Electromagnetic conveyor belt convenient for magnetic separation
By setting up structures such as vortex rods, first turbines, first screws and fixed rods in the electromagnetic conveyor belt, the problem of poor magnetic separation effect of ferromagnetic conveyor belts in the prior art is solved, and a better magnetic separation effect is achieved.
Patent Information
- Application Number
- CN202421900271.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-08-07
AI Technical Summary
In the prior art, the distance between the ferromagnetic conveyor belt and the quartz sand conveyor belt is too large, resulting in poor magnetic separation effect of the ferromagnetic conveyor belt.
An electromagnetic conveyor belt is designed for easy magnetic separation. By setting up structures such as vortex rods, first turbines, first screws and fixed rods, the rotation and movement of the conveyor belt are realized, and the magnetic separation effect is enhanced.
Through this design, the magnetic separation effect of the ferromagnetic conveyor belt is significantly improved, and the problem of poor magnetic separation effect caused by excessive distance is solved.
Smart Images

Figure CN222934563U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of conveyor belts, in particular to an electromagnetic conveyor belt convenient for magnetic separation. Background Art
[0002] The whole device is trapezoidal. Under the flushing of water flow, non-magnetic minerals are washed out from the low end of the material, and magnetic substances are adsorbed on the belt by a magnetic plate. The magnetic substances are transported to the demagnetization area at the high end of the device through the lifting of the belt, and the magnetic substances are separated from the device by a demagnetization device.
[0003] The existing patent CN209772400U discloses a quartz sand transfer magnetic separation device based on a conveyor belt. A first motor for driving the first conveyor belt and the second conveyor belt to rotate is arranged on a frame. The first motor drives the first conveyor belt and the second conveyor belt to rotate clockwise. The gap between the strip magnets at the bottom of the first conveyor belt and the second conveyor belt is set according to the thickness of the quartz sand during transportation. Therefore, the first conveyor belt and the second conveyor belt do not contact each other and operate stably. An activity baffle extending upward to the rear of a brush roller is arranged on a material receiving box, and a C-shaped guide rail for limiting both sides of the activity baffle is arranged on the material receiving box. The activity baffle avoids the problem of magnetic minerals being thrown backward, and the activity baffle can be pulled out upward, which is convenient for centralized cleaning of magnetic minerals in the material receiving box.
[0004] Materials are transported through a conveyor belt. During transportation, iron materials in the materials are transported away by a ferromagnetic conveyor belt. However, due to the excessive gap between the two conveyor belts, the effect of the ferromagnetic conveyor belt is too poor. Content of the Utility Model
[0005] The purpose of the utility model is to provide an electromagnetic conveyor belt convenient for magnetic separation in order to solve the problem of the distance between the two conveyor belts.
[0006] To achieve the above purpose, the utility model provides the following technical solution: An electromagnetic conveyor belt convenient for magnetic separation, including a ferromagnetic conveyor belt and support legs. One side inside the ferromagnetic conveyor belt is provided with a first roller, and the other side inside the ferromagnetic conveyor belt is provided with a second roller. The second roller drives the first roller to rotate through the ferromagnetic conveyor belt. A first fixing rod is fixed on one side of the second roller, and the first fixing rod drives the second roller to rotate.
[0007] As a further solution of the present utility model: a third groove is fixed on one side of the support leg, a worm is arranged inside the third groove, a first handle is fixed on one side of the worm, the first handle drives the worm to rotate, the outer surface of the worm is meshed with a first turbine, the worm drives the first turbine to rotate, and the first turbine is located inside the support leg. A first rotating shaft is fixed at the bottom of the first turbine, a first cylinder is fixed at the bottom of the first rotating shaft, and the first rotating shaft prevents the first cylinder from rotating when the first turbine rotates. A first lead screw is meshed inside the first turbine, the first turbine drives the first lead screw to move, a first fixing block is fixed at the top of the first lead screw, the first fixing block drives the first fixing block to move when the first lead screw moves. One end of the first fixing block is fixed with a second fixing rod, one end of the second fixing rod is fixed with a base, and the first fixing block drives the base to move through the second fixing rod when moving. A motor is installed on the top of the base, and a first fixing rod is fixed at the output end of the motor, and the motor drives the first fixing rod to rotate.
