Technology Zone

Separation and Sorting Technology

Separating mixed waste into clean, saleable streams is the hardest step in recycling. This zone covers magnetic, eddy-current and density separation, screens, and sensor-based sorting with NIR, X-ray, LIBS, AI and robotics — 24 equipment types, 229 manufacturers.

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Separation and Sorting Technology: how it works, key numbers and troubleshooting

Fundamentals

Separation follows a property

Every separator exploits one physical difference between what you want and what you do not: size (screens), density and shape (air classifiers, ballistic separators, wet tables), magnetism (overband and drum magnets), electrical conductivity (eddy-current separators), colour, spectrum or shape (optical sorters with NIR, VIS, X-ray, LIBS or AI cameras). A sorting line is a sequence of such steps; the order matters as much as the machines, and the cheapest separation goes first.

Mechanical pre-sorting

Trommel, disc and vibrating screens split the stream by size and remove fines; ballistic separators split 2D (flat, light) from 3D (rigid) and fines in one pass; air classifiers, drum separators and windsifters pull light films and paper from heavy fractions. Mechanical steps are robust and cheap per tonne and set up every downstream sensor step by delivering a narrower, more uniform stream.

Metals: magnets and eddy currents

Overband, drum and pulley magnets remove ferrous metal early to protect equipment and produce a saleable scrap fraction. Eddy-current separators throw non-ferrous metals (aluminium, copper, brass) out of the stream by inducing currents in them; their performance depends on particle size, belt speed, rotor frequency and a thin, single-layer feed. Stainless steel needs a sensor sorter or a special high-gradient magnet.

Sensor-based sorting

An optical sorter scans a single layer of material on a fast belt, identifies each object by its near-infrared spectrum (polymer type), colour, X-ray transmission (density, halogens) or laser-induced spectrum (metal alloys), and ejects it with a timed air jet. Modern machines add AI object recognition for shapes and packaging types. Purity and recovery are traded against each other through the ejection settings; throughput per metre of belt width is the sizing number.

Purity, recovery and the line balance

Purity is the share of the target material in the product; recovery is the share of the target material in the feed that ends up in the product. No separator gives 100 % of both, and the market sets the purity; recovery is what remains. Rescanning rejects, adding a quality-control sorter on the product and keeping the burden depth low on every belt are the usual routes to a better balance.

Key parameters

ParameterTypical rangeRule of thumb
Optical sorter belt speed2.5–4.5 m/sFaster belts spread the material; single-layer presentation is the aim
Optical sorter throughput3–12 t/h per metre belt width depending on bulk densitySize on burden depth (one layer), not on the nameplate
Sorting purity / recovery95–99 % purity at 85–95 % recovery in one passTighten purity and recovery drops; rescan the reject to recover it
Eddy-current particle size5–150 mm; best above 10 mmBelow 5 mm use high-frequency rotors or a fines eddy-current unit
Overband magnet suspension height300–500 mm above belt for 1,000–1,400 mm beltsEvery centimetre of extra height costs field strength; keep burden depth low
Ballistic separatorPaddle inclination 15–25°; 10–40 t/h per unitSteeper for more 3D in the heavy fraction, flatter for cleaner 2D
Trommel screen10–15 rpm; 40–60 % of critical speedHole size 2–3× the particle size you want to pass
Air classifierAir speed 10–25 m/s at the separation zoneAdjust for the heaviest light fraction you want to lift, not the lightest

Troubleshooting

SymptomLikely causesWhat to do
Optical sorter purity dropsBurden too deep (objects overlap); dirty or misaligned lamp and sensor; wet or dusty material; ejection timing offReduce feed rate or widen belt, clean optics daily, dry or de-dust upstream, recalibrate ejection
Eddy-current recovery fallsParticle size too small; belt too fast or too slow; splitter position; ferrous contamination heating the rotorScreen to size classes, tune belt speed and splitter, magnet upstream
Screen blindsWet, sticky or fibrous material; near-size particles; wrong aperture shapeDisc screen or flip-flow screen for sticky material, ball cleaning, coarser first cut
Film and paper in the heavy fractionAir classifier air speed too low; ballistic paddle angle too flat; material clumpsRaise air speed, steeper paddles, bag opener upstream
Magnet misses ferrousSuspension too high; burden too deep; belt too fast; magnet dirtyLower the magnet, spread the burden, self-cleaning belt maintenance
Wrapping around shafts and screensWires, tapes, strapping, textilesPre-shredding, anti-wrap discs, regular cleaning stops, ballistic separator ahead of screens
Throughput below designUneven feed (surges); bottleneck at one machine; too much moistureMetering drum or feeder at the head, balance the line, check moisture of incoming material

