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Remove ferromagnetic tramp metal from conveyor-fed bulk materials before it reaches crushers, screens, shredders, mills or other vulnerable equipment. The right separator depends on your conveyor layout, material conditions, tramp iron type and operating requirements. Corvelan supplies manual suspended magnets and self-cleaning overband separators for bulk material handling applications.
A conveyor photo or drawing is enough to start. Send the data you already have; missing information can be confirmed during the discussion.
Start with your material and conveyor conditions, then select the separator type that best fits your working environment. The right configuration depends on your conveyor layout, tramp iron level and operating needs.
| Configuration | Starting point | Confirm for the duty | Product details |
|---|---|---|---|
| Manual suspended permanent magnet | Occasional tramp iron where planned manual cleaning and safe access are practical. | Cleaning frequency, burden depth, target position, belt width and working distance. | Suspended Permanent Magnet Separator |
| Permanent self-cleaning overband | Captured ferrous material needs automatic discharge during conveyor operation. | Reject direction, discharge space, conveyor speed, burden, support structure and maintenance access. | Overband Suspended Permanent Magnet Separator |
| Electromagnetic self-cleaning cross-belt | The project is considering an electromagnetic arrangement with self-cleaning discharge. | Electrical supply, cooling arrangement, working distance, duty conditions and agreed test basis. | Self-Cleaning Cross-Belt Electromagnetic Separator |
| Magnetic head pulley | Ferrous separation is being considered at the conveyor head-pulley position. | Material presentation, belt construction, target size, discharge trajectory and downstream layout. | Magnetic Pulley Separator |
Remove ferromagnetic tramp such as bolts, steel fragments, nails, wire and other responsive iron-bearing pieces before they reach crushers, mills, screens, shredders or similar equipment.
Extract unwanted iron and steel from conveyed bulk material before the next production, handling or separation stage.
Reduce the risk that a large ferrous object becomes a blockage, damages downstream equipment or creates an avoidable process interruption.
Cleaning duty should be decided from iron loading, operating continuity and safe access. A self-cleaning belt is useful when automatic discharge is justified, but it also adds drive, tracking, guarding and maintenance interfaces.

Best starting point when: tramp iron is occasional, planned cleaning is acceptable and safe manual access can be provided.
Consider: working distance, accumulation level, suspension points, cleaning access and clearance for larger captured pieces.

Best starting point when: tramp iron is frequent, captured metal must discharge automatically or repeated cleaning stops are undesirable.
Consider: discharge direction, belt tracking, installation space and maintenance access.
Neither arrangement is automatically stronger. The better layout is the one that gives the magnet enough working distance while keeping installation, cleaning and maintenance practical.

The separator runs across the main conveyor and normally sends captured iron to a side collection point.

The separator follows the material travel direction, commonly near the conveyor discharge where material trajectory and available clearance can be reviewed together.
The magnet should be installed where it can remove tramp iron effectively and remain easy to operate and maintain.
Place the separation point upstream of crushers, shredders, screens, mills or other equipment when the main objective is tramp-iron protection.
Review an overhead position when retrofitting an existing conveyor and suitable headroom, support, burden depth and side-discharge space are available.
Review the head-end area when material trajectory, conveyor geometry and available longitudinal space make an inline arrangement practical.
Bulk material travels through the selected separation point at the actual belt speed and burden depth.
Responsive ferrous pieces experience magnetic attraction while distance, gravity, material drag and entrapment oppose capture.
A manual unit holds captured metal at the magnetic face. A self-cleaning unit retains it against the moving cleaning belt.
Manual units are cleaned during a controlled stop. Self-cleaning units carry metal beyond the effective magnetic zone into a planned collection area.
The hardest tramp iron to remove is usually the piece buried deepest inside the material. That is why separator selection should consider your actual conveyor conditions.
Deeper material increases the magnetic path to iron travelling near the belt. Normal and peak burden should both be reviewed.
Define the distance from the magnetic face to the target iron, including mechanical clearance and the target location inside the burden.
Higher speed reduces exposure time in the useful magnetic zone and can change material trajectory near a conveyor discharge.
Size, shape, mass, orientation, magnetic response and frequency all matter. A long steel bar and a compact steel piece are not equivalent targets.
Particle size, bulk density, moisture, lumping, feed stability and interlocking can affect how easily ferrous contamination can be pulled free.
Crossbelt or inline position, trough shape, surrounding steel, discharge route and available clearance affect practical operation and serviceability.
Send a conveyor photo and the operating data already available. A simple conveyor photo is often enough to start the discussion.
When a suspended magnetic separator underperforms, the problem is often the real conveyor condition rather than a single catalog number.
The visible gap above the belt may look acceptable while the deepest target iron is much farther from the magnetic face.
Iron buried at the bottom of a deep or uneven burden is more difficult to lift than contamination already near the surface.
Higher speed reduces the time available for a target to respond inside the useful magnetic zone.
Ferrous idlers, beams, chutes or nearby structure can alter the magnetic circuit and complicate the intended separation point.
Captured iron needs a clear route to a collection area so it does not strike equipment or fall back into the product stream.
A surface reading does not define working-distance field, pull force or actual capture performance under conveyor conditions.
Surface flux density is one measurement at one location. It is not the same thing as magnetic field at the target, field gradient, pull force or tramp-iron removal efficiency. Compare magnetic values only when the measurement position and method are defined, then evaluate them against the real working distance and target.
A conveyor magnetic separator should match your conveyor conditions and material type. The information below helps us recommend a suitable separator configuration.