[0008] As a further solution of the present utility model: the outer surface of the worm is meshed with a second turbine, the worm drives the second turbine to rotate, and the second turbine is located on one side of the first turbine. A second rotating shaft is fixed at the bottom of the second turbine, and the second rotating shaft is located inside a group of support legs. A second cylinder is fixed at the bottom of the second rotating shaft, and the second rotating shaft prevents the second cylinder from rotating when the second turbine rotates. A second lead screw is meshed inside the second turbine, and the second lead screw is driven to move when the second turbine rotates. A second fixing block is fixed at the top of the second lead screw, and the second fixing block is driven to move when the second lead screw moves. One end of the second fixing block is fixed with a third fixing rod, and the third fixing rod is located at one end of the first roller.
[0009] As a further solution of the present utility model: a fixing plate is fixed on one side of the support leg, and the support leg is used for overall support. A first groove is fixed on one side of one end of the fixing plate, and the first groove is used to protect the second handle. A second groove is fixed on the other side of one end of the fixing plate, and the second groove is used to protect the fourth fixing rod.
[0010] As a further solution of the present utility model: a first gear is arranged inside the first groove, a second handle is fixed at one end of the first gear, the second handle drives the first gear to rotate, a fourth groove is fixed on the outer surface of the second handle, the outer surface of the first gear is meshed with a second gear, the first gear drives the second gear to rotate, a second fixing column is fixed at one end of the second gear, a scraper is fixed at one end of the second fixing column, and the second gear drives the scraper to rotate through the second fixing column, and the scraper is located at the bottom of the ferromagnetic conveyor belt.
[0011] As a further solution of the present utility model: A second spring is fixed to the bottom inside the second handle. One end of the second spring is fixed with a first fixing column. When the first fixing column moves, it squeezes the second spring. A first spring is fixed to the outer surface of the first fixing column. When the first fixing column moves, it drives the first spring to move. The top of the first spring is fixed with a clamping block. When the first spring moves, it drives the clamping block to move. A fixing plate is fixed to the bottom of the second handle. One end of the fixing plate is fixed with multiple groups of third springs, and the fixing plate fixes the third springs.
[0012] As a further solution of the present utility model: One end of the third spring is fixed with a circular ring. The third spring pulls the circular ring. One side of the circular ring is fixed with a third fixing block. One end of the third fixing block is fixed with a fourth fixing rod. The fourth fixing rod pulls the circular ring through the third fixing block, and the fourth fixing rod is located inside the second groove. A clamping groove is fixed to the inner wall of the fixing plate.
[0013] Compared with the prior art, the beneficial effects of the present utility model are:
[0014] 1. By setting a worm, when the worm rotates, it drives the first turbine to rotate. When the first turbine rotates, it drives the first lead screw to move up and down through meshing. When the first lead screw moves, it drives the first fixing block to move. When the first fixing block moves, it drives the second fixing rod to move. When the second fixing rod moves, it drives the base to move. When the base moves, it drives the motor to move. When the motor moves, it drives the first fixing rod to move. When the first fixing rod moves, it drives the second roller to move. When the second roller moves, it drives the ferromagnetic conveyor belt to move;
[0015] 2. By setting the first fixing column, when the first fixing column moves, it drives the first spring to move. When the first spring moves, it drives the clamping block to move. When the clamping block moves, it is squeezed by the inner wall of the fixing plate. When the clamping block moves to the clamping groove, the first spring pushes the clamping block out of the clamping groove. When the clamping block is pushed, the clamping groove fixes it. When the clamping block is fixed, the fixing of the second handle is completed. When the second handle is fixed, the fixing of the scraper 31 is driven. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0017] Figure 2 is a schematic diagram of the internal structure of the support leg of the present utility model;
[0018] Figure 3 is a schematic diagram of the scraper structure of the present utility model;
[0019] Figure 4 is a schematic diagram of the internal structure of the second handle of the present utility model;
[0020] Figure 5 Schematic diagram of the internal structure of the fixing plate of the present utility model.
