/ DIMATTEO / Products / separating

Separating

Efficient separating technology – for material purity, reliable removal of foreign objects and stable processes in bulk material handling

Targeted separating for stable processes

Contaminants in bulk materials can cause downtime, blockages or quality losses. With the right separating technology, these risks can be significantly reduced.

Our systems are individually matched to bulk material properties, conveying environments and process requirements. Designed for use in both pneumatic and mechanical conveying systems, they reliably remove foreign objects and precisely separate material streams – ensuring stable downstream processes and consistent product quality.

Benefits

  • Precise removal of foreign bodies – protects equipment and minimises downtime
  • High separation efficiency – for clean material streams and consistent quality
  • Versatile application – integrable into mechanical and pneumatic systems
  • High operational reliability – robust design for continuous duty
  • Service-friendly and operationally reliable: optimised engineering for low maintenance effort and dependable operation.
Contact us >
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

ATEX compliant

For applications in hazardous areas, our equipment is available in compliance with ATEX Directive 2014/34/EU, ensuring safe and reliable operation in explosion-risk environments.

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

Temperature resistance

Our machines are engineered to match your specific requirements and operating environments, covering a wide range of operating temperatures – from extremely low to very high temperature conditions.

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

Wear protection

The ODM-WeartecPRO® wear protection system provides application-specific solutions based on linings, surface coatings and replaceable wear components. The objective is to extend service life and minimise unplanned downtime.

Wear protection >

Products & features

ODM – DiscSCREEN SSM

  • Removal of oversize particles from free-flowing bulk materials
  • Separation via rotating screening discs with defined distance settings
  • Modular design with individual drive per unit
  • Suitable for pre-separation upstream of subsequent equipment
  • High throughput capacity

Industries

Aggregates & minerals
Asphalt & concrete
Cement, lime & gypsum
Chemicals
Energy
Environment & Recycling
Glass
Paper & pulp
Salt & sugar
Steel & non-ferrous metals
Waste management
Wood & biomass

Processes

Discharging
Drying
Feeding
Gravimetric dosing
Material reception
Mechanical conveying
Mixing
Pneumatic conveying
Sampling
Separating
Shredding
Storing
Volumetric dosing
Show industries and processes »

ODM – Magnetic Drum Separators MAS

  • Removal of magnetic foreign matter from free-flowing bulk materials
  • Adjustable magnetic field range to suit material flow
  • Designed for high conveying capacities
  • No direct contact between magnet and material
  • Protection of downstream equipment

Industries

Aggregates & minerals
Asphalt & concrete
Cement, lime & gypsum
Chemicals
Energy
Environment & Recycling
Glass
Paper & pulp
Salt & sugar
Steel & non-ferrous metals
Waste management
Wood & biomass

Processes

Discharging
Drying
Feeding
Gravimetric dosing
Material reception
Mechanical conveying
Mixing
Pneumatic conveying
Sampling
Separating
Shredding
Storing
Volumetric dosing
Show industries and processes »

ODM – Inline Air Separators AirSEP IPS

  • Separation of heavy particles directly within the pneumatic conveying line
  • Patented system for efficient gravity-based separation
  • Gravity-based operation without additional air injection
  • Stabilisation of pneumatic conveying performance
  • Compact design for integration into existing systems

Industries

Aggregates & minerals
Asphalt & concrete
Cement, lime & gypsum
Chemicals
Energy
Environment & Recycling
Glass
Paper & pulp
Salt & sugar
Steel & non-ferrous metals
Waste management
Wood & biomass

Processes

Discharging
Drying
Feeding
Gravimetric dosing
Material reception
Mechanical conveying
Mixing
Pneumatic conveying
Sampling
Separating
Shredding
Storing
Volumetric dosing
Show industries and processes »

ODM – Air Separators AirSEP ASP

  • Removal of heavy particles in mechanical conveying systems
  • Adjustable air velocity for process-specific cut point control
  • Separation of alternative fuels in the air stream by combination of aerodynamic forces and gravity
  • Operation with ambient air or hot air possible
  • Vertical and horizontal designs available

Industries

Aggregates & minerals
Asphalt & concrete
Cement, lime & gypsum
Chemicals
Energy
Environment & Recycling
Glass
Paper & pulp
Salt & sugar
Steel & non-ferrous metals
Waste management
Wood & biomass

Processes

Discharging
Drying
Feeding
Gravimetric dosing
Material reception
Mechanical conveying
Mixing
Pneumatic conveying
Sampling
Separating
Shredding
Storing
Volumetric dosing
Show industries and processes »

Contact person

Svetoslav Chopov

Sales International

Contact person

Rafael Castan

Sales International (spanish speaking areas)

Contact person

Maximilian Brentrup

Sales National

Contact person

Arnim Morgenweck

Sales National

/ Available worldwide

Your personal contact

Do you have questions about our systems or are you planning a project? Contact our sales team for technical advice, detailed information and clear, engineered solutions. Globally connected, personally accessible – wherever you need us.

