Dry Drum Magnetic Separator for Dry Bulk Ferrous Separation

Use a dry drum magnetic separator when dry bulk material needs continuous removal of iron or other strongly magnetic material. This type of dry magnetic drum separator works best with stable, free-flowing feed. We match the drum to your material, feed depth, target and installation. We do not choose the machine from one Gauss number alone.

Best forDry, free-flowing or controllable bulk material
SeparatesFerrous tramp metal or a strongly magnetic fraction
FeedChute, feeder, conveyor discharge or controlled gravity feed
Selection depends onMaterial, particle size, feed rate, feed depth, target and installation
Dry drum magnetic separator with feed hopper drum and support frame
Quick Fit

Is a Dry Drum Magnetic Separator Right for Your Material?

Choose a dry drum when the material flows freely and the target is iron or strongly magnetic. You also need enough space to keep the two separated material streams apart. If one of these conditions is missing, fix the feed or choose another separator type before sizing the drum.

Use a Dry Drum

Dry, Controllable Feed

Use this setup for dry minerals, aggregate, granules, pellets or recycling streams when the feed can be spread across the drum and the target is ferrous or strongly magnetic.

Fix the Feed First

Surging, Deep or Sticky Feed

If too much material arrives at once, the feed layer becomes too deep or uneven. We first stabilize the feed. A feeder, gate, chute change or wider feed path can help more than simply using a stronger magnet.

Choose Another Separator

Slurry, Non-Ferrous or Weak Target

Use wet magnetic separation for slurry. Use a non-ferrous sorting method for aluminum, copper or brass. For very fine weakly magnetic material, compare a higher-intensity dry separator instead of assuming a standard dry drum will work.

Separation Goal

What Are You Trying to Separate?

The material name alone is not enough to select the drum. Removing tramp iron, recovering a magnetic product and cleaning a non-magnetic product are different jobs. We set up and test the separator differently for each one.

A. Remove Tramp Iron

Choose this duty when the main goal is to remove bolts, nails, wire, steel pieces or other ferrous contamination before a crusher, mill, conveyor, process machine or final product stream.

We check: target size, how much iron is normally present, feed width, feed depth, impact and discharge space. Feed depth is often called burden depth. We also check the working distance, which is the distance between the target and the magnetic system.

B. Recover a Magnetic Product

Choose this duty when the magnetic material itself must be recovered, upgraded or separated from a non-magnetic fraction.

We check: particle size, feed stability, recovery, product purity and product loss. We also check whether the magnetic mineral has physically separated from the other material. In mineral processing, this is called liberation.

C. Clean the Non-Magnetic Product

Choose this duty when the clean non-magnetic stream is the product that matters most.

We check: contamination before and after separation and how much good material is carried into the magnetic reject. Removing more material is not a good result if too much saleable product is lost with it.

Working Principle

How Does a Dry Drum Magnetic Separator Work?

A dry magnetic drum sends magnetic and non-magnetic material along different paths. The rotating shell carries the feed through the magnetic zone. Magnetic material stays with the drum longer, while non-magnetic material leaves earlier. An adjustable splitter keeps the two product streams apart.

Controlled Feed
Magnetic Working Zone
Different Material Paths
Splitter
Separate Products
Do not select from Gauss alone. A high surface field cannot fix a feed layer that is too deep or uneven. It also cannot fix too much distance from the magnet, the wrong drum speed or a splitter that lets the products mix again.

What the Drum and Drive Assembly Looks Like

This real equipment photo shows the drum, shaft and drive arrangement used in a dry-drum machine.

What to look at: drum support, shaft position, motor and drive access. Final magnetic configuration is confirmed for the selected machine.

Dry drum magnetic separator drum assembly with motor shaft and drive

Real dry drum assembly from the supplied product materials, showing the drum, shaft, motor and drive arrangement.

Selection Rules

Four Rules We Use Before We Size a Dry Drum

We choose the process first and the exact drum second. These four rules prevent a good magnetic drum from being used in the wrong feed condition.

1. Fix Unstable Feed First

If material arrives in deep surges or piles on one side, we correct the feed before asking for more magnetic strength.

2. Do Not Choose From Gauss Alone

Surface Gauss is only one measurement. Feed depth, distance from the magnetic system, drum speed and splitter position also affect the result.

