Anti-blocking medium for electromagnetic iron remover

By interlacing magnetic medium rods and designing gradually increasing gaps and iron removal rings in the electromagnetic iron separator, the problem of easy clogging of the iron removal medium is solved, thereby improving the iron removal efficiency and impurity removal effect.

CN223945845UActive Publication Date: 2026-02-27TANGSHAN SHIBANG CERAMIC FACILITIES CO LTD
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Patent Information

Application Number
CN202520445527.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2026-02-27
Estimated Expiration
2035-03-14

AI Technical Summary

Technical Problem

The iron removal medium in existing electromagnetic iron separators is easily clogged by powder, affecting the iron removal efficiency.

Method used

The magnetic medium rods are staggered along the length of the core rod, and the gap between adjacent magnetic medium rods gradually increases. Combined with the iron removal ring design, the contact area between the powder and the medium is increased and the spacing is adjusted to reduce clogging.

Benefits of technology

It effectively reduces the clogging of the iron removal medium, improves the iron removal efficiency, and enhances the removal effect on impurities.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an anti-blocking medium for an electromagnetic iron remover, and belongs to the technical field of iron removal equipment, the anti-blocking medium comprises a plurality of medium bodies which are mounted on a core rod and are sequentially arranged in the length direction of the core rod, and each medium body comprises a plurality of magnetic medium rods which are uniformly distributed in the circumferential direction of the core rod; the magnetic conductive medium rods face the side away from the core rod, the distance between every two adjacent magnetic conductive medium rods is gradually increased towards the side away from the core rod, and the same annular iron removal ring is installed at the end, away from the core rod, of the iron remover. The iron removal device has the effect of reducing the possibility of blockage of the iron removal medium.
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Description

Technical Field

[0001] This application relates to the technical field of iron removal equipment, and in particular to an anti-clogging medium for an electromagnetic iron separator. Background Technology

[0002] When producing ceramics and other products, electromagnetic separators are usually used to remove impurities such as iron powder, micro iron powder, and magnetic substances from the powder to ensure the purity of the powder before it is put into production.

[0003] Multiple iron-removing media are arranged along the length of the core rod. During use, powder is typically fed into the iron separator through a feed pipe and comes into contact with the magnetic iron-removing media mounted on the core rod. Figure 1 As shown, the common iron removal medium 4 is designed as a horizontal honeycomb structure, which facilitates the adsorption of iron onto the iron removal medium 4. The powder falls downward through the small holes on the iron removal medium, thereby separating the impurities in the powder from the powder through multiple layers of iron removal medium to ensure the purity of the powder.

[0004] The iron removal medium is designed in a honeycomb shape, which makes it easy for the powder to clog the iron removal medium when it passes through, thus adversely affecting the iron removal efficiency. Utility Model Content

[0005] To reduce the possibility of blockage by the iron removal medium, this application provides an anti-blocking medium for an electromagnetic iron separator.

[0006] The anti-clogging medium for an electromagnetic separator provided in this application adopts the following technical solution:

[0007] An anti-clogging medium for an electromagnetic iron separator includes multiple medium bodies mounted on a core rod and arranged sequentially along the length of the core rod. Each medium body includes multiple magnetically conductive medium rods evenly distributed around the core rod. The magnetically conductive medium rods face away from the core rod, and the distance between two adjacent magnetically conductive medium rods gradually increases towards the side away from the core rod. Furthermore, the end of the iron separator away from the core rod is equipped with the same annular iron-removing ring.

[0008] By adopting the above technical solution, when the powder falls and comes into contact with the medium body, the gap formed between the adjacent magnetic medium rod and the iron removal ring makes it less likely for the powder to clog the medium body, thereby reducing the possibility of iron removal medium blockage and reducing the adverse effects on iron removal efficiency.

[0009] Optionally, the end of the magnetic medium rod away from the core rod is inclined in a direction away from the feeding end.

[0010] By adopting the technical scheme, the powder that is difficult to pass through the gap between the adjacent magnetic conductive medium rods close to the one end of the core rod moves downward along the inclined surface of the magnetic conductive medium rod, and at this time, the gap between the adjacent magnetic conductive medium rods gradually increases until the gap between the adjacent magnetic conductive medium rods is adapted to the powder, so that the powder passes through the medium body, further reducing the possibility of the de-ironing medium being blocked, and reducing the adverse effect on the de-ironing efficiency.

[0011] Optionally, the magnetic conductive medium rods on the medium body and the magnetic conductive medium rods on the adjacent medium body are not in the same plane arranged along the length direction of the core rod.

[0012] By adopting the technical scheme, the medium body is staggered along the length direction of the core rod, thereby increasing the contact area of the magnetic conductive medium rod and the de-ironing ring with the powder, facilitating the removal of impurities in the powder, reducing the possibility that part of the powder is difficult to contact with the medium body, and reducing the adverse effect on the de-ironing efficiency.

[0013] Optionally, the one end of the magnetic conductive medium rod away from the de-ironing ring on the same medium body is fixedly connected with the same connecting ring sleeved on the core rod, and the adjacent connecting rings abut against the mounting ring sleeved on the core rod.

[0014] By adopting the technical scheme, the mounting ring abuts between the adjacent two connecting rings, thereby facilitating the adjustment of the interval between the adjacent medium bodies, facilitating the adjustment of the interval and the number of the medium bodies according to different impurities in the powder, and improving the applicability.

[0015] In summary, the present application has at least one of the following beneficial technical effects:

[0016] The powder that is difficult to pass through the gap between the adjacent magnetic conductive medium rods close to the one end of the core rod moves downward along the inclined surface of the magnetic conductive medium rod, and at this time, the gap between the adjacent magnetic conductive medium rods gradually increases until the gap between the adjacent magnetic conductive medium rods is adapted to the powder, so that the powder passes through the medium body, reducing the possibility of the de-ironing medium being blocked;

[0017] The medium body is staggered along the length direction of the core rod, thereby increasing the contact area of the magnetic conductive medium rod and the de-ironing ring with the powder, facilitating the removal of impurities in the powder, reducing the possibility that part of the powder is difficult to contact with the medium body, and reducing the adverse effect on the de-ironing efficiency. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 is a structural schematic diagram of a de-ironing medium in the related art.

[0019] Figure 2 is a whole structural schematic diagram of the anti-blocking medium in the embodiment of the present application.

[0020] Figure 3is a structural schematic view of the position relationship between the core rod and the medium body in the embodiment of the present application.

[0021] Figure 4 is a structural schematic view of the position relationship between the core rod and the mounting ring in the embodiment of the present application.

[0022] Reference signs: 1, core rod; 11, bottom support; 2, medium body; 21, magnetic conductive medium rod; 22, iron removal ring; 23, connecting ring; 3, mounting ring; 4, iron removal medium. DETAILED DESCRIPTION

[0023] The present application will be further described in detail below with reference to the accompanying drawings.

[0024] The embodiment of the present application discloses an anti-blocking medium for electromagnetic iron remover. Figure 2 and Figure 3 The anti-blocking medium for electromagnetic iron remover comprises a plurality of medium bodies 2 mounted on a core rod 1, and each of the medium bodies 2 comprises a plurality of magnetic conductive medium rods 21 uniformly distributed in the circumferential direction of the core rod 1, which are provided as ten in the embodiment of the present application and are arranged in the diameter direction of the core rod 1.

[0025] The bottom support 11 supporting the medium body 2 is fixedly connected to the lower end of the core rod 1, and the end of the magnetic conductive medium rod 21 on the same medium body 2 close to the core rod is fixedly connected with the same connecting ring 23 sleeved on the core rod 1, and when the medium body 2 is mounted on the core rod 1, the ends close to each other of the adjacent connecting rings 23 are in contact.