/ Separating technology

Separating systems for smooth material flow, reliable separation and safe production processes

Our separating systems combine precision, robustness and efficiency – increasing process reliability, ensuring consistent quality and supporting long-term plant availability.

Separating for consistent process reliability

For decades, we have been developing separating systems for bulk materials and understand the challenges posed by a wide range of products. Whether coarse contaminants or fine unwanted fractions, our solutions are precisely adapted to your processes, ensuring uninterrupted material flow and reliable downstream processing with consistent quality.

Efficiency through low-maintenance systems

Our separating solutions can be flexibly integrated into existing conveying lines and are designed for continuous operation. Robust construction and low maintenance requirements help minimise downtime and ensure sustainable plant availability.

Modular
System Design

The modular system provides maximum flexibility: proven components can be combined, expanded or adapted as required. The result is an economical solution that grows with your requirements.

Customised
machine configuration

Each system is tailored to the specific conditions of your material and process. From component configuration to material selection, we deliver application-specific engineering that combines efficiency with reliable, long-term operation.

/ Discover more

Additional bulk material handling solutions

Our systems support every stage of the material flow. Explore the complete bulk material handling portfolio – engineered for efficient processes, high operational safety and reliable performance.

/ Material flow

Material reception

Application-specific reception technology for a wide range of reception methods. Our systems ensure a reliable and controlled start to your processes – safe, adaptable and engineered to meet individual requirements.

Learn more >
/ Conveying technology

Mechanical conveying

Reliable mechanical conveying technology for consistent material flow across demanding conveying paths. Our systems are flexibly adaptable and engineered for long-term operation – ensuring stable, efficient processes in continuous service.

Learn more >
/ Conveying technology

Pneumatic conveying

Whether long conveying distances, restricted installation spaces or sensitive bulk materials – our pneumatic conveying technology supports flexible processes, clean operating environments and reliable long-term performance.

Learn more >
/ Storing technology

Storing

Efficient storing technology for the secure buffering of bulk materials. Our systems enable space-efficient and flexible material storage, ensure controlled material flow and provide a stable foundation for downstream processes.

Learn more >
/ Discharging technology

Discharging

Our discharging systems ensure uniform material flow, controlled dosing and stable processes. Whether fine powders or poorly flowing bulk materials, the technology is flexibly engineered, robust in operation and tailored to your specific requirements.

Learn more >
/ Dosing technology

Gravimetric dosing

Gravimetric dosing technology for reliable material flow and consistent process quality. Suitable for a wide range of bulk materials, robust in operation and flexibly adaptable – supporting efficient processes across all industries.

Learn more >
/ Dosing technology

Volumetric
dosing

Volumetric systems ensure uniform material flow and reliable dosing. Flexibly applicable to different bulk materials and adaptable to your processes.

Learn more >
/ Feeding technology

Feeding

Mechanical and pneumatic systems for the reliable integration of bulk materials into the process. Whether abrasive or poorly flowing materials, feeding technology ensures uniform material flow, controlled dosing and stable operation.

Learn more >
/ Mixing technology

Mixing

Homogenisation of bulk materials for consistent quality and efficient processes. Continuous mixing systems enable short process times and allow additional steps such as cooling or conditioning to be integrated.

Learn more >
/ Drying technology

Drying

Efficient drying technology for consistent quality: our systems reliably reduce moisture content, stabilise processes and ensure optimally conditioned bulk materials – energy-efficient, easily integrated and maintenance-friendly.

Learn more >
/ Shredding technology

Shredding

With high-performance shredding technology, agglomerated, compacted or compressed bulk materials are reliably conditioned. The result: uniform material flow, precise dosing and stable processes. Robust systems designed for flexible integration and economical operation with low maintenance requirements.

Learn more >
/ Sampling technology

Sampling

Precise sampling directly from the material flow – for continuous quality control, stable processes and transparent documentation. Modern systems enable representative sampling without process interruption, ensuring reliable results in bulk material processing.

Learn more >