[0021] In the figure: 1, ferromagnetic conveyor belt; 2, first roller; 3, first groove; 4, second groove; 5, fixing plate; 6, third groove; 7, support leg; 8, first handle; 9, first fixing rod; 10, motor; 11, first cylinder; 12, first rotating shaft; 13, worm; 14, second fixing rod; 15, base; 16, first turbine; 17, first lead screw; 18, first fixing block; 19, second cylinder; 20, second rotating shaft; 21, second turbine; 22, second lead screw; 23, second fixing block; 24, third fixing rod; 25, second handle; 26, fourth groove; 27, first gear; 28, first fixing column; 29, second gear; 30, second fixing column; 31, scraper; 32, first spring; 33, clamping block; 34, second spring; 35, third spring; 36, fixing disc; 37, fourth fixing rod; 38, card slot; 39, third fixing block; 40, ring; 41, second roller. Specific embodiments
[0022] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0023] Please refer to Figure 1 、 2, in the embodiment of the present utility model, an electromagnetic conveyor belt facilitating magnetic separation includes a ferromagnetic conveyor belt 1 and support legs 7. On one side inside the ferromagnetic conveyor belt 1, there is a first roller 2. On the other side inside the ferromagnetic conveyor belt 1, there is a second roller 41. The second roller 41 drives the first roller 2 to rotate through the ferromagnetic conveyor belt 1. On one side of the second roller 41, there is a first fixing rod 9 which drives the second roller 41 to rotate. On one side of the support leg 7, there is a third groove 6. Inside the third groove 6, there is a worm 13. On one side of the worm 13, there is a first handle 8 which drives the worm 13 to rotate. The outer surface of the worm 13 is meshed with a first turbine 16, and the worm 13 drives the first turbine 16 to rotate. And the first turbine 16 is located inside the support leg 7. At the bottom of the first turbine 16, there is a first rotating shaft 12. At the bottom of the first rotating shaft 12, there is a first cylinder 11. The first rotating shaft 12 prevents the first turbine 16 from driving the first cylinder 11 to rotate when the first turbine 16 rotates. Inside the first turbine 16, there is a first lead screw 17 which is meshed with the first turbine 16. The first turbine 16 drives the first lead screw 17 to move. At the top of the first lead screw 17, there is a first fixing block 18. When the first lead screw 17 moves, it drives the first fixing block 18 to move. At one end of the first fixing block 18, there is a second fixing rod 14. At one end of the second fixing rod 14, there is a base 15. When the first fixing block 18 moves, it drives the base 15 to move through the second fixing rod 14. On the top of the base 15, there is a motor 10. And the output end of the motor 10 is fixed with a first fixing rod 9. The motor 10 drives the first fixing rod 9 to rotate;
[0024] When the worm 13 rotates, it drives the first turbine 16 to rotate. When the first turbine 16 rotates, it drives the first lead screw 17 to move up and down through meshing. When the first lead screw 17 moves, it drives the first fixing block 18 to move. When the first fixing block 18 moves, it drives the second fixing rod 14 to move.
[0025] Please refer specifically to Figure 2 , the outer surface of the worm 13 is meshed with a second turbine 21. The worm 13 drives the second turbine 21 to rotate. And the second turbine 21 is located on one side of the first turbine 16. At the bottom of the second turbine 21, there is a second rotating shaft 20. And the second rotating shaft 20 is located inside a group of support legs 7. At the bottom of the second rotating shaft 20, there is a second cylinder 19. The second rotating shaft 20 prevents the second turbine 21 from driving the second cylinder 19 to rotate when the second turbine 21 rotates. Inside the second turbine 21, there is a second lead screw 22 which is meshed with the second turbine 21. When the second turbine 21 rotates, it drives the second lead screw 22 to move. At the top of the second lead screw 22, there is a second fixing block 23. When the second lead screw 22 moves, it drives the second fixing block 23 to move. At one end of the second fixing block 23, there is a third fixing rod 24. And the third fixing rod 24 is located at one end of the first roller 2;
[0026] When the worm 13 rotates, it drives the second turbine 21 to rotate. When the second turbine 21 rotates, it drives the second lead screw 22 to move up and down through meshing.
[0027] In this embodiment: When the worm 13 rotates, it drives the first turbine 16 and the second turbine 21 to rotate simultaneously. When the second turbine 21 rotates, it drives the second lead screw 22 to move up and down through meshing. When the second lead screw 22 moves, it drives the second fixed block 23 to move, and the movement of the second fixed block 23 drives the first roller 2 to move.
