing cylinder 1, fixed inside the clamping plates 37, will sway with the rotation of the clamping plates 37. After the impurity removal operation is completed, the... The worker rotates the bottom cover 4, causing multiple limiting blocks 41 to slide along the second channel 43. When the limiting blocks 41 enter the first channel 42, the bottom cover 4 is pulled outward. At this time, the limiting blocks 41 will slide along the first channel 42, and the bottom cover 4 will be removed from the bottom of the processing cylinder 1. Then the worker can take out the mixed raw materials in the processing cylinder 1. When the electromagnetic plate 12 can no longer adsorb impurities containing ferromagnetism due to overuse, the worker opens the cylinder cover 11 and presses down the pull rod 53. Under the action of the rebound device 51, the rebound device 51 will push the pull rod 53 out of the second slot 5. At this time, the worker pulls the pull rod 53 to remove the electromagnetic plate 12 from the processing cylinder 1 and replace it with a new electromagnetic plate 12.
[0036] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A device for the removal of impurities from a metal smelting rolled product, comprising a treatment cylinder (1), characterized in that: The processing cylinder (1) top side wall is provided with a cylinder cover (11), the inner side wall middle part of the cylinder cover (11) is provided with a cleaning assembly, the inner side wall middle part of the processing cylinder (1) is provided with a electromagnetic plate (12), the top side wall of the electromagnetic plate (12) is provided with a disassembly assembly, the top side wall of the cylinder cover (11) is equipped with a first motor (13), the output end of the first motor (13) is fixedly connected with a stirring shaft (14), the middle part of the side wall of the stirring shaft (14) is fixedly connected with a plurality of stirring rods (15), the stirring rods (15) are arranged in the processing cylinder (1), the outer side wall of the processing cylinder (1) is provided with a shaking assembly, the bottom inner side wall of the processing cylinder (1) is provided with a discharge assembly.
2. A device for removing impurities from a metal smelting rolled product according to claim 1, characterized in that: The cleaning assembly comprises a plurality of limiting rods (2), one end of the limiting rod (2) is fixedly connected with a first gear (21), the top side wall of the cylinder cover (11) is equipped with a gear ring (22), the first gear (21) and the gear ring (22) are meshed, the middle part of the side wall of the stirring shaft (14) is equipped with a second gear (23), the second gear (23) is rotatably connected to the top of the cylinder cover (11), the second gear (23) and the first gear (21) are meshed, the bottom side wall of the first gear (21) is fixedly connected with a movable shaft (24), a plurality of first notches (25) are formed in the top side wall of the processing cylinder (1), the first notches (25) and the movable shaft (24) are correspondingly arranged, the movable shaft (24) rotates in the first notches (25), a plurality of cleaning brushes (26) are fixedly connected to the middle part of the side wall of the movable shaft (24), and the cleaning brushes (26) are made of elastic material.
3. A device for removing impurities from a metal smelting rolled product according to claim 1, characterized in that: The shaking assembly comprises a bottom plate (3), the bottom plate (3) is arranged below the processing cylinder (1), the top side wall of the bottom plate (3) is fixedly connected with a first vertical plate (31), the top side wall of the bottom plate (3) is fixedly connected with a second vertical plate (32), the second vertical plate (32) and the first vertical plate (31) are correspondingly arranged, the middle part of the side wall of the second vertical plate (32) is rotatably connected with a movable disc (33), the middle part of the side wall of the first vertical plate (31) is equipped with a second motor (34), the output end of the second motor (34) and the middle part of the side wall of the movable disc (33) are fixedly connected with a fixing seat (35), the other end of the fixing seat (35) is equipped with a first telescopic rod (36), the two sides of the first telescopic rod (36) are fixedly connected with clamping plates (37).
4. The apparatus for removing impurities from a metal smelted rolled product according to claim 1, wherein: The discharge assembly comprises a bottom cover (4), the bottom cover (4) is slidably connected to the bottom of the processing cylinder (1), a plurality of limiting blocks (41) are fixedly connected to the middle part of the side wall of the bottom cover (4), a plurality of first grooves (42) are formed in the middle part of the inner side wall of the processing cylinder (1), the first grooves (42) and the limiting blocks (41) are correspondingly arranged, a second groove (43) is formed in the middle part of the inner side wall of the processing cylinder (1), the second groove (43) and the limiting blocks (41) are correspondingly arranged, and the second groove (43) and the first groove (42) are communicated.
5. The apparatus for removing impurities from a metal smelted rolled product according to claim 1, wherein: The disassembling and assembling component comprises a plurality of second notches (5), the plurality of second notches (5) are arranged on the top of the electromagnetic plate (12), the inner side wall of the bottom of the second notch (5) is equipped with a rebounder (51), a plurality of second telescopic rods (52) are fixedly connected to the inner side wall of the bottom of the second notch (5), the other end of the second telescopic rod (52) is fixedly connected with a pull rod (53), and the pull rod (53) is correspondingly arranged with the second notch (5).
6. A device for removing impurities from a metal smelting rolled product according to claim 2, characterized in that: The adjacent cleaning brushes (26) are fixedly connected with wiping cloths (6), and the wiping cloths (6) are made of elastic material.
7. The apparatus for removing impurities from a metal smelting rolled product according to claim 3, wherein: The middle part of the side wall of the clamping plate (37) is fixedly connected with a non-slip pad (7), and the non-slip pad (7) is made of elastic material.
8. A device for removing impurities from a metal smelting rolled product according to claim 4, characterized in that: The bottom side wall of the bottom cover (4) is equipped with a handle (8), and the handle (8) is arranged below the processing cylinder (1).