3. Recovery and Purity Are Different Goals

A setup that captures more magnetic material can also carry more normal material with it. We confirm which result matters more before the final setup is chosen.

4. Match the Separator to the Feed and Target

Dry drums suit dry or slightly damp material that still flows freely. Slurry, sticky feed, non-ferrous targets and very weak magnetic material may need another separator type.

Equipment Selection

Which Separator Should You Use for Each Process Condition?

Start with the feed and target, then choose the machine. The table below shows how we separate common dry-drum applications from cases that should use a different arrangement.

Your material or processWhat we recommendWhat we check next
A. Dry, free-flowing feed + ferrous or strongly magnetic targetChoose a dry drum magnetic separator.Set the feed width, feed depth, useful drum width, magnetic zone, speed, splitter and discharge to match the real line.
B. Dry mineral + magnetic product recoveryUse a dry drum to recover the magnetic material.Check particle size, how well the minerals are separated, the recovery you need, product purity, product loss and how the test sample will be measured.
C. Main goal is large tramp iron protection on an existing conveyorCompare a suspended magnet before adding a separate drum.If the contaminant can be lifted from the belt, keep the conveyor arrangement simple rather than creating an unnecessary transfer point.
D. Separation can happen directly at the conveyor headCompare a magnetic head pulley.Use a separate drum only when an independent feed, drum speed, magnetic zone or discharge arrangement gives a process advantage.
E. Gravity feed from a chute or hopperUse a dry drum with controlled feed and two discharge paths.Set the drum and splitter around where the material naturally falls, the feed width and the actual feed depth.
F. Vibrating feeder supplies the drumKeep the dry drum and use the feeder to control layer depth.Set feeder distribution, useful drum width, material path and splitter together.
G. Feed arrives in deep surgesDo not solve the problem with magnetic strength alone.Add feed control, reduce peak feed depth or improve distribution before final drum selection.
H. Material is slightly damp but still free-flowingA dry drum can still be used.Confirm that the material spreads evenly and does not build up on the drum, chute or splitter.
I. Material is sticky, clumped or bridgingDo not use a standard dry-drum arrangement until the feed is corrected.Improve drying or feeding so the material can flow evenly. If that is not practical, choose equipment that is better suited to sticky material.
J. Target is very fine and weakly magneticCompare a higher-intensity dry separator.Test a sample that matches the real feed to see whether a rare-earth roll, induced-roll separator or another high-intensity method is a better fit.
K. Material is wet slurry or pulpDo not use this dry-drum configuration.Use wet magnetic separation and define solids, particle size, target and slurry condition.
L. Target is aluminum, copper, brass or another non-ferrous metalDo not use a magnetic drum as the primary sorter.Choose a separation method matched to non-ferrous metal response.
M. Feed is highly abrasiveUse a dry drum only with wear protection designed into the contact areas.Check the impact point, drum shell exposure, liners, replaceable wear parts and maintenance access before the machine is confirmed.
N. Feed contains large impact piecesProtect the drum before increasing magnetic duty.Check drop height, impact zone, shell protection, support and chute geometry.
O. Installation space is tightChoose the machine from the space you actually have, not from a catalogue drum size.Check drive side, bearings, supports, splitter travel, chute angles, lifting space and maintenance clearance.
Configuration

How We Configure Your Dry Drum Magnetic Separator

We set the drum around the whole material flow. Feed width, feed depth, where the material falls, the magnetic zone, drum speed and splitter must work together.

What changes in the processHow we set up the separatorWhy
Narrow feed streamMatch the useful drum face to the real feed width and expected lateral movement.Avoid bypass while avoiding unnecessary width.
Wide conveyor dischargeCover the full effective material width and control side-to-side distribution.Uneven loading can overload one part of the drum.
Deep feed layerReduce the feed depth, spread the material more evenly or change the feed arrangement before relying on a stronger magnet.Particles buried deep in the feed are farther from the magnet, so they are harder to capture.
High abrasionAdd wear protection at the shell, impact and chute contact areas as required by the material.Durability must be solved at the contact points.
Dusty processUse an enclosed feed/discharge interface and include dust extraction connections when the line requires them.Dust control is part of the installation, not an afterthought.
Gravity feedSet the drum and splitter around where the material naturally falls.The natural drop path determines where separation can be made cleanly.
Conveyor dischargeSet drum position from belt speed, drop point, feed depth and available discharge space.Material leaving a moving conveyor follows a different path from material falling from a fixed chute.
Recovery is the prioritySet the feed and splitter to keep more magnetic material, then check how much normal material is carried with it.The first priority is preventing magnetic material from escaping to the non-magnetic product.
Concentrate purity is the priorityUse a stable, thin feed and make sure the magnetic particles are well separated from the other material. Then adjust the splitter to reduce normal material carried into the magnetic product.High magnetic capture alone does not guarantee a clean concentrate.
Performance

What Controls Separation Performance—and What Do We Change?