[0028] Please refer specifically to Figure 1 、 3 One side of the support leg 7 is fixed with a fixed plate 5. The support leg 7 is used to support the whole. One side of one end of the fixed plate 5 is fixed with a first groove 3, and the first groove 3 is used to protect the second handle 25. The other side of one end of the fixed plate 5 is fixed with a second groove 4, and the second groove 4 is used to protect the fourth fixing rod 37. A first gear 27 is arranged inside the first groove 3. One end of the first gear 27 is fixed with a second handle 25, and the second handle 25 drives the first gear 27 to rotate. A fourth groove 26 is fixed on the outer surface of the second handle 25. The outer surface of the first gear 27 is meshed with a second gear 29, and the first gear 27 drives the second gear 29 to rotate. One end of the second gear 29 is fixed with a second fixing column 30, and one end of the second fixing column 30 is fixed with a scraper 31. The second gear 29 drives the scraper 31 to rotate through the second fixing column 30, and the scraper 31 is located at the bottom of the ferromagnetic conveyor belt 1.
[0029] When the second handle 25 rotates, it drives the first gear 27 to rotate. When the first gear 27 rotates, it drives the second gear 29 to rotate through meshing. When the second gear 29 rotates, it drives the second fixing column 30 to rotate. When the second fixing column 30 rotates, it drives the scraper 31 to rotate.
[0030] Please refer specifically to Figure 4 、 5, a second spring 34 is fixed to the bottom inside the second handle 25. One end of the second spring 34 is fixed with a first fixing post 28. When the first fixing post 28 moves, it squeezes the second spring 34. A first spring 32 is fixed to the outer surface of the first fixing post 28. When the first fixing post 28 moves, it drives the first spring 32 to move. A latch 33 is fixed to the top of the first spring 32. When the first spring 32 moves, it drives the latch 33 to move. A fixing plate 36 is fixed to the bottom of the second handle 25. One end of the fixing plate 36 is fixed with multiple third springs 35. The fixing plate 36 fixes the third springs 35. One end of the third spring 35 is fixed with a ring 40. The third spring 35 pulls the ring 40. One side of the ring 40 is fixed with a third fixing block 39. One end of the third fixing block 39 is fixed with a fourth fixing rod 37. The fourth fixing rod 37 pulls the ring 40 through the third fixing block 39. And the fourth fixing rod 37 is located inside the second groove 4. A card slot 38 is fixed to the inner wall of the fixing plate 5;
[0031] By pulling the fourth fixing rod 37 to move, when the fourth fixing rod 37 moves, it drives the third fixing block 39 to move. When the third fixing block 39 moves, it drives the ring 40 to move. When the ring 40 moves, it pulls the third spring 35. At the same time, when the ring 40 moves, it squeezes out the latch 33 stuck inside the card slot 38.
[0032] In this embodiment: When the first fixing post 28 moves, it drives the first spring 32 to move. When the first spring 32 moves, it drives the latch 33 to move. When the latch 33 moves, it is squeezed by the inner wall of the fixing plate 5. When the latch 33 moves to the card slot 38, the first spring 32 pushes the latch 33 out of the card slot 38. When the latch 33 is pushed, the card slot 38 fixes it.
[0033] Working principle: By rotating the first handle 8, the worm 13 is driven to rotate. When the worm 13 rotates, it drives the first turbine 16 to rotate. When the first turbine 16 rotates, it drives the first lead screw 17 to move up and down through meshing. When the first lead screw 17 moves, it drives the first fixing block 18 to move. When the first fixing block 18 moves, it drives the second fixing rod 14 to move. When the second fixing rod 14 moves, it drives the base 15 to move. When the base 15 moves, it drives the motor 10 to move. When the motor 10 moves, it drives the first fixing rod 9 to move. When the first fixing rod 9 moves, it drives the second roller 41 to move. At the same time, when the worm 13 rotates, it drives the second turbine 21 to rotate. When the second turbine 21 rotates, it drives the second lead screw 22 to move up and down through meshing. When the second lead screw 22 moves, it drives the second fixing block 23 to move. When the second fixing block 23 moves, it drives the first roller 2 to move;
[0034] When the first roller 2 and the second roller 41 are moved and fixed, rotate the second handle 25. When the second handle 25 rotates, it drives the first gear 27 to rotate. When the first gear 27 rotates, it drives the second gear 29 to rotate through meshing. When the second gear 29 rotates, it drives the second fixing column 30 to rotate. When the second fixing column 30 rotates, it drives the scraper 31 to rotate. However, when the scraper 31 rotates to contact the ferromagnetic conveyor belt 1, stop rotating the second handle 25. At this time, push the first fixing column 28 to move. When the first fixing column 28 moves, it pushes the second spring 34. At the same time, when the first fixing column 28 moves, it drives the first spring 32 to move. When the first spring 32 moves, it drives the block 33 to move. When the block 33 moves, it is squeezed by the inner wall of the fixing plate 5. When the block 33 moves to the card slot 38, the first spring 32 pushes the block 33 out of the card slot 38. When the block 33 is pushed, the card slot 38 fixes it. When the block 33 is fixed, the fixing of the second handle 25 is completed.
