Stepped magnetic separator for feldspar production
By using the dispersing mechanism of a stepped magnetic separator in feldspar production, the material is dispersed using a rotating column and agitator, solving the problem of reduced screening effect caused by material accumulation, achieving more thorough magnetic separation, and improving the screening effect.
Patent Information
- Application Number
- CN202423201360.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2034-12-24
AI Technical Summary
In existing magnetic separators used in feldspar production, the material on top cannot be effectively adsorbed when it accumulates, resulting in reduced screening efficiency.
A stepped magnetic separator for feldspar production was designed. By setting a dispersing mechanism on the conveying mechanism, the accumulated material is dispersed by a rotating column and a stirring rod, and magnetic separation is carried out in combination with magnetic separation plates to ensure that the material is fully screened and to prevent the material above the accumulated material from being screened.
It improves the magnetic separation effect, prevents accumulated materials from being unable to be magnetically screened, and enhances screening efficiency.
Smart Images

Figure CN223683699U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to feldspar magnetic separation technical field, concretely relates to feldspar production uses step type magnetic separator. BACKGROUND
[0002] Feldspar needs to use the magnetic separator to carry out screening work after production and grinding, and the existing magnetic separator uses the magnetic plate to adsorb the feldspar in the conveying process through the conveying mechanism when using, but when the staff accumulates the material on the conveying belt, the material accumulated on the upper part cannot be effectively adsorbed by the magnetic plate, resulting in the reduction of the screening effect. UTILIT Y MODEL CONTENT
[0003] Therefore, the utility model provides a feldspar production uses step type magnetic separator, can scatter in the process of material screening, so that the material can be more fully magnetized, prevent the material accumulated on the upper part from being magnetically screened, improve the screening effect.
[0004] In order to solve the above technical problem, the utility model provides feldspar production uses step type magnetic separator, including fixed frame, the inside of fixed frame is provided with conveying mechanism, the inside of conveying mechanism is provided with magnetic selection board, the both sides wall of fixed frame is provided with fixed column, the upper part of fixed column is provided with support frame, the lower part of support frame is provided with scattering mechanism, scattering mechanism includes rotationally arranged rotatory column of support frame lower surface, the lower end of rotatory column is provided with mounting plate, the lower surface of mounting plate is uniformly provided with a plurality of agitator rods, rotatory mechanism is provided in support frame, and rotatory mechanism is used for driving rotatory column to rotate, the staff pours the material to be magnetized on conveying mechanism, and the material is conveyed through conveying mechanism, and the metal powder in the material is magnetized through the magnetic selection board in the conveying process, and the rotatory mechanism drives the rotatory column to rotate in the process of re-screening, and the rotatory column drives the mounting plate to rotate, and then the mounting plate is scattered to the material accumulated together through the agitator rod at the bottom, so that the material can be more fully magnetized in the process of material screening, prevent the material accumulated on the upper part from being magnetically screened, improve the screening effect.
[0005] The number of rotatory columns is four, and the four rotatory columns are evenly rotationally arranged at the lower part of the support frame, and four groups of agitator rods are rotated together, so that the scattering effect on the material can be improved.
[0006] The rotating mechanism comprises two driving grooves opened in the inner sides of the support frame, driving gears are rotatably arranged in the inner centers of the two driving grooves, two driven gears are meshingly connected on the two sides of the two driving gears, the upper ends of each rotating column penetrate through the lower wall of the support frame, and the upper ends of each rotating column are respectively connected to the lower ends of the driven gears corresponding thereto, the rotating mechanism further comprises a driving assembly arranged on the upper part of the support frame, the driving assembly is used to drive the two driving gears to rotate simultaneously, the staff drives the two driving gears to rotate simultaneously through the driving assembly, the two driving gears drive the driven gears on the two sides thereof to rotate when rotating, so that the four driven gears rotate simultaneously, and the four driven gears drive the four rotating columns below to rotate.
[0007] The driving assembly comprises a driving frame arranged in the center of the upper part of the support frame, a connecting rod is rotatably arranged in the driving frame, a motor is arranged on one side of the outer wall of the driving frame, the fixed end of the motor is fixed to the surface of the driving frame, the output end of the motor penetrates through the side wall of the driving frame, and the output end of the motor is connected to the center of the end of the connecting rod, two driving bevel gears are arranged on the two sides of the surface of the connecting rod, two driven bevel gears are rotatably arranged on the two sides of the lower inner wall of the driving frame, and the driven bevel gears are meshingly connected with the driving bevel gears, the lower ends of the two driven bevel gears penetrate through the lower side of the inner wall of the driving frame, and the lower ends of the driven bevel gears are connected to the center of the upper end of the driving gear corresponding thereto, the staff starts the motor, the output end of the motor drives the connecting rod to rotate, the connecting rod drives the two driving bevel gears on the two sides of the surface thereof to rotate, and the two driving bevel gears drive the driven bevel gears meshingly connected therewith to rotate when rotating, so that the two driven bevel gears drive the two driving gears below to rotate simultaneously.
