/ DIMATTEO / Products / screw-conveyors

ODM - Screw Conveyors SF

Energy-efficient, continuous and metered conveying of bulk materials with DI MATTEO Screw Conveyors

+

Application

Screw conveyors are designed for the continuous conveying, dosing and discharge of bulk materials in enclosed systems. They are used in industrial applications where controlled and predictable material flow is required.

Inspection / maintenance covers

Adequately sized inspection covers are positioned to allow easy inspection and safe access for maintenance.
Depending on the application, the covers can optionally be equipped with safety grilles to enhance operational safety.

Screw drive

  • Gear motor with flexible coupling
  • Gear motor with torque arm
  • Gear motor with chain drive
  • Shaft-mounted gear motor

Shaft bearing

Possible bearing combinations:

  • Pedestal bearing
  • Flange bearing
  • Slide bearing type ODM-DUROGLIDE
    (recommended, for example, for high-temperature or high-wear applications)

Shaft opening / passage

  • Adjustable gland packings – freely combinable with labyrinth seals, lubrication rings or barrier air systems
  • Mechanical seals – suitable for demanding operating conditions
  • Sleeves – protect sealing surfaces and extend component service life

Screw shaft

The specially engineered screw design ensures stable and efficient material discharge, tailored to the specific requirements of the process. Depending on the application, screws are manufactured from robust carbon steel or from wear- and heat-resistant special materials suitable for severe operating conditions.

Screw housing

The trough housing can be supplied as a U-trough or V-trough design and is equipped with practical, bolted covers. Depending on operating requirements, standard steel or selected special materials are used. Optionally, the housing can be fitted with replaceable wear liners to extend service life.

Inlets and outlets

DI MATTEO Screw Conveyors offer flexible inlet and outlet configurations, with the number and position adaptable to the specific application. This flexibility allows precise integration into existing systems and supports efficient material routing, whether for additional feed points or multiple discharge positions.

+
+
+
+
+
+
+

Flexible use for a wide range of bulk materials

DI MATTEO Screw Conveyors are suitable for conveying a wide range of bulk materials, including powdery, granular, lumpy, moist or fibrous products. Depending on design and configuration, they can be used for horizontal, inclined or vertical conveying in a wide range of industrial applications.

More than a conveying solution

Beyond pure material transport, screw conveyors can perform additional process-related functions depending on configuration. These include dosing, discharge, mixing, cooling, separation, distribution or controlled feeding into downstream processes.

High efficiency and durable design

The robust construction of the Screw Conveyors is designed for continuous industrial operation. Depending on requirements, designs can be dust-tight, gas-tight or watertight, protecting both the conveyed material and the surrounding environment while ensuring reliable long-term operation.

Benefits

  • Continuous, uniform material flow
  • Precise feed rate control and throughput regulation
  • Conveying in horizontal, inclined or vertical alignment
  • Enclosed design for low-dust conveying
  • Compact, space-saving design
  • Low maintenance requirements, low operating costs and energy-efficient operation
  • High operational reliability in continuous service
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.

