Linkage electromagnetic high-strength iron remover

By linking electromagnetic high-strength iron removal devices, using the linkage between a single-axis motor and a track, combined with the vibration of the dual-axis motor and the sliding plate, the continuous screening and discharge of magnetic substances is achieved, solving the problem of the accumulation of magnetic substances in the prior art that affects production efficiency and improving production efficiency.

CN223128265UActive Publication Date: 2025-07-22WEIFANG YUNHAI MACHINERY EQUIPMENT CO LTD
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Patent Information

Application Number
CN202422224738.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-11
Publication Date
2025-07-22
Estimated Expiration
2034-09-11

AI Technical Summary

Technical Problem

During the high-strength screening process of existing electromagnetic iron deleters, magnetic substances accumulate inside the device, affecting production efficiency and being unable to achieve continuous screening.

Method used

The linked electromagnetic high-strength iron decapitator is adopted to drive the driving wheel and track through a single-axis motor, and the sliding plate and electromagnetic block are driven by a dual-axis motor to realize the continuous screening and discharge of magnetic substances, and the magnetic substance disengagement device is driven by the rotation of the track.

Benefits of technology

High-strength continuous screening and discharge of magnetic substances is realized, production efficiency is improved, and the impact of shutdown and cleaning of magnetic substances is avoided.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of electromagnetic iron removal equipment, in particular to a linkage electromagnetic high-strength iron remover which comprises a first placing plate, two fixing plates are fixedly connected to the upper surface of the first placing plate, and two first sliding rods are slidably connected to the interior of each fixing plate. By arranging the single-shaft motor, the driving wheel, the driven wheel, the second crawler belt, the first rotating rod, the first crawler belt, the electromagnetic block, the first crawler belt, the first fixing block and other components, the single-shaft motor is started to drive the driving wheel to rotate, the driving wheel drives the driven wheel to rotate through the second crawler belt, and the driven wheel drives the corresponding first rotating rod to rotate; and the first rotating rod drives the first rotating rod on the other side to rotate through the first crawler belt, the first crawler belt drives the first fixing block to rotate, the magnetic substances are attracted to the outer surface of the first crawler belt through the electromagnetic block, the first crawler belt carries away the magnetic substances through rotation, the magnetic substances are discharged out of equipment internal parts, and then the high-strength continuous screening effect of the device is achieved.
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Description

Technical Field

[0001] This application relates to the technical field of electromagnetic iron removal equipment, and in particular to a linkage electromagnetic high-strength iron remover. Background Technique

[0002] An electromagnetic iron remover is used to separate magnetic substances in dry powder materials during the production of dry powder materials. Dry powder materials, such as quartz sand and gypsum powder, will incorporate iron impurities during the production process. These iron impurities seriously affect the quality of the materials and need to be subjected to corresponding iron removal treatment by an electromagnetic iron remover to ensure the quality of the dry powder.

[0003] Through retrieval, Chinese Patent Publication No. CN221311022U discloses a high-field full-automatic dry powder electromagnetic iron remover, including a machine shell. A feed hopper is arranged in the middle of the upper side of the machine shell. Its characteristics are that a magnetic conduction net assembly is installed at the lower part of the feed hopper, an electromagnetic coil is installed inside the machine shell, the magnetic conduction net assembly is arranged inside the electromagnetic coil, a three-way discharge valve is installed at the lower part of the magnetic conduction net assembly, and a double-way powder discharge box structure is installed at one discharge port of the three-way discharge valve.

[0004] Regarding the above related technologies, the inventor found the following defects: The above device cannot directly discharge the selected magnetic substances outside the device. If high-intensity continuous screening is carried out, the magnetic substances accumulate and adsorb inside the device. When the magnetic substances need to be cleaned, the screening of the dry powder can only be stopped, which affects the production efficiency. Content of the Utility Model

[0005] In order to solve the continuous screening of magnetic substances, this application provides a linkage electromagnetic high-strength iron remover.