Most separation problems come from three things: how the material reaches the drum, how strongly the target reacts to the magnet, and where the two products leave the drum. We fix the cause first. A higher Gauss number is not the answer to every separation problem.

Feed Layer Too Deep

We reduce the feed depth or spread the material more evenly. This brings more target particles closer to the magnetic system. A stronger magnet alone is not the first fix.

Uneven Feed Across the Drum

We correct the feeder or chute so one side of the drum is not overloaded while the other side is underused.

Low Magnetic Recovery

We check how strongly the target reacts to the magnet and how deep the feed is. We also check the distance from the drum, feed rate and splitter position before changing the machine type.

Too Much Non-Magnetic Carryover

We check whether the particles are properly separated, how deep the feed is, drum speed and splitter position. The goal is to stop normal product from being pulled into the magnetic stream unnecessarily.

Fine or Damp Material Builds Up

We correct flow, chute angle, surface condition and cleaning access. If the material no longer spreads freely, the process should not be treated as a standard dry feed.

Products Remix After Separation

We change the splitter and discharge path. Good magnetic separation is wasted if the two products fall back into the same chute.

Gauss ≠ pull force ≠ separation result. Surface magnetic-field readings are useful only when the measurement position and magnetic design are known. Final process performance must be judged from the material result under defined feed conditions.
Operating Priority

Should You Prioritize Recovery or Product Purity?

Choose the priority before testing. A setup that captures more magnetic material can also carry more normal material with it. Recovery and product purity are not the same target.

Recovery First

Choose this when the main loss is magnetic material escaping into the non-magnetic product. We keep the feed stable and set the splitter to retain more magnetic material. Then we measure how much normal material comes with it.

Purity First

Choose this when too much normal material is ending up in the magnetic product. We use a stable, thin feed, make sure the particles are well separated, and adjust the splitter to reject more non-magnetic material.

High Recovery + High Purity

Do not approve a single drum from catalogue data alone. Test a sample that matches the real feed and agree on the result you need. If one pass cannot meet both targets, use a second separation stage or a cleaning step.

Avoid the Wrong Setup

What Happens If the Separator Is Selected Wrong?

A magnetic drum can be mechanically sound and still perform poorly if the feed, splitter or separator type is wrong. We check the cause before changing magnetic strength.

Wrong setupWhat can happen in productionWhat we change first
Feed layer is too deepMagnetic particles can remain buried too far from the magnetic system and leave with the non-magnetic stream.Reduce peak feed depth or spread the feed across more working width.
Feed is uneven across the drumOne part of the drum becomes overloaded while another part is underused, so separation becomes less stable.Correct the chute, feeder or distribution before changing the magnetic system.
Working drum width is too narrowPart of the material can bypass the useful separation area.Match the working width to the real feed width and side-to-side movement.
Splitter position is wrongMaterial that has already separated can mix again below the drum.Adjust the splitter around where the two product streams actually fall.
Drum speed does not match the jobMagnetic material can release too early, carry too far, or reduce useful capacity.Set speed together with feed condition, magnetic response and splitter position.
No wear protection where it is neededShell, chute or contact-area wear can increase repair work and unplanned shutdown risk.Add replaceable wear protection at the actual impact and abrasion points.
Standard dry drum used for a weak magnetic targetSeparation may remain poor even when the surface field looks high.Compare a higher-intensity magnetic separator and test the real material.
Dry drum used for slurry or the wrong material typeThe machine adds cost and another transfer point without solving the real separation problem.Choose wet magnetic separation, non-ferrous sorting or another method that matches the feed.
Machine Details

What We Confirm Before You Order

Your quotation should describe the machine proposed for your line, not a generic catalogue drum. Exact values are confirmed from the selected machine, your layout and any agreed test requirements.

Machine itemWhat sets itHow we confirm itWhy it matters
Feed methodConveyor discharge, gravity chute, feeder or transfer pointLine sketch, photo or installation drawingControls how the material reaches the magnetic working zone.
Useful drum widthReal feed width and side-to-side movementFeed dimensions and approved machine drawingThe full stream must pass through the useful drum area without bypass.
Drum size and layoutMaterial path, available space and separation jobQuotation and approved general arrangement drawingAffects the working area, material path, supports and maintenance space.
Magnetic working zoneTarget response, feed depth and distance from the magnetic systemSelected magnetic arrangement; field measurement can be agreed when requiredDetermines where the target can be attracted and carried.
Drum speedFeed behavior and where each product needs to leave the drumDrive selection and agreed operating settingChanges contact time, holding time and release point.
Splitter arrangementWhere the magnetic and non-magnetic products fallDrawing plus adjustment rangeControls remix, recovery and product loss.
Wear protectionAbrasion, impact and contact conditionMaterial condition plus the supplied wear parts listed in the quotationProtects high-wear areas and makes planned maintenance easier.
Housing and chute connectionDust, feed control, discharge and available spaceInstallation drawing and interface dimensionsConnects the separator to the real production line.
Drive and controlsMachine duty, site power and control requirementElectrical and mechanical information for the selected machineShows how the separator connects to the line.
How the result will be checkedIron removal, recovery, product purity or remaining contaminationAgreed material test or inspection method when requiredPrevents a surface Gauss reading from being treated as the final process result.
Final values are confirmed for the selected machine. The quotation and approved drawing can list the agreed drum dimensions, speed, power, magnetic readings, materials and interface dimensions. When a material test is part of the order, the test conditions and measured result should be recorded separately.
Family Reference Data

Reference SXGT Magnetic Drum Configurations

These values are useful for early size screening. Existing technical material for the SXGT magnetic drum family lists the reference models below. Final drum size, drive, interfaces and operating duty are still confirmed for the selected machine and your actual line.

Reference modelReference belt widthDrum size (diameter × length)Motor powerWeight
SXGT-08101000 mmΦ800 × 1000 mm3.0 kW1600 kg
SXGT-08121200 mmΦ800 × 1200 mm3.0 kW1700 kg
SXGT-10121200 mmΦ1000 × 1200 mm4.0 kW1800 kg
SXGT-10161600 mmΦ1000 × 1600 mm4.0 kW2050 kg
SXGT-12121200 mmΦ1200 × 1200 mm5.5 kW1490 kg
SXGT-12161600 mmΦ1200 × 1600 mm5.5 kW2170 kg
SXGT-16141400 mmΦ1600 × 1400 mm7.5 kW3030 kg
SXGT-16161600 mmΦ1600 × 1600 mm7.5 kW3440 kg

Permanent Magnetic Source

The SXGT family material specifies high-performance NdFeB permanent magnets as the magnetic source for this documented family.

Continuous Iron Discharge

The documented family is designed for continuous automatic discharge of captured magnetic material rather than routine manual cleaning of the drum surface.

Control Options

The family material lists local manual control and centralized control, with conveyor interlocking available where the project requires it.

Use these numbers as family-level reference data, not as a universal promise. The selected quotation and approved drawing should state the actual model, drum dimensions, drive and control scope for your project.
When Not to Use It

When We Would Not Recommend a Standard Dry Drum

We do not force a dry drum into every magnetic separation job. When another arrangement gives a cleaner process or a more practical installation, we change the equipment choice.

Wet Slurry or Pulp

We move the project to wet magnetic separation. The dry drum on this page is not the correct process for a slurry feed.

Very Fine Material That Is Only Weakly Magnetic

We compare a higher-intensity separator and use testing with material that matches the real feed when clean separation is critical.

Sticky or Bridging Feed

We solve the feed behavior first. If the material cannot be spread consistently, a standard dry-drum arrangement will not give stable separation.

The Conveyor Head Can Already Do the Separation

We compare a magnetic head pulley before adding a separate drum, feeder and transfer chute.

You Only Need to Remove Iron From the Top of a Conveyor

We compare a suspended magnet when the target can be removed directly from an existing conveyor without changing the material path.

Non-Ferrous Metal Sorting

We use another separation method for aluminum, copper, brass and other non-ferrous targets.