[0008] The end of the connecting rod is provided with a bearing, the outer ring of the bearing is fixed to the inner wall of the driving frame, and the end of the connecting rod is fixed to the inner ring of the bearing, so that the bearing can support the connecting rod and make the rotating process of the connecting rod more stable.
[0009] The stirring rod is made of rubber material, which can prevent damage to the materials.
[0010] The upper surface of the fixing frame is provided with baffles on the two sides, the baffles can block the materials when the stirring rod scatters the materials, so as to prevent the materials from spilling out.
[0011] Compared with the prior art, the present application has at least one of the following beneficial technical effects:
[0012] 1. When using this utility model, the operator pours the material to be magnetically separated onto the conveying mechanism, which then transports the material. During the transport process, the magnetic separation plate performs magnetic separation on the metal powder in the material. During the screening process, the rotating mechanism drives the rotating column to rotate, which in turn drives the mounting plate to rotate. This causes the mounting plate to break up the material piled up at the bottom through the stirring rod, thus breaking up the material during the screening process. This allows the material to be magnetically separated more thoroughly, preventing the material piled up at the top from being unable to be magnetically attracted and screened, thereby improving the screening effect.
[0013] 2. When this utility model is in use, the operator drives the two drive gears to rotate simultaneously through the drive assembly. When the two drive gears rotate, they drive the driven gears on both sides to rotate, thereby causing the four driven gears to rotate simultaneously, which in turn causes the four driven gears to drive the four rotating columns at the bottom to rotate.
[0014] 3. When using this utility model, the operator starts the motor, and the output end of the motor drives the connecting rod to rotate. The connecting rod drives the two active bevel gears on both sides of its surface to rotate. When the two active bevel gears rotate, they drive the driven bevel gears that are meshed with them to rotate, thereby causing the two driven bevel gears to drive the two driving gears below to rotate simultaneously.
[0015] 4. When this utility model is used, baffles are provided on both sides of the upper surface of the fixed frame. When the stirring rod disperses the material, the baffles can block the material and prevent the material from spilling out. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the main structure of this utility model;
[0017] Figure 2 This is a cross-sectional view of the internal structure of the support frame and drive frame of this utility model.
[0018] Figure 3 This is a side view of the main structure of this utility model;
[0019] Figure 4 For the present utility model Figure 3 Front sectional view of the structure at point AA.
[0020] Explanation of reference numerals in the attached drawings: 100, fixed frame; 101, baffle; 200, conveying mechanism; 201, magnetic separation plate; 300, fixed column; 400, support frame; 401, drive groove; 402, drive gear; 403, driven gear; 500, drive frame; 501, motor; 502, connecting rod; 503, driving bevel gear; 504, driven bevel gear; 600, rotating column; 601, mounting plate; 602, stirring rod. Detailed Implementation
[0021] In order to make the purpose, technical scheme and advantages of the embodiments of the present application more clear, the following will combine the drawings of the embodiments of the present application to make a clear and complete description of the technical scheme of the embodiments of the present application. Figures 1-4 It is obvious that the described embodiments are part of the embodiments of the present application, rather than all the embodiments. Based on the described embodiments of the present application, all other embodiments obtained by those skilled in the art belong to the scope of protection of the present application.