[0006] A linkage electromagnetic high-strength iron remover provided by this application adopts the following technical solution: A linkage electromagnetic high-strength iron remover includes a first placement plate. Its characteristics are that: Two fixing plates are fixedly connected to the upper surface of the first placement plate. Two first sliding rods are slidably connected inside each fixing plate. One end of each first sliding rod away from the first placement plate is fixedly connected to a concave block. A first spring is sleeved on the outer surface of each first sliding rod. One end of each first spring is in contact with the concave block, and the other end is in contact with the corresponding fixing plate. A dual-axis motor is arranged inside the concave block. Two semi-circular blocks are fixedly connected to the two output ends of the dual-axis motor. Two second fixing blocks are fixedly connected to the outer surface of the dual-axis motor. Two second sliding rods are slidably connected inside each second fixing block. One end of each second sliding rod is fixedly connected to the inner top wall of the concave block, and the other end is fixedly connected to the inner bottom wall of the concave block.

[0007] Optionally, a plurality of second springs are in contact with the inner wall of the concave block. The inner wall of each second spring is in contact with a second sliding rod, and one end of each second spring away from the concave block is in contact with a second fixing block.

[0008] Optionally, a third fixing block is fixedly connected to the upper surfaces of the two second fixing blocks. A sliding plate is fixedly connected to the upper surface of the third fixing block, and a feed port is fixedly connected to the upper surface of the sliding plate.

[0009] Optionally, a support frame is fixedly connected to the upper surface of the first placing plate. A first rotating rod is rotatably connected to one side of each of the two corresponding support frames close to each other.

[0010] Optionally, an L-shaped block is fixedly connected to the outer surface of each support frame. An electromagnetic block is fixedly connected to one end of each L-shaped block away from the support frame. A second placing plate is fixedly connected to the upper surface of each support frame.

[0011] Optionally, a single-axis motor is fixedly installed on the upper surface of the second placing plate. A driving wheel is fixedly connected to the output end of the single-axis motor.

[0012] Optionally, a second track is provided inside the second placing plate. The inner walls of the second track are rotatably connected to the driving wheel and the driven wheel.

[0013] In summary, the present application includes the following beneficial technical effects:

[0014] 1. By arranging components such as a single-axis motor, a driving wheel, a driven wheel, a second track, a first rotating rod, a first track, an electromagnetic block, a first track, and a first fixing block, the present utility model drives the driving wheel to rotate by starting the single-axis motor. The driving wheel drives the driven wheel to rotate through the second track. The driven wheel drives the corresponding first rotating rod to rotate. The first rotating rod drives the first rotating rod on the other side to rotate through the first track. The first track drives the first fixing block to rotate. The electromagnetic block adsorbs magnetic substances to the outer surface of the first track. The first track drives the magnetic substances away through rotation, and the magnetic substances are discharged from the internal components of the device, thereby achieving the effect of high-intensity continuous screening of the device.

[0015] 2. By arranging components such as a double-axis motor, a semi-circular block, a second fixing block, a first spring, a first sliding rod, a second fixing block, a second spring, a second sliding rod, and a third fixing block, the present utility model drives the semi-circular blocks on both sides by the double-axis motor, so that the second fixing block can vibrate up and down in cooperation with the second sliding rod and the second spring. At the same time, the concave block can vibrate left and right in cooperation with the first sliding rod and the first spring. The upper and lower ends of the second sliding rod are fixedly connected to the concave block. The second fixing block drives the third fixing block and the sliding plate on the upper surface of the third fixing block to vibrate while vibrating, thereby achieving the effect of evenly spreading the dry powder material to be screened on the sliding plate. Description of the Drawings

[0016] Figure 1 It is a schematic diagram of the overall structure in the embodiment of the present application;

[0017] Figure 2 It is a schematic diagram of the vibrating structure in the embodiment of the present application;

[0018] Figure 3 It is a schematic diagram of the magnetic screening structure in the embodiment of the present application;

[0019] Figure 4 It is a schematic diagram of the material placement area in the embodiment of the present application.

[0020] Reference numerals: 1, first placement plate; 2, fixed plate; 3, first sliding rod; 4, concave block; 5, first spring; 6, biaxial motor; 7, semi-circular block; 8, second fixed block; 9, second sliding rod; 10, second spring; 11, third fixed block; 12, uniaxial motor; 13, second placement plate; 14, sliding plate; 15, support frame; 16, first rotating rod; 17, first crawler; 18, driven wheel; 19, L-shaped block; 20, first fixed block; 21, electromagnetic block; 22, driving wheel; 23, second crawler. Detailed implementation manners

[0021] The following will further elaborate on the present application in conjunction with the attached Figures 1-4 for a more detailed description of the present application.