AAA0RWp1bWIAAAAeanVtZGMycGEAEQAQgAAAqgA4m3EDYzJwYQAAADQfanVtYgAAAEdqdW1kYzJtYQARABCAAACqADibcQN1cm46dXVpZDowNTE2NGFmMi1jNjdmLTRmNTgtODA3OS04ODM0Y2I4ZWQ0MTIAAAABtGp1bWIAAAApanVtZGMyYXMAEQAQgAAAqgA4m3EDYzJwYS5hc3NlcnRpb25zAAAAANdqdW1iAAAAJmp1bWRjYm9yABEAEIAAAKoAOJtxA2MycGEuYWN0aW9ucwAAAACpY2JvcqFnYWN0aW9uc4GjZmFjdGlvbmtjMnBhLmVkaXRlZG1zb2Z0d2FyZUFnZW50bUFkb2JlIEZpcmVmbHlxZGlnaXRhbFNvdXJjZVR5cGV4U2h0dHA6Ly9jdi5pcHRjLm9yZy9uZXdzY29kZXMvZGlnaXRhbHNvdXJjZXR5cGUvY29tcG9zaXRlV2l0aFRyYWluZWRBbGdvcml0aG1pY01lZGlhAAAArGp1bWIAAAAoanVtZGNib3IAEQAQgAAAqgA4m3EDYzJwYS5oYXNoLmRhdGEAAAAAfGNib3KlamV4Y2x1c2lvbnOBomVzdGFydBiqZmxlbmd0aBlFtGRuYW1lbmp1bWJmIG1hbmlmZXN0Y2FsZ2ZzaGEyNTZkaGFzaFggWYSrpdt7CCjVSBot3tLyMkLZqN8SUrJbGlcUm5YDXfljcGFkSQAAAAAAAAAAAAAAAgxqdW1iAAAAJGp1bWRjMmNsABEAEIAAAKoAOJtxA2MycGEuY2xhaW0AAAAB4GNib3KoaGRjOnRpdGxlb0dlbmVyYXRlZCBJbWFnZWlkYzpmb3JtYXRtaW1hZ2Uvc3ZnK3htbGppbnN0YW5jZUlEeCx4bXA6aWlkOjBmYjQxMzUwLTdlMDItNDRkMS1iYTJhLTk0N2JhNDI3YTNlOW9jbGFpbV9nZW5lcmF0b3J4N0Fkb2JlX0lsbHVzdHJhdG9yLzI5LjggYWRvYmVfYzJwYS8wLjEyLjIgYzJwYS1ycy8wLjMyLjV0Y2xhaW1fZ2VuZXJhdG9yX2luZm+Bv2RuYW1lcUFkb2JlIElsbHVzdHJhdG9yZ3ZlcnNpb25kMjkuOP9pc2lnbmF0dXJleBlzZWxmI2p1bWJmPWMycGEuc2lnbmF0dXJlamFzc2VydGlvbnOComN1cmx4J3NlbGYjanVtYmY9YzJwYS5hc3NlcnRpb25zL2MycGEuYWN0aW9uc2RoYXNoWCBKacG9/6jeQTB4viTtzPgxOsHRZJU0VnGgDWsGszfUr6JjdXJseClzZWxmI2p1bWJmPWMycGEuYXNzZXJ0aW9ucy9jMnBhLmhhc2guZGF0YWRoYXNoWCBldWQeb2chnENM9/rDZTOFW4bEKNSmSTUy7r06u5FChmNhbGdmc2hhMjU2AAAwEGp1bWIAAAAoanVtZGMyY3MAEQAQgAAAqgA4m3EDYzJwYS5zaWduYXR1cmUAAAAv4GNib3LShFkNFKIBOCQYIYJZBqAwggacMIIEhKADAgECAhRJcyBrPnXfyWyvf1b/LSqtsEAH3TANBgkqhkiG9w0BAQsFADB1MQswCQYDVQQGEwJVUzEjMCEGA1UEChMaQWRvYmUgU3lzdGVtcyBJbmNvcnBvcmF0ZWQxHTAbBgNVBAsTFEFkb2JlIFRydXN0IFNlcnZpY2VzMSIwIAYDVQQDExlBZG9iZSBQcm9kdWN0IFNlcnZpY2VzIEc0MB4XDTI1MTAwNzE2MzkwN1oXDTI2MTAwNzE2MzkwN1owgasxEzARBgNVBAMMCkFkb2JlIEMyUEExKDAmBgNVBAsMH0NvbnRlbnQgQXV0aGVudGljaXR5IEluaXRpYXRpdmUxEzARBgNVBAoMCkFkb2JlIEluYy4xETAPBgNVBAcMCFNhbiBKb3NlMRMwEQYDVQQIDApDYWxpZm9ybmlhMQswCQYDVQQGEwJVUzEgMB4GCSqGSIb3DQEJARYRY2FpLW9wc0BhZG9iZS5jb20wggEiMA0GCSqGSIb3DQEBAQUAA4IBDwAwggEKAoIBAQDDEMGB0H09cukxc/Dmg2BiQVYM8/VpJ+2H1Nk8g0605CWGnW/iH6EzFlYWORndElG6hIGuxJJgFoR+IMwqKyL+w7G4UcoFX/+XWu/dKuOuLEA1ciWqMZ0hjJ1oxoVr/mi8XP+bj5JTPRxxjOrD69IDO5HJIaemCbwaaP5IQlwv8YgfOpT1tTLc2yLNjahjbzKPfatuQ6p4ANIznU6ogkqWgQEUV7HMy6fOlT4rawuqF6hHwUkxpHR8Zdr+CpHOGSIEWHBSEs9L2zr5MKfPT1RkyVdt0b+IUqPdQ8VQOOqHTC0WBzPbgOtSVpZ6KW0oei7KYEe6KvO+Y4bRW1I96nE5AgMBAAGjggHrMIIB5zAMBgNVHRMBAf8EAjAAMB0GA1UdDgQWBBRY9QN+0GYM4Y4OVqGXQknSuyfC/jAfBgNVHSMEGDAWgBTQrUKK8HoUByXGl8BDqCOF6LUtIzAOBgNVHQ8BAf8EBAMCB4AwKgYDVR0lBCMwIQYJKoZIhvcvAQEMBgorBgEEAYPoXgIBBggrBgEFBQcDBDCBgAYIKwYBBQUHAQEEdDByMCgGCCsGAQUFBzABhhxodHRwOi8vb2NzcC5vbmUuZGlnaWNlcnQuY29tMEYGCCsGAQUFBzAChjpodHRwOi8vY2FjZXJ0cy5vbmUuZGlnaWNlcnQuY29tL0Fkb2JlUHJvZHVjdFNlcnZpY2VzRzQuY3J0MEcGA1UdHwRAMD4wPKA6oDiGNmh0dHA6Ly9jcmwub25lLmRpZ2ljZXJ0LmNