Cement iron removal device
By designing an iron scraping mechanism to automatically remove the iron adsorbent in the cement iron removal device, the problem of manual removal in the prior art is solved, and the iron removal efficiency and practicality of the device are improved.
Patent Information
- Application Number
- CN202422544156.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-21
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-10-21
AI Technical Summary
Existing cement iron removal devices are difficult to automatically remove the adsorbed iron after iron removal and require manual removal, which wastes time and affects the iron removal efficiency.
A cement iron removal device is designed. By setting up an iron scraping mechanism, a motor is used to drive the rotating disk and the sliding component to move the connecting plate up and down. The iron scraping plate is matched with the electromagnet to realize automatic scraping of adsorbed iron.
It realizes the automatic removal of adsorbed iron, reduces manual operations, improves the iron removal efficiency, and avoids the long-term accumulation of iron that affects the subsequent iron removal effect.
Smart Images

Figure CN223405110U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of cement iron removal, in particular to a cement iron removal device. Background Art
[0002] Cement raw materials mainly include limestone, clay raw materials, and correction raw materials. The mining of these raw materials is inseparable from mechanical equipment. Therefore, these raw materials often contain various iron impurities such as iron filings, iron blocks, and iron wire. The cement iron removal device in the prior art is difficult to remove the adsorbed iron after iron removal. Manual removal is required, which wastes time and increases labor. If the iron accumulates and is adsorbed on the magnet for a long time, it will affect the subsequent iron removal effect, thereby reducing the iron removal efficiency. For this reason, the present application proposes a cement iron removal device. Utility Model Content
[0003] The present application proposes a cement iron removal device, which solves the problem of cement iron removal devices in the prior art by setting up a series of structures. After iron removal, it is difficult to remove the adsorbed iron objects, which need to be removed manually, wasting time and increasing labor. If the iron objects accumulate and are adsorbed on the magnet for a long time, it will affect the subsequent iron removal effect, thereby reducing the iron removal efficiency.
[0004] The present application proposes a cement iron removal device, comprising a device body, a feeding mechanism provided at the top of the inner cavity of the device body, an iron removal mechanism provided below the feeding mechanism, an iron scraping mechanism corresponding to the iron removal mechanism provided below the iron removal mechanism, and a discharging mechanism provided at the bottom of the device body;
[0005] The scraping mechanism includes two driving components symmetrically arranged on the outside of the device body, a sliding component is connected above the driving component, the other ends of the two sliding components extend through the side wall of the device body into the inner cavity of the device body and are jointly connected to a connecting plate, and a scraping plate is provided on the end of the connecting plate close to the iron removal mechanism;
[0006] The driving component includes a first motor mounted on the outer wall of the device body, an output end of the first motor is connected to a first rotating shaft, the other end of the first rotating shaft is connected to a rotating disk, an arc-shaped chute is provided on the rotating disk, one end of the arc-shaped chute is close to the center of the rotating disk, and the other end of the arc-shaped chute is close to the edge of the rotating disk, a cylinder is slidably arranged in the arc-shaped chute, and the other end of the cylinder is vertically connected to a moving rod;
[0007] The sliding component includes a limit block fixed to the outer side wall of the device body, two slide rails are symmetrically arranged on the limit block, a slider is slidably arranged on the slide rail, the two sliders are connected by a moving block, the bottom of the moving block is connected to the moving rod, and a connecting block is fixed on the side of the moving block close to the device body. It also includes two through grooves symmetrically opened on the side wall of the device body, and the other end of the connecting block passes through the through groove and is connected to the connecting plate.
[0008] Furthermore, the feeding mechanism includes a plurality of feeding ports evenly opened on the top of the device body, the feeding ports are connected to a discharge barrel, the other end of the discharge barrel is located in the inner cavity of the device body and corresponds to the iron removal mechanism.
[0009] Furthermore, the iron removal mechanism includes a second motor installed on the outside of the device body, the output end of the second motor is connected to a second rotating shaft, the other end of the second rotating shaft passes through the side wall of the device body to extend into the inner cavity of the device body and is rotatably connected to the inner side wall of the device body, an electromagnet is fixedly sleeved on the second rotating shaft, and the scraper plate is matched with the electromagnet.
[0010] Furthermore, the discharge mechanism includes a discharge port opened at the bottom of the device body, the discharge port is connected to a discharge channel, a sieve plate is fixed at an angle in the discharge channel, and an iron discharge port corresponding to the sieve plate is opened on one side wall of the discharge channel.
[0011] Furthermore, two material guide plates are symmetrically arranged at the bottom of the inner cavity of the device body, and the other ends of the two material guide plates are connected to the discharge port.
[0012] Furthermore, the scraper plate is fixed to the connecting plate by bolts.
[0013] It can be seen from the above technical solution that when in use, the cement raw materials are introduced into the device body through the feeding mechanism provided at the top of the inner cavity of the device body, and fall onto the iron removal mechanism provided below the feeding mechanism. By starting the iron removal mechanism, the iron in the cement raw materials will be adsorbed on the iron removal mechanism. At this time, by simultaneously starting the two first motors in forward and reverse rotation, the two first rotating shafts are driven to rotate, and then the rotating disk is driven to rotate, so that the cylinder slides back and forth in the arc-shaped chute. It should be noted here that when the cylinder slides to one end of the arc-shaped chute close to the center position of the rotating disk, the moving rod will move downward in the vertical direction. When the cylinder slides to one end of the arc-shaped chute close to the edge position of the rotating disk, the moving rod will move upward in the vertical direction, thereby driving the moving block fixedly connected to the moving rod to slide up and down. The moving block can be made to slide up and down by the cooperation of the slider and the slide rail. It is more stable. At the same time, the up and down movement of the moving block will drive the connecting block to move up and down in the through groove, and finally realize the up and down movement of the connecting plate. It should be noted here that when it is necessary to remove the ironware on the iron removal mechanism, first stop the feeding at the feeding mechanism, and then start the two first motors to move the connecting plate upward until the scraper plate set on the connecting plate is against the iron removal mechanism. At this time, the iron removal mechanism operates normally, and the ironware on the iron removal mechanism can be scraped off by the scraper plate, and then fall to the discharging mechanism set at the bottom of the device body for processing, which solves the problem of cement iron removal device in the prior art. It is difficult to remove the adsorbed ironware after iron removal, and manual removal is required, which wastes time and increases labor. If the ironware is accumulated and adsorbed on the magnet for a long time, it will affect the subsequent iron removal effect, thereby reducing the iron removal efficiency.
[0014] Compared with the prior art, the beneficial effects of the present invention are:
[0015] 1. The present application is provided with a series of structures to facilitate the removal of adsorbed iron objects. Specifically, the cement raw materials are introduced into the device body through the feeding mechanism and fall onto the iron removing mechanism. By starting the iron removing mechanism, the iron objects in the cement raw materials will be adsorbed on the iron removing mechanism. At this time, by simultaneously starting the two first motors in forward and reverse rotation, the rotating disk is driven to rotate forward and reverse, so that the cylinder slides back and forth in the arc chute. By moving the position of the cylinder in the arc chute, the height of the moving block is changed, and finally the up and down movement of the connecting plate is realized. When the iron objects on the iron removing mechanism need to be removed, the feeding at the feeding mechanism is stopped first. Then, when the scraper plate provided on the connecting plate is against the iron removing mechanism, the iron removing mechanism operates normally at this time, and the iron objects on the iron removing mechanism can be scraped off by the scraper plate, thereby solving the problem of cement iron removing device in the prior art that it is difficult to remove the adsorbed iron objects after iron removal, and manual removal is required, which wastes time and also increases labor. If the iron objects are accumulated and adsorbed on the magnet for a long time, it will affect the subsequent iron removal effect, thereby reducing the iron removal efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solution of this application, the following is a brief introduction to the drawings required for the implementation cases. Obviously, for ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0017] Figure 1 This is a structural diagram of a cement iron removal device proposed in the utility model;
[0018] Figure 2 This is an enlarged schematic diagram of point A in a cement iron removal device proposed in the present invention;
[0019] Figure 3 This is an enlarged schematic diagram of point B in a cement iron removal device proposed in the present invention;
[0020] Illustration:
[0021] Among them: 1. Device body, 2. Connecting plate, 3. Scraping plate, 4. First motor, 5. First rotating shaft, 6. Rotating disk, 7. Arc chute, 8. Cylinder, 9. Moving rod, 10. Limit block, 11. Slide rail, 12. Slider, 13. Moving block, 14. Connecting block, 15. Through slot, 16. Feed port, 17. Discharge barrel, 18. Second motor, 19. Second rotating shaft, 20. Electromagnet, 21. Discharge port, 22. Discharge channel, 23. Screen plate, 24. Ironware discharge port, 25. Guide plate. DETAILED DESCRIPTION
[0022] In order to enable people skilled in the art to better understand the technical solutions in the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the accompanying drawings.