[0022] The embodiment of the present application discloses one. As Figure 1 , Figure 2 shown, it includes a first placement plate 1. Two fixed plates 2 are fixedly connected to the upper surface of the first placement plate 1. Two first sliding rods 3 are slidably connected to the inside of each fixed plate 2. One end of each first sliding rod 3 away from the first placement plate 1 is fixedly connected to a concave block 4. A first spring 5 is sleeved on the outer surface of each first sliding rod 3. One end of each first spring 5 is in contact with the concave block 4, and the other end is in contact with the corresponding fixed plate 2. A biaxial motor 6 is provided inside the concave block 4. Two semi-circular blocks 7 are fixedly connected to the two output ends of the biaxial motor 6. Two second fixed blocks 8 are fixedly connected to the outer surface of the biaxial motor 6. Two second sliding rods 9 are slidably connected to the inside of each second fixed block 8. One end of each second sliding rod 9 is fixedly connected to the inner top wall of the concave block 4, and the other end is fixedly connected to the inner bottom wall of the concave block 4. A plurality of second springs 10 are in contact with the inner wall of the concave block 4. The inner wall of each second spring 10 is in contact with the second sliding rod 9. One end of each second spring 10 away from the concave block 4 is in contact with the second fixed block 8. Starting the biaxial motor 6 can drive the semi-circular block 7 to rotate. When the semi-circular block 7 rotates, a centrifugal force is generated. The centrifugal force can cause the entire vibrating structure to shake. The first spring 5 bears the force of the left and right shaking, and the second spring 10 bears the force of the up and down shaking to ensure the stability of the overall structure.

[0023] Please refer to Figure 2 ,Figure 4 On the upper surface of the two fixing blocks II (8), a fixing block III (11) is fixedly connected. On the upper surface of the fixing block III (11), a sliding plate (14) is fixedly connected. When the fixing block II (8) vibrates, it can drive the sliding plate (14) on the upper surface of the fixing block III (11) to vibrate. The vibration of the sliding plate (14) can evenly spread the material to be screened on the sliding plate (14). The sliding plate (14) has a certain inclination angle to restrict the flow direction of the material. A feed inlet is fixedly connected to the upper surface of the sliding plate (14), and the feed inlet can place the material to be processed.

[0024] Please refer to Figure 4 On the upper surface of the placing plate I (1), a support frame (15) is fixedly connected. On one side of the two corresponding support frames (15) close to each other, a rotating rod I (16) is rotatably connected. The rotating rod I (16) can rotate on the corresponding support frame (15). The two corresponding support frames (15) are fixedly connected to a discharge port. The discharge port is of a double-layer design, with the upper part being an iron discharge port and the lower part being a dry material discharge port.

[0025] Please refer to Figure 3 On the outer surface of the two rotating rods I (16), a track I (17) is rotatably connected. On the outer surface of one of the rotating rods I (16), a driven wheel (18) is fixedly connected. On the outer surface of the track I (17), a plurality of fixing blocks I (20) are fixedly connected at equal intervals. The track I (17) can make the two rotating rods I (16) rotate synchronously. When the electromagnetic block (21) is started, magnetic substances are attached to the track I (17), and the track I (17) cooperates with the fixing blocks I (20) to carry the magnetic substances to the iron discharge port.

[0026] Please refer to Figure 3 On the outer surface of each support frame (15), an L-shaped block (19) is fixedly connected. At one end of each L-shaped block (19) away from the support frame (15), an electromagnetic block (21) is fixedly connected. The side of the electromagnetic block (21) close to the discharge port is slightly longer than the sliding plate (14), and the electromagnetic block (21) adsorbs the magnetic substances in the dry material.

[0027] Please refer to Figure 1 On the upper surface of each support frame (15), a placing plate II (13) is fixedly connected. On the upper surface of the placing plate II (13), a single-axis motor (12) is fixedly installed. The placing plate II (13) can fix the relative position of the single-axis motor (12).

[0028] Please refer to Figure 1 On the output end of the single-axis motor (12), a driving wheel (22) is fixedly connected. Inside the placing plate II (13), a track II (23) is provided. The inner walls of the track II (23) are rotatably connected to the driving wheel (22) and the driven wheel (18). The single-axis motor (12) can drive the driving wheel (22) to rotate, and the driving wheel (22) can drive the driven wheel (18) to rotate through the track II (23).