Installation

How We Integrate the Feed, Drum and Discharge

The separator should work as part of the whole line, not as an isolated drum. Material must reach the drum evenly. The target must pass close enough to the magnetic system, and the two separated streams need enough space to leave without mixing again.

  • Feed width and distribution: the full material stream must pass through the useful drum area.
  • Normal and peak feed rate: peak surges can make the feed layer much deeper than normal.
  • Drop height and impact: large impact energy may require chute changes or wear protection before the drum.
  • Drum support and drive access: bearings, drive components and guards need service space.
  • Splitter adjustment: the divider needs enough adjustment to match where the two products actually fall.
  • Separate discharge chutes: the magnetic and non-magnetic products must not remix below the separator.
  • Dust and wear: enclosed interfaces, liners or replaceable wear areas are added when the process requires them.
  • Lifting and maintenance clearance: the installation must allow safe access to the parts that will actually be serviced.

If the upstream equipment cannot give the drum a stable feed, we add or specify the required feed-control arrangement before finalizing the separator.

Maintenance & Safety

What Will Need Attention During Service?

Continuous discharge does not mean maintenance-free operation. We leave practical access around the parts that wear, rotate or need adjustment so routine service does not require unnecessary dismantling.

PartWhat to checkWhy it mattersWhat we confirm before production
Drum shell / contact surfaceWear, buildup and impact damageWear or buildup can change the material path and increase repair work.Shell arrangement and any agreed liner or wear protection.
BearingsNoise, temperature, looseness and accessBearing problems can stop the drum and cause unplanned downtime.Bearing position and service clearance for the selected machine.
DriveAlignment, guarding and normal operationThe drive must keep the drum running steadily at the selected speed.Drive side, motor/gearbox arrangement and access.
SplitterWear, position and movementA worn or misplaced splitter can mix the two product streams again.Adjustment range and access for the selected layout.
Feed and discharge chutesWear, blockage and material buildupRestricted flow can change feed depth and separation stability.Chute connection, drop point and any agreed wear areas.
Guards and access panelsCondition and safe accessStrong magnets and rotating equipment require controlled maintenance access.Guarding and access points included with the selected machine.
Tell us about special site conditions before we finalize the machine. Combustible dust, special electrical zones, hygiene rules, temperature limits or required certifications can change the supplied setup. We only include certifications that are specifically agreed for the selected machine.
Checks Before Delivery

How We Define Checks Before Delivery

We agree the inspection points that matter for the selected machine. Dimensions, drive operation, adjustment, magnetic readings and records can be included when they are part of the quotation or test plan.

Dimensions

Machine and Interface Dimensions

Check the main machine dimensions, feed and discharge connections, supports and other agreed interfaces against the approved drawing.

Mechanical

Drum Rotation and Drive

Where required, check rotation direction, drive operation, visible vibration, guards and accessible moving parts before shipment.

Magnetic

Magnetic Field Reading

If a field reading is part of the order, record the measurement position and instrument with the result. A number without the measurement point is incomplete.

Adjustment

Splitter and Moving Adjustments

Check that the splitter or other agreed adjustment points move through the required range and can be secured for operation.

Wear

Wear Parts and Contact Areas

Confirm the wear protection, liners or replaceable contact parts listed for abrasive or high-impact material.

Records

Agreed Inspection Records

If inspection photos, measurement sheets, a material test or a factory acceptance test are required, list them in the quotation before the order is confirmed.

Final Assembly

Guards, Fasteners and Access

Check the visible final assembly, guards, access points and supplied components against the agreed machine setup.

Packing

Machine Identification and Packing

Confirm the machine identity and the agreed packing requirements before dispatch when these items are part of the order.

Before shipment: the agreed machine checks, drawings, inspection records and packing requirements should match the selected machine and the quotation. Measured results are only stated when the matching inspection or test record is included for the order.

Workshop Assembly Before Final Checks

This real workshop photo shows a dry-drum machine during assembly. We use assembly access to check the visible machine structure, drive position, supports and service areas before the final inspection items agreed for the order are completed.

For the order: measured dimensions, magnetic readings or running results are confirmed only when the matching inspection or test record is included.

Dry drum magnetic separator during workshop assembly

Real workshop assembly image from the supplied product materials.

Testing

How Should a Dry Drum Magnetic Separator Be Tested?

The test should match the job. Iron removal, magnetic recovery and product cleaning need different measurements. If the result is critical, agree on the material, feed condition and result to check before production starts.