[0035] The above is only the preferred specific implementation mode of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, makes equivalent replacements or changes, and should be covered by the protection scope of the present invention.
Claims
1. An electromagnetic conveyor belt for easy magnetic separation, comprising a ferromagnetic conveyor belt (1) and a support leg (7), characterized in that: A first roller (2) is arranged on one side of the interior of the ferromagnetic conveyor belt (1), a second roller (41) is arranged on the other side of the interior of the ferromagnetic conveyor belt (1), and a first fixing rod (9) is fixed to one side of the second roller (41).
2. The electromagnetic conveyor belt for easy magnetic separation according to claim 1, characterized in that: A third groove (6) is fixed on one side of the support leg (7), a worm rod (13) is arranged inside the third groove (6), a first handle (8) is fixed on one side of the worm rod (13), an outer surface of the worm rod (13) is meshedly connected with a first turbine (16), and the first turbine (16) is located inside the support leg (7), a first rotating shaft (12) is fixed at the bottom of the first turbine (16), a first cylinder (11) is fixed at the bottom of the first rotating shaft (12), a first screw rod (17) is meshedly connected inside the first turbine (16), a first fixing block (18) is fixed at the top of the first screw rod (17), a second fixing rod (14) is fixed at one end of the first fixing block (18), a base (15) is fixed at one end of the second fixing rod (14), a motor (10) is installed on the top of the base (15), and the output end of the motor (10) is fixed with the first fixing rod (9).
3. The electromagnetic conveyor belt for easy magnetic separation according to claim 2, characterized in that: The outer surface of the worm (13) is meshedly connected with a second turbine (21), and the second turbine (21) is located on one side of the first turbine (16); a second rotating shaft (20) is fixed to the bottom of the second turbine (21), and the second rotating shaft (20) is located inside a group of supporting legs (7); a second cylinder (19) is fixed to the bottom of the second rotating shaft (20); a second screw rod (22) is meshedly connected inside the second turbine (21); a second fixed block (23) is fixed to the top of the second screw rod (22); a third fixed rod (24) is fixed to one end of the second fixed block (23), and the third fixed rod (24) is located at one end of the first roller (2).
4. The electromagnetic conveyor belt for easy magnetic separation according to claim 1, characterized in that: A fixing plate (5) is fixed on one side of the supporting leg (7), a first groove (3) is fixed on one side of one end of the fixing plate (5), and a second groove (4) is fixed on the other side of one end of the fixing plate (5).
5. The electromagnetic conveyor belt for easy magnetic separation according to claim 4, characterized in that: A first gear (27) is arranged inside the first groove (3); a second handle (25) is fixed to one end of the first gear (27); a fourth groove (26) is fixed to the outer surface of the second handle (25); a second gear (29) is meshingly connected to the outer surface of the first gear (27); a second fixing column (30) is fixed to one end of the second gear (29); a scraper (31) is fixed to one end of the second fixing column (30); and the scraper (31) is located at the bottom of the ferromagnetic conveyor belt (1).
6. The electromagnetic conveyor belt for easy magnetic separation according to claim 5, characterized in that: A second spring (34) is fixed to the bottom of the second handle (25), a first fixing column (28) is fixed to one end of the second spring (34), a first spring (32) is fixed to the outer surface of the first fixing column (28), a clamping block (33) is fixed to the top of the first spring (32), a fixing plate (36) is fixed to the bottom of the second handle (25), and a plurality of third springs (35) are fixed to one end of the fixing plate (36).
7. The electromagnetic conveyor belt for easy magnetic separation according to claim 6, characterized in that: A circular ring (40) is fixed to one end of the third spring (35), a third fixing block (39) is fixed to one side of the circular ring (40), a fourth fixing rod (37) is fixed to one end of the third fixing block (39), and the fourth fixing rod (37) is located inside the second groove (4), and a clamping groove (38) is fixed to the inner wall of the fixing plate (5).
Citation Information
Patent Citations
Quartz sand transfer magnetic separation device based on conveying belt
CN209772400U