[0022] According to one embodiment of the present application, as shown in Figure 1 , Figure 2 , Figure 3 and Figure 4 : the present embodiment provides a stepped magnetic separator for feldspar production, which comprises a fixed frame 100, a conveying mechanism 200 is arranged in the fixed frame 100, a magnetic selection plate 201 is arranged in the inside of the conveying mechanism 200, fixed columns 300 are arranged on the two side walls of the fixed frame 100, support frames 400 are arranged on the upper parts of the fixed columns 300, a scattering mechanism is arranged at the lower part of the support frame 400, the scattering mechanism comprises rotating columns 600 which are rotatably arranged on the lower surface of the support frame 400, mounting plates 601 are arranged at the lower ends of the rotating columns 600, a plurality of stirring rods 602 are uniformly arranged on the lower surface of the mounting plate 601, a rotating mechanism is arranged in the support frame 400, the rotating mechanism is used to drive the rotating column 600 to rotate, the staff pours the material to be magnetically selected into the conveying mechanism 200, the material is conveyed through the conveying mechanism 200, the metal powder in the material is magnetically selected through the magnetic selection plate 201 in the conveying process, the rotating column 600 is driven to rotate by the rotating mechanism in the re-screening process, the mounting plate 601 is driven to rotate by the rotating column 600, and then the mounting plate 601 scatters the material accumulated together through the stirring rods 602 at the bottom, so that the material is scattered in the screening process, and the material can be more fully magnetically selected, the material accumulated on the upper part cannot be magnetically selected and screened, and the screening effect is improved.
[0023] The number of rotating columns 600 is four, the four rotating columns 600 are uniformly rotatably arranged at the lower part of the support frame 400, and four groups of stirring rods 602 are rotated together, so that the scattering effect on the material can be improved.
[0024] The rotating mechanism comprises two driving grooves 401 formed in the two sides of the inner portion of the support frame 400, driving gears 402 are rotationally arranged in the inner center of the two driving grooves 401, two driven gears 403 are meshingly connected on the two sides of the two driving gears 402, the upper end of each rotating column 600 penetrates through the lower wall of the support frame 400, and the upper end of each rotating column 600 is connected to the lower end of the corresponding driven gear 403, the rotating mechanism further comprises a driving assembly arranged on the upper portion of the support frame 400, the driving assembly is used for driving the two driving gears 402 to rotate simultaneously, the staff drives the two driving gears 402 to rotate simultaneously through the driving assembly, the two driving gears 402 drive the driven gears 403 on the two sides to rotate respectively, so that the four driven gears 403 rotate simultaneously, and then the four driven gears 403 drive the four rotating columns 600 below to rotate;
[0025] The driving assembly comprises a driving frame 500 arranged in the center of the upper portion of the support frame 400, a connecting rod 502 is rotationally arranged in the inner portion of the driving frame 500, a motor 501 is arranged on one side of the outer wall of the driving frame 500, the fixed end of the motor 501 is fixed on the surface of the driving frame 500, the output end of the motor 501 penetrates through the side wall of the driving frame 500, and the output end of the motor 501 is connected to the center of the end portion of the connecting rod 502, two driving bevel gears 503 are arranged on the surface of the connecting rod 502, two driven bevel gears 504 are rotationally arranged on the two sides of the lower inner wall of the driving frame 500, and the driven bevel gears 504 are meshingly connected with the driving bevel gears 503, the lower ends of the two driven bevel gears 504 penetrate through the lower side of the inner wall of the driving frame 500, and the lower ends of the driven bevel gears 504 are connected to the center of the upper end of the corresponding driving gear 402, the staff starts the motor 501, the output end of the motor 501 drives the connecting rod 502 to rotate, the connecting rod 502 drives the two driving bevel gears 503 on the two sides of the surface to rotate, and the two driving bevel gears 503 drive the meshingly connected driven bevel gears 504 to rotate when rotating, so that the two driven bevel gears 504 drive the two driving gears 402 below to rotate simultaneously;
[0026] A bearing is arranged at the end portion of the connecting rod 502, the outer ring of the bearing is fixed on the inner wall of the driving frame 500, and the end portion of the connecting rod 502 is fixed on the inner ring of the bearing, so that the bearing can support the connecting rod 502 and make the rotating process of the connecting rod 502 more stable;
[0027] The stirring rod 602 is made of rubber material, and the rubber material can prevent damage to the materials;
[0028] The upper surface of the fixing frame 100 is provided with baffles 101, and the baffles 101 can block the materials when the stirring rod 602 scatters the materials, so that the materials are prevented from spilling out.