[0026] The end of the magnetic conductive medium rod 21 on the same medium body 2 away from the core rod 1 is inclined downward and fixedly connected with the annular iron removal ring 22, the gap between the adjacent magnetic conductive medium rods 21 gradually increases to the side close to the corresponding iron removal ring 22, and each magnetic conductive medium rod 21 on the medium body 2 is not in the same vertical plane as the magnetic conductive medium rod 21 on the adjacent medium body 2.

[0027] Referring to Figure 4 The mounting ring 3 sleeved on the core rod 1 is arranged between the adjacent connecting rings 23, and the end portions of the connecting rings 23 located on both sides of the mounting ring 3 are in contact with the corresponding mounting ring 3, so that the spacing between the adjacent medium bodies 2 is adjusted through the mounting ring 3, the spacing and the number of the medium bodies 2 are adjusted according to the different impurities in the powder, and the applicability is improved.

[0028] When the powder falls and contacts with the medium body 2, the magnetic conductive medium rod 21 and the de-ironing ring 22 remove the impurities in the powder, the powder falls through the gap between the adjacent magnetic conductive medium rod 21 and the de-ironing ring 22, and part of the powder which is difficult to pass through the gap between the adjacent magnetic conductive medium rod 21 close to the one end of the core rod 1 moves downward along the inclined surface of the magnetic conductive medium rod 21, at this time, the gap between the adjacent magnetic conductive medium rod 21 gradually increases until the gap between the adjacent magnetic conductive medium rod 21 is adapted to the powder, so as to pass through the medium body 2, reducing the possibility of de-ironing medium blockage.

[0029] The medium body 2 is staggered along the length direction of the core rod 1, increasing the contact area between the magnetic conductive medium rod 21 and the de-ironing ring 22 and the powder, facilitating the removal of the impurities in the powder, and reducing the possibility that part of the powder is difficult to contact with the medium body 2.

[0030] The implementation principle of the anti-blocking medium for the electromagnetic de-ironing device is that part of the powder which is difficult to pass through the gap between the adjacent magnetic conductive medium rod 21 close to the one end of the core rod 1 moves downward along the inclined surface of the magnetic conductive medium rod 21, at this time, the gap between the adjacent magnetic conductive medium rod 21 gradually increases until the gap between the adjacent magnetic conductive medium rod 21 is adapted to the powder, so as to pass through the medium body 2.

[0031] The above are the preferred embodiments of the present application, and are not intended to limit the protection scope of the present application, therefore: any equivalent changes made according to the structure, shape, principle of the present application should be covered within the protection scope of the present application.

Claims

1. A clogging-preventing medium for an electromagnetic iron remover, characterized by: The device comprises a plurality of medium bodies (2) installed on a core rod (1) and arranged along the length direction of the core rod (1) in sequence, each of the medium bodies (2) comprises a plurality of magnetically conductive medium rods (21) uniformly distributed along the circumference of the core rod (1), the magnetically conductive medium rods (21) are inclined towards the side away from the core rod (1), the distance between two adjacent magnetically conductive medium rods (21) gradually increases towards the side away from the core rod (1), and the same annular de-ironing ring (22) is installed at the end of each of the de-ironing devices away from the core rod (1).

2. The anti-blocking medium for electromagnetic tramp-iron detectors according to claim 1, characterized in that: The end of each of the magnetically conductive medium rods (21) away from the core rod (1) is inclined towards the direction away from the discharging end.

3. The anti-blocking medium for electromagnetic tramp-iron detectors according to claim 2, characterized in that: The magnetically conductive medium rods (21) on the medium body (2) and the magnetically conductive medium rods (21) on the adjacent medium body (2) are not in the same plane arranged along the length direction of the core rod (1).

4. The anti-blocking medium for electromagnetic tramp-iron detectors according to claim 2, characterized in that: The end of each of the magnetically conductive medium rods (21) on the same medium body (2) away from the de-ironing ring (22) is fixedly connected with the same connecting ring (23) sleeved on the core rod (1), and the abutting surfaces of the adjacent connecting rings (23) are provided with the mounting ring sleeved on the core rod (1).