[0023] See also Figure 1-Figure 3 .
[0024] Cement raw materials mainly include limestone, clay raw materials, correction raw materials, etc. The mining of these raw materials is inseparable from mechanical equipment. Therefore, these raw materials often contain various types of iron impurities such as iron filings, iron blocks, and iron wire. The cement iron removal device in the prior art is difficult to remove the adsorbed iron after iron removal, and needs to be removed manually, which wastes time and increases labor. If the iron is accumulated and adsorbed on the magnet for a long time, it will affect the subsequent iron removal effect, thereby reducing the iron removal efficiency. For this reason, the present application proposes a cement iron removal device, including a device body 1, a feeding mechanism is provided at the top of the inner cavity of the device body 1, an iron removal mechanism is provided below the feeding mechanism, and a corresponding iron scraping mechanism is provided below the iron removal mechanism, and a discharging mechanism is provided at the bottom of the device body 1. Specifically, the cement raw materials are passed into the device body 1 through the feeding mechanism provided at the top of the inner cavity of the device body 1, and fall onto the iron removal mechanism provided below the feeding mechanism. By starting the iron removal mechanism, the iron in the cement raw materials will be adsorbed on the iron removal mechanism;
[0025] The scraping mechanism includes two driving components symmetrically arranged on the outside of the device body 1. A sliding component is connected above the driving component. The other ends of the two sliding components extend through the side wall of the device body 1 into the inner cavity of the device body 1 and are jointly connected to a connecting plate 2. A scraping plate 3 is provided on the end of the connecting plate 2 close to the iron removal mechanism.
[0026] When the first gear 5 is in the upright position, the first gear 5 is in the upright position, and the second gear 5 is in the upright position, so that the gear 5 can be rotated and the gear 5 can be rotated.
[0027] The sliding component includes a limit block 10 fixed to the outer wall of the device body 1, two slide rails 11 are symmetrically provided on the limit block 10, a slider 12 is slidably provided on the slide rail 11, and the two sliders 12 are connected by a moving block 13. The bottom of the moving block 13 is connected to the moving rod 9. A connecting block 14 is fixed on the side of the moving block 13 close to the device body 1, and also includes two through grooves 15 symmetrically opened on the side wall of the device body 1. The other end of the connecting block 14 passes through the through groove 15 and is connected to the connecting plate 2. Specifically, the moving rod 9 is fixedly connected to the moving block 13. When the moving rod 9 moves up and down, the moving block 13 is connected to the connecting plate 2. The block also slides up and down. Through the coordinated setting of the slider 12 and the slide rail 11, the up and down sliding of the movable block 13 can be made more stable. At the same time, the up and down movement of the movable block 13 will drive the connecting block 14 to move up and down in the through groove 15, and finally realize the up and down movement of the connecting plate 2. It should be noted here that when it is necessary to remove the ironware on the iron removal mechanism, the two first motors 4 can be started to move the connecting plate 2 upward until the scraper plate 3 set on the connecting plate 2 is against the iron removal mechanism. At this time, the iron removal mechanism is operating normally, and the ironware on the iron removal mechanism can be scraped off by the scraper plate 3.
[0028] Furthermore, the feeding mechanism includes a plurality of feeding ports 16 evenly opened on the top of the device body 1, and the feeding ports 16 are connected to a discharge barrel 17. The other end of the discharge barrel 17 is located in the inner cavity of the device body 1 and corresponds to the iron removal mechanism. Specifically, by setting a plurality of feeding ports 16 and discharge barrels 17, the cement raw materials can be evenly discharged onto the iron removal mechanism, which facilitates the iron removal mechanism to perform iron removal work.