[0029] The use method of the utility model:
[0030] First of all, it needs to be clear that the utility model relates to the magnetic separation work of feldspar, and is mainly used for scattering the powder in the magnetic separation process. The conveying mechanism 200 and the magnetic separation plate 201 are common devices in the prior art. Since they are not the main technical features of the utility model, the model is not limited, and the structure is not described in detail. Only the use method and installation position of the scattering mechanism and the rotating mechanism are described in detail. When the feldspar material needs to be magnetically separated, the material to be magnetically separated is poured into the conveying mechanism 200, and the material is conveyed by the conveying mechanism 200. The metal powder in the material is magnetically separated by the magnetic separation plate 201 during conveying. At this time, the worker starts the motor 501, the output end of the motor 501 drives the connecting rod 502 to rotate, the connecting rod 502 drives the two driving bevel gears 503 on the two sides of the surface to rotate, the two driving bevel gears 503 drive the driven bevel gears 504 connected with them to rotate when rotating, so that the two driven bevel gears 504 drive the two driving gears 402 below to rotate at the same time. The two driving gears 402 rotate and drive the two driven gears 403 on the two sides to rotate at the same time, so that the four driven gears 403 rotate at the same time, and then the four driven gears 403 drive the four rotating columns 600 below to rotate. The rotating column 600 drives the mounting plate 601 to rotate, and then the mounting plate 601 drives the agitating rod 602 at the bottom to scatter the material accumulated together, so that the material is scattered during the screening process, so that the material can be more fully magnetically separated, and the material accumulated on the top cannot be magnetically separated, so as to improve the screening effect.
[0031] The above is the preferred embodiment of the utility model. It should be pointed out that for ordinary skilled persons in the technical field, without departing from the principle of the utility model, some improvements and decorations can be made, which should also be considered as the protection range of the utility model.
Claims
1. A stepped magnetic separator for feldspar production, comprising a fixed frame (100), a conveying mechanism (200) is arranged in the fixed frame (100), and a magnetic selection plate (201) is arranged in the conveying mechanism (200), characterized in that: The fixed frame (100) is provided with a fixed column (300) on the two side walls, the upper part of the fixed column (300) is provided with a supporting frame (400), the lower part of the supporting frame (400) is provided with a scattering mechanism, the scattering mechanism comprises a rotating column (600) rotatably arranged on the lower surface of the supporting frame (400), the lower end of the rotating column (600) is provided with a mounting plate (601), the lower surface of the mounting plate (601) is uniformly provided with a plurality of stirring rods (602), and the supporting frame (400) is provided with a rotating mechanism.
2. The stepped magnetic separator for feldspar production according to claim 1, characterized in that: The number of the rotating column (600) is four, and the four rotating columns (600) are uniformly rotatably arranged at the lower part of the supporting frame (400).
3. The stepped magnetic separator for feldspar production as claimed in claim 1, wherein: The rotating mechanism comprises two drive grooves (401) opened on the two sides of the inside of the supporting frame (400), two drive gears (402) are rotatably arranged in the central parts of the two drive grooves (401), two driven gears (403) are meshedly connected on the two sides of the two drive gears (402), the upper end of each rotating column (600) penetrates the lower wall of the supporting frame (400), and the upper end of each rotating column (600) is connected to the lower end of the corresponding driven gear (403), and the rotating mechanism further comprises a driving assembly arranged on the upper part of the supporting frame (400), and the driving assembly is used to drive the two drive gears (402) to rotate at the same time.
4. The stepped magnetic separator for feldspar production according to claim 3, characterized in that: The driving assembly comprises a driving frame (500) arranged at the central part of the upper part of the supporting frame (400), a connecting rod (502) is rotatably arranged in the inside of the driving frame (500), a motor (501) is arranged on one side of the outer wall of the driving frame (500), the fixed end of the motor (501) is fixed to the surface of the driving frame (500), the output end of the motor (501) penetrates the side wall of the driving frame (500), and the output end of the motor (501) is connected to the central part of the end of the connecting rod (502), two driving bevel gears (503) are arranged on the surface of the connecting rod (502), two driven bevel gears (504) are rotatably arranged on the two sides of the lower inner wall of the driving frame (500), the driven bevel gears (504) are meshedly connected with the driving bevel gears (503), the lower ends of the two driven bevel gears (504) penetrate the lower side of the inner wall of the driving frame (500), and the lower ends of the driven bevel gears (504) are connected to the upper end centers of the corresponding drive gears (402).
5. The stepped magnetic separator for feldspar production according to claim 4, characterized in that: The end of the connecting rod (502) is provided with a bearing, the outer ring of the bearing is fixed to the inner wall of the driving frame (500), and the end of the connecting rod (502) is fixed to the inner ring of the bearing.
6. The stepped magnetic separator for feldspar production as claimed in claim 1, wherein: The stirring rod (602) is made of rubber.
7. The stepped magnetic separator for feldspar production as claimed in claim 1, wherein: The upper surface of the fixed frame (100) is provided with a baffle (101) on the two sides.