A. Tramp Iron Removal

Use representative iron pieces and feed them in the same way the production line will. Record the target size and loading, feed condition, feed depth, machine settings, what was captured and what remained in the product stream.

What to record: counted targets + feed condition + captured/remaining count + photos or video.

B. Magnetic Recovery

Record the feed mass, magnetic-product mass and non-magnetic-product mass. When needed, also measure magnetic product quality, magnetic material left in the non-magnetic stream, recovery and valuable product loss.

What to record: mass balance + sample identification + product analysis + machine settings.

C. Product Purification

Measure the contamination remaining in the clean product and also measure normal product carried into the magnetic reject. Removing more material is not a good result if too much saleable product is lost with it.

What to record: contamination before/after + product loss + sampling method.

A Useful Test Record Should Include

  • Sample: material name, sample ID and sample mass.
  • Feed condition: particle size, moisture and bulk density when relevant.
  • Target: what must be removed or recovered and its known size/loading.
  • Feed setup: feed width, feed depth and feed rate.
  • Machine setup: drum speed, splitter position and other adjustable settings.
  • Products: magnetic and non-magnetic product weights or sample IDs.
  • Result: capture, recovery, purity, remaining contamination or product loss.
  • Traceability: date, photos, video or agreed inspection record when required.
A surface Gauss reading is not enough to prove separation performance. Judge the result using the tested material, feed condition, sampling method and machine settings. A material-test result applies to the tested sample and conditions; plant results can change when the feed changes.
Selection Examples

Three Common Situations—and What We Would Do

These examples show the selection logic, not claimed project results. The final machine setup and measured result must come from your material, target and production line.

Example A

Dry Aggregate With Steel Pieces

Choose: a dry drum when the aggregate is free-flowing and the drum can sit at a controlled transfer point.

Check: steel-piece size, feed width, peak feed depth, drop height and discharge space.

Test: use counted steel pieces that match the expected contamination and feed them in the same way as the production line.

Example B

Magnetite-Bearing Dry Ore

Choose: a dry drum when the magnetic fraction is strongly magnetic and the feed can be spread evenly.

Check: particle size, mineral liberation, feed stability and whether recovery or magnetic-product purity matters more.

Test: weigh the feed and both separated products, then analyze the products when the required result is critical. This creates a mass balance.

Example C

The Dry Drum Is the Wrong Separator

Do not choose: a standard dry drum for slurry, for aluminum or copper sorting, or automatically for a very fine weakly magnetic target.

Choose instead: compare wet magnetic separation, non-ferrous sorting or a higher-intensity magnetic method according to the real material.

Test: validate the equipment family that matches the feed and target rather than forcing the project into a dry drum.

Engineering Supply

Why Work With Us for Dry Drum Separation?

We first make sure a dry drum is the right separator for your line. Then we define the machine, checks and documents around the real material and installation.

We Choose the Separator Before the Drum Size

If a head pulley, suspended magnet, wet separator or higher-intensity dry separator fits the process better, we make that choice before defining a dry drum.

We Use Your Material and Layout

Feed width, feed depth, distance from the magnetic system, drum position, splitter, discharge and maintenance access are considered as one installation.

We Agree on the Checks That Matter

Dimensions, magnetic readings, material tests, inspection photos or a factory acceptance test can be defined when they are needed and listed in the quotation.

You See the Agreed Details Before Production

The selected machine setup, approved drawing and agreed inspection or test requirements should be clear before production starts.

Before Production

What You Can Confirm Before Production

The quotation should make the selected machine and its main connections clear before production starts. Drawings, inspections, tests and other documents are added when they are required and listed for the order.

Core Order Details

Machine Setup and Main Interfaces

The quotation identifies the selected separator setup and the main feed, discharge, drive and installation information needed for your line.

Core Order Details

Final Machine Details

Agreed drum size, working width, speed, power and other model-specific items are confirmed for the selected machine when those values are part of the order.

When Required

General Arrangement Drawing

A GA drawing can show the machine layout and agreed interface dimensions when drawing approval is part of the order.

When Required

Inspection or Test Records

Dimension checks, magnetic readings, material tests, inspection photos or a factory acceptance test can be listed when they are required for the project.

When Required

Electrical and Installation Information

Motor, power, control and installation information can be confirmed for the selected machine where applicable.