[0029] Furthermore, the iron removal mechanism includes a second motor 18 installed on the outside of the device body 1, and the output end of the second motor 18 is connected to the second rotating shaft 19. The other end of the second rotating shaft 19 extends through the side wall of the device body 1 to the inner cavity of the device body 1 and is rotatably connected to the inner wall of the device body 1. An electromagnet 20 is fixedly sleeved on the second rotating shaft 19, and the scraper plate 3 is matched with the electromagnet 20. Specifically, by starting the second motor 18, the second motor 18 drives the second rotating shaft 19 to rotate, and at the same time drives the electromagnet 20 to rotate, so that the cement raw materials can be iron-removed. The iron in the cement raw materials will be adsorbed on the electromagnet 20, and the scraper plate 3 is matched with the electromagnet 20, so that when the electromagnet 20 rotates normally and the scraper plate 3 is against the electromagnet 20, the iron on the electromagnet 20 can be scraped off.
[0030] Furthermore, the discharging mechanism includes a discharge port 21 opened at the bottom of the device body 1, the discharge port 21 is connected to a discharge channel 22, a sieve plate 23 is fixed at an angle in the discharge channel 22, and an iron discharge port 24 corresponding to the sieve plate 23 is opened on one side wall of the discharge channel 22. Specifically, the scraped iron falls onto the sieve plate 23 through the discharge port 21, and is discharged through the iron discharge port 24 for collection, while the cement raw material side after the iron removal work continues to fall to the bottom of the discharge channel 22 and is finally collected.
[0031] Furthermore, two guide plates 25 are symmetrically arranged at the bottom of the inner cavity of the device body 1, and the other ends of the two guide plates 25 are connected to the discharge port 21. Specifically, by setting the guide plates 25, the cement raw materials can be passed into the discharge channel 22 along the guide plates 25, preventing the cement raw materials from accumulating at the corners at the bottom of the device body 1 and being unable to be discharged.
[0032] Furthermore, the scraper plate 3 is fixed to the connecting plate 2 by bolts. Specifically, by providing the bolts, the scraper plate 3 can be disassembled at any time, which facilitates the replacement of the scraper plate 3 and improves the practicality of the device.
[0033] It can be seen from the above technical solution that when in use, the cement raw materials are introduced into the device body 1 through the feeding mechanism arranged at the top of the inner cavity of the device body 1. Specifically, by setting multiple feeding ports 16 and discharge barrels 17, the cement raw materials can be evenly discharged onto the electromagnet 20, which is convenient for the iron removal mechanism to perform iron removal work. By starting the second motor 18, the second motor 18 drives the second rotating shaft 19 to rotate, and at the same time drives the electromagnet 20 to rotate, so that the cement raw materials can be ironed. The iron in the cement raw materials will be adsorbed on the electromagnet 20, and the scraper plate 3 is matched with the electromagnet 20 so that when the electromagnet 20 rotates normally and the scraper plate 3 is against the electromagnet 20, the iron on the electromagnet 20 can be scraped off. At this time, the two first motors 4 are started forward and reversed at the same time to drive the two first rotating shafts 5 to rotate. When the cylinder 8 slides to one end of the arc chute 7 close to the center position of the rotating disk 6, the moving rod 9 will move upward in the vertical direction, thereby driving the moving block 13 fixedly connected to the moving rod 9 to slide up and down. The cooperation between the slider 12 and the slide rail 11 can make the up and down sliding of the moving block 13 more stable. At the same time, the up and down movement of the moving block 13 will drive the connecting block 14 to move up and down in the through groove 15, and finally realize the up and down movement of the connecting plate 2. It should be noted that a compressed sponge is provided between the connecting block 14 and the through groove 15, so that no leakage will occur.
[0034] When it is necessary to remove the ironware on the iron removal mechanism, first stop the feeding at the feeding mechanism, then start the two first motors 4 to move the connecting plate 2 upward until the scraper plate 3 set on the connecting plate 2 is against the iron removal mechanism. At this time, the iron removal mechanism operates normally, and the ironware on the iron removal mechanism can be scraped off by the scraper plate 3. The scraped ironware falls onto the sieve plate 23 through the discharge port 21 and is discharged through the iron discharge port 24 for collection. The cement raw materials that have undergone the iron removal work in the early stage fall to the bottom of the discharge channel 22 and are finally collected. It should be noted here that the scraper plate 3 is screwed to the bottom of the discharge channel 22. The bolt is fixed on the connecting plate 2, so that the scraper plate 3 can be disassembled at any time, which is convenient for replacing the scraper plate 3 and improves the practicality of the device. By setting the guide plate 25, the cement raw material can be passed into the discharge channel 22 along the guide plate 25, preventing the cement raw material from accumulating at the corner at the bottom of the device body 1 and being unable to be discharged. This solves the problem of cement iron removal devices in the prior art, in which it is difficult to remove the adsorbed iron after iron removal and manual removal is required, which wastes time and increases labor. If the iron is accumulated and adsorbed on the magnet for a long time, it will affect the subsequent iron removal effect, thereby reducing the iron removal efficiency.