| Conveyor | Belt width, belt speed, flat or troughed profile, normal and peak burden depth, and material trajectory near discharge. |
|---|---|
| Structure | Available headroom, support and suspension points, lifting access, and available side or longitudinal clearance. |
| Magnetic Zone | Magnet-face reference position, deepest expected target distance, nearby steelwork and clearance for large tramp pieces. |
| Iron Discharge | Side or end discharge route, collection chute or bin, largest expected captured piece, and prevention of iron falling back into product. |
| Maintenance | Manual-clean access where applicable, cleaning-belt service space, drive/pulley access, guarding and lockout points. |
| Site Conditions | Operating hours, cleaning frequency, temperature, dust/corrosion exposure, and site electrical or safety requirements for driven equipment. |

Electrical, safety and certification requirements depend on the selected equipment and site conditions. Any CE, ATEX, IP or other certification requirements should be confirmed with the final quotation.
Do not force an overhead suspended magnet into every process. The correct separator family depends on where the material and target can be presented most effectively.
Magnetic separator performance should be compared under the same test conditions. This helps customers understand how different separators perform in real conveyor applications.

Magnetic readings should be compared using the same measurement method and distance. A surface Gauss value alone does not show actual separation performance on a conveyor.
Test results should use a representative tramp iron size, material condition and conveyor operating condition.
Confirm the approved position, support, clearance, discharge path, guarding and agreed process interface after installation.
A conveyor magnetic separator should not be compared by a single “standard price” when the duty and installation are different. The quotation changes as the engineering requirement changes.
The conveyor width, trough profile and available installation space influence the required equipment envelope and support interface.
Deeper burden or a larger magnetic path can change the magnetic duty that must be reviewed.
The expected size, shape, mass, frequency and position of the target affect the required separation duty.
Automatic discharge adds cleaning belt, drive, pulley, guarding and service interfaces that are not present on a manual-clean magnet.
Support steel, chute/bin arrangement, lifting access and surrounding conveyor structure affect integration scope.
Environmental, electrical, guarding and other project-specific requirements must be defined against the quoted equipment scope.
You do not need a finished specification before contacting Corvelan. Send the information you already have; a conveyor photo or layout drawing can often resolve several questions at once.
It is a magnetic separation unit installed above a conveyor or around a conveyor discharge area to attract and remove responsive ferromagnetic tramp metal from a moving bulk-material stream. Common routes include a manual-clean suspended magnet and a self-cleaning overband separator.
Typical targets include responsive iron and steel pieces such as bolts, nails, wire, steel fragments and similar tramp material. Whether a particular piece can be captured depends on its size, shape, orientation, magnetic response, location in the burden and the actual operating condition, so critical targets should be defined or tested.
A manual suspended magnet holds captured ferrous metal at the magnetic face until it is cleaned during a controlled stop. A self-cleaning overband adds a moving cleaning belt that carries captured metal out of the active magnetic zone for separate discharge.
Start from iron loading, cleaning access and operating duty. Manual cleaning can fit occasional tramp iron where safe planned cleaning stops are acceptable. Self-cleaning is normally reviewed when iron appears frequently, automatic discharge is required or repeated manual cleaning would interfere with operation.
A crossbelt unit runs across the main conveyor and normally discharges captured iron to the side. An inline unit follows the material travel direction, commonly near the discharge area. Select the layout from burden presentation, material trajectory, support structure, discharge route, headroom and maintenance space; neither arrangement is automatically stronger.
The best position is where the target iron can be reached and removed before the protected process step. Common positions include above the carrying run, upstream of vulnerable equipment, or near a conveyor discharge. Final placement depends on burden depth, working distance, material trajectory, support structure, discharge route and maintenance access.
There is no reliable universal height. The required position depends on conveyor geometry, burden depth, target iron, mechanical clearance and the selected magnetic circuit. The useful reference is the real magnetic path from the separator face to the hardest target, not a generic catalog gap.
No. A Gauss reading describes flux density at a defined point; it does not by itself specify field gradient, pull force or capture efficiency at the real working distance. Burden depth, belt speed, target size and shape, material behavior and installation geometry also affect capture.
For an initial review, send the material, conveyor belt width, belt speed, normal or maximum burden depth, target tramp iron and a conveyor photo or drawing. Additional site, environmental, electrical, discharge and acceptance information can be added after the equipment route is screened.
Send Corvelan the belt width, speed, burden depth, target tramp iron and a conveyor photo or drawing. We will help review your conveyor conditions, recommend a suitable separator type and confirm the details needed for the final configuration.