[0029] The implementation principle of one embodiment of the present application is as follows: starting the double-axis motor 6 drives the semicircular block 7 to rotate and generate centrifugal force, the centrifugal force causes the concave block 4 and the fixed block 2 8 to vibrate through the spring 1 5 and the spring 2 10, the fixed block 2 8 vibration can make the sliding plate 14 on the fixed block 3 11 vibrate, and at the same time starting the single-axis motor 12 to make it clockwise, the single-axis motor 12 can drive the driving wheel 22 to rotate, the driving wheel 22 drives the rotating rod 16 connected to the driven wheel 18 to rotate through the crawler 2 23, the rotating rod 16 drives the other side of the rotating rod 16 to rotate through the crawler 17, at this time, put the dry powder material at the feed port, the dry powder material can be evenly spread on the sliding plate 14 through vibration, the electromagnet absorbs the magnetic material through the magnetic force and makes it adhere to the surface of the crawler 2 23, the crawler 23 and the fixed block 1 20 drive the magnetic material to rotate, so that the magnetic material is out of the range of the electromagnetic block 21, and falls at the position of the iron outlet after the magnetic force disappears, and the screened dry powder enters the dry powder outlet.

[0030] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A linkage electromagnetic high-strength iron remover, including a first placement plate (1), characterized in that: The upper surface of the first placing plate (1) is fixedly connected with two fixing plates (2). Two first sliding rods (3) are slidably connected inside each fixing plate (2). One end of each first sliding rod (3) far away from the first placing plate (1) is fixedly connected with a concave block (4). A first spring (5) is sleeved on the outer surface of each first sliding rod (3). One end of each first spring (5) is in contact with the concave block (4), and the other end is in contact with the corresponding fixing plate (2). A dual-axis motor (6) is arranged inside the concave block (4). Two semi-circular blocks (7) are fixedly connected to the two output ends of the dual-axis motor (6). Two second fixing blocks (8) are fixedly connected to the outer surface of the dual-axis motor (6). Two second sliding rods (9) are slidably connected inside each second fixing block (8). One end of each second sliding rod (9) is fixedly connected to the inner top wall of the concave block (4), and the other end is fixedly connected to the inner bottom wall of the concave block (4). The inner wall of the concave block (4) is in contact with a plurality of second springs (10). The inner wall of each second spring (10) is in contact with the second sliding rod (9). One end of each second spring (10) far away from the concave block (4) is in contact with the second fixing block (8).

2. The linkage electromagnetic high-strength iron remover according to claim 1, wherein: The upper surface of the two second fixing blocks (8) is fixedly connected with a third fixing block (11). The upper surface of the third fixing block (11) is fixedly connected with a sliding plate (14). A feed inlet is fixedly connected to the upper surface of the sliding plate (14).

3. The linkage electromagnetic high-strength iron remover according to claim 1, wherein: The upper surface of the first placing plate (1) is fixedly connected with a support frame (15). A first rotating rod (16) is rotatably connected to one side of the two corresponding support frames (15) close to each other.

4. The linkage electromagnetic high-strength iron remover according to claim 3, characterized in that: A first crawler belt (17) is rotatably connected to the outer surface of the two first rotating rods (16). A driven wheel (18) is fixedly connected to the outer surface of one of the first rotating rods (16). A plurality of first fixing blocks (20) are fixedly connected to the outer surface of the first crawler belt (17) at equal intervals.

5. A linkage electromagnetic high-strength iron remover according to claim 3, characterized in that: An L-shaped block (19) is fixedly connected to the outer surface of each support frame (15). An electromagnetic block (21) is fixedly connected to one end of each L-shaped block (19) far away from the support frame (15).

6. A linkage electromagnetic high-strength iron remover according to claim 5, characterized in that: A second placing plate (13) is fixedly connected to the upper surface of each support frame (15). A single-axis motor (12) is fixedly installed on the upper surface of the second placing plate (13).

7. A linkage electromagnetic high-strength iron remover according to claim 6, characterized in that: The output end of the single-axis motor (12) is fixedly connected with a driving wheel (22). A second crawler belt (23) is arranged inside the second placing plate (13). The inner walls of the second crawler belt (23) are rotatably connected with the driving wheel (22) and the driven wheel (18).

Citation Information

Patent Citations

  • High-field-intensity full-automatic dry powder electromagnetic iron remover

    CN221311022U