When Required

Operation, Packing and Spare-Parts Information

Operation, maintenance, packing or spare-parts information can be included when it is agreed for the project.

What Happens Next

What Happens After You Send the Material and Layout?

The next step should be simple. We first choose the right separator type, then define the dry-drum setup if it fits the job. Before production, the quotation and agreed documents should make the important machine details and checks clear.

Step 1

Send Your Material and Layout

Start with the material, target, normal and peak feed rate, and a photo, sketch or drawing of the installation area.

Step 2

We Choose the Separator and Setup

We compare a dry drum with a head pulley, suspended magnet, wet separator or higher-intensity option when needed. If a dry drum fits, we define the feed, drum, splitter and discharge arrangement.

Step 3

We Send the Quotation and Technical Details

The quotation identifies the selected setup, main interfaces and any missing information that can still change the machine.

Step 4

We Confirm Drawings, Tests and Production Details

Before production starts, we confirm the agreed machine details and any drawings, inspections or material tests included for the order.

Selection & Quotation

What Should You Send Us?

Start with four items. They are enough for us to make the first equipment choice without asking you to complete a long specification sheet.

1. Material

Material name, physical form and whether it flows freely, clumps or bridges.

2. Target

Ferrous contaminant or magnetic fraction to remove or recover, including known size or loading information.

3. Throughput

Normal and peak feed rate are best. If you only know daily production, send that first and we can work from it.

4. Installation

Show where separation should happen. A process sketch, line drawing or simple phone photo is enough for the first check.

Additional Project Details

Add the particle-size range, moisture and bulk density if you know them. Feed depth, conveyor or feeder speed and peak feed rate also help. For the installation, send available space, drop height, temperature, dust or wear conditions, voltage and any cleaning or test requirement.

You do not need every detail before contacting us. Send what you have, and we will tell you which missing items can change the equipment choice or quotation.

FAQ

Dry Drum Magnetic Separator FAQ

Is a dry drum magnetic separator only for dry material?

Use a dry drum when the material flows freely. Slightly damp material can still work if it does not stick, clump or bridge. Do not use this dry-drum setup for slurry or pulp; use wet magnetic separation instead.

Is higher Gauss always better for a dry drum?

No. A higher surface field cannot fix a feed layer that is too deep or uneven. It also cannot fix too much distance from the magnet, the wrong drum speed or the wrong splitter position. We select the magnetic system together with the real feed and discharge conditions.

Should I use a dry drum or a magnetic head pulley?

Use a magnetic head pulley when separation can happen directly at the conveyor head. Use a separate dry drum when you need more control over the feed, magnetic zone, drum speed, splitter and where the two products leave the machine.

Can a standard dry drum separate very fine weakly magnetic material?

Do not assume it can. For very fine or weakly magnetic targets, we compare a higher-intensity dry separator or another method. If the result is critical, test a sample that matches the real feed in particle size, moisture and target content before finalizing the machine.

How do you select a dry drum for tramp iron removal?

We start with the iron size, how much iron is normally present, feed width, feed depth, normal and peak feed rate, distance from the magnetic system, impact condition and discharge space. We then set up the machine to capture and continuously discharge the target without creating a new bottleneck.

Can a dry drum magnetic separator be used for magnetite?

Yes, when the magnetite-bearing material is dry or slightly damp, still flows freely, and the magnetic fraction responds strongly enough to the selected magnetic system. Particle size, feed depth, mineral liberation and whether recovery or product purity matters more should still be checked before final selection.

What proves that a dry magnetic drum separator will work?

The strongest proof is a test using a sample that matches the real feed and records the feed condition, machine settings and the result that matters for the job. For tramp iron, count captured and remaining targets. For magnetic recovery, weigh the feed and both separated products and use product analysis when required. A surface Gauss number alone does not prove plant separation performance.

What information should I send for selection and quotation?

Send the material, target contaminant or magnetic fraction, normal and peak feed rate, and the installation condition. Add particle size, moisture, bulk density, feed depth, feed method, available space, a line drawing, wear or dust conditions and the test result you need when available.

Send Your Requirement

Send Your Separation Requirement

Send the material, target contaminant or magnetic fraction, normal and peak feed rate, and any line drawing or installation photo you already have. We will choose the separator type first. If a dry drum is the right fit, we will then work out the machine setup.

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