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24 equipment types in the Equipment Guide

Equipment Guide

Recommended manufacturers

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Cross Wrap Ltd. Cross Wrap's speciality is in automated bale handling and material flow solutions for the global recycling, waste, and industrial sectors. It's known for its innovative Bale Wrapping and Bale Dewiring machines, designed to improve safety and efficiency in material processing. Cleansort GmbH With many years of experience in innovative recycling solutions, we at Cleansort develop sorting solutions that are geared towards maximum efficiency and sustainability. Through advanced technology and a strong commitment to resource efficiency, we help you boost profits while safeguarding the environment. Machinex Industries Inc. Machinex Industries offers complete engineering design, manufacturing and installation of Material Recycling Facilities. As a leader in sorting technologies, Machinex Industries provides turnkey systems: Single-Stream, Mixed Waste Processing, Construction & Demolition, Commercial and Industrial Waste, front-end processing for Waste-to-Energy plant. TOMRA Recycling With 11,900 sorting systems installed in more than 100 countries, TOMRA Recycling is a global leader in sensor-based sorting solutions for the recycling and waste management industry. The company’s mission is clear: harness the latest sensor and AI technologies to help customers turn waste into value. Its product portfolio includes systems for resource recovery and material upgrading across a wide range of streams. Pellenc ST Pellenc ST is a global leader in intelligent waste sorting and recycling solutions. With advanced optical sorting, AI-driven systems, and decades of expertise, the company enables higher recovery rates, improved material purity, and a more circular economy worldwide. Valvan nv Valvan (Menen, Belgium) specialises in sorting and baling systems for the textile and recycling industries. From baling presses to full turnkey installations — smart, tailor-made solutions built to your exact needs. Part of the Valtech Group. www.valvan.com Sense2Sort – Toratecnica Sense2Sort Toratecnica is specialized in sensor-based sorting equipment for metal sorting applications in recycling. The company leads in automated spectroscopy sorting technologies, such as XRF (X-Ray Fluorescence) and LIBS (Laser-Induced Breakdown Spectroscopy), and offers all common sensor-based sorting technologies and consults on plant design. Eriez Established in 1942, Eriez is a global leader in separation technologies. Eriez Recycling Products work successfully to separate and recover metals in a variety of applications - from municipal solid waste and shredded automobiles, plastics, electronic waste and foundry sand.

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What this zone covers

Frequently asked about separation and sorting technology

In which order should I place separation steps?

Cheapest and most robust first: remove fines and oversize by screening, ferrous by magnet, light 2D by air or ballistic separation, then non-ferrous by eddy current and finally the expensive sensor-based sorters on a stream that is already narrow in size and composition. Every step upstream makes the next one cheaper and more accurate.

What purity can an optical sorter reach?

In one pass typically 95–99 % purity at 85–95 % recovery on a well-prepared single-layer feed. The final percentage points come from a quality-control sorter on the product or a rescan of the rejects, and from material preparation: dry, de-dusted, screened to a narrow size range.

NIR, X-ray, LIBS or AI — which sensor for which material?

NIR identifies polymer types and paper grades but cannot see black plastics; VIS colour cameras sort by colour; X-ray transmission separates by density (metals, halogenated plastics, inert material); X-ray fluorescence and LIBS identify metal alloys; AI object recognition classifies shapes and packaging that spectra cannot. Most modern sorters combine two or three.

Why does my eddy-current separator lose recovery on small particles?

The force on a particle scales with its size and conductivity, so small aluminium pieces are barely deflected at standard rotor speeds. Screen the feed into size classes, use a high-frequency (eccentric) rotor for fines, keep the belt at the right speed for the size class and set the splitter for that class alone.

How do I stop wires and strapping wrapping around my equipment?

Take them out before they reach rotating parts: a bag opener and a coarse pre-shredder cut long items, a ballistic separator removes many of them, and anti-wrap discs and shaft guards limit the damage. Schedule short cleaning stops rather than waiting for a jam.

How much material can one optical sorter handle?

It depends on burden depth, not tonnage: a sorter sees one layer, so throughput is belt width times speed times bulk density of a single layer — commonly 3–12 t/h per metre of belt width. A light, bulky stream such as film needs far more belt width per tonne than dense flakes.

What should I measure to run a sorting line well?

Input composition (regular manual sampling), product purity and recovery per step, burden depth on the sensor belts, moisture of the incoming material, and the reject composition — that last one tells you where recoverable material is lost and which step to tune.

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