[0035] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the application disclosed herein. This application is intended to cover any variations, uses, or adaptations of the present application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein. The description and examples are to be considered merely as exemplary, and the true scope of this application is indicated by the claims.
[0036] It should be understood that the present application is not limited to the precise structure described above and shown in the drawings, and various modifications and changes can be made without departing from the scope thereof. The above-described embodiments of the present application do not constitute a limitation on the scope of protection of the present application.
Claims
1. A cement iron removal device, characterized in that: The device comprises a device body (1), wherein a feeding mechanism is provided at the top of the inner cavity of the device body (1), an iron removal mechanism is provided below the feeding mechanism, an iron scraping mechanism corresponding to the iron removal mechanism is provided below the iron removal mechanism, and a discharging mechanism is provided at the bottom of the device body (1); The iron scraping mechanism comprises two driving components symmetrically arranged on the outside of the device body (1), a sliding component is connected above the driving component, the other ends of the two sliding components pass through the side wall of the device body (1) and extend into the inner cavity of the device body (1) and are commonly connected to a connecting plate (2), and an iron scraping plate (3) is provided at one end of the connecting plate (2) close to the iron removing mechanism; The driving component includes a first motor (4) installed on the outer wall of the device body (1), the output end of the first motor (4) is connected to a first rotating shaft (5), the other end of the first rotating shaft (5) is connected to a rotating disk (6), an arc-shaped sliding groove (7) is provided on the rotating disk (6), one end of the arc-shaped sliding groove (7) is close to the center of the rotating disk (6), and the other end of the arc-shaped sliding groove (7) is close to the edge of the rotating disk (6), a cylinder (8) is slidably arranged in the arc-shaped sliding groove (7), and the other end of the cylinder (8) is vertically connected to a moving rod (9); The sliding component includes a limit block (10) fixed to the outer wall of the device body (1), two slide rails (11) are symmetrically arranged on the limit block (10), a slider (12) is slidably arranged on the slide rail (11), the two sliders (12) are connected by a moving block (13), the bottom of the moving block (13) is connected to the moving rod (9), a connecting block (14) is fixed on the side of the moving block (13) close to the device body (1), and also includes two through grooves (15) symmetrically opened on the side wall of the device body (1), and the other end of the connecting block (14) passes through the through groove (15) and is connected to the connecting plate (2).
2. A cement iron removal device according to claim 1, characterized in that: The feeding mechanism comprises a plurality of feeding ports (16) uniformly opened on the top of the device body (1), the feeding ports (16) being connected to a discharge barrel (17), the other end of which is located in the inner cavity of the device body (1) and corresponding to the iron removal mechanism.
3. A cement iron removal device according to claim 1, characterized in that: The iron removal mechanism includes a second motor (18) installed on the outside of the device body (1), the output end of the second motor (18) is connected to a second rotating shaft (19), the other end of the second rotating shaft (19) passes through the side wall of the device body (1) and extends to the inner cavity of the device body (1) and is rotatably connected to the inner wall of the device body (1), an electromagnet (20) is fixedly sleeved on the second rotating shaft (19), and the scraper plate (3) is matched with the electromagnet (20).
4. A cement iron removal device according to claim 1, characterized in that: The discharge mechanism comprises a discharge port (21) provided at the bottom of the device body (1), the discharge port (21) being connected to a discharge channel (22), a sieve plate (23) being fixed in an inclined manner in the discharge channel (22), and an ironware discharge port (24) corresponding to the sieve plate (23) being provided on one side wall of the discharge channel (22).
5. A cement iron removal device according to claim 4, characterized in that: Two material guide plates (25) are symmetrically arranged at the bottom of the inner cavity of the device body (1), and the other ends of the two material guide plates (25) are connected to the discharge port (21).
6. A cement iron removal device according to claim 1, characterized in that: The scraper plate (3) is fixed to the connecting plate (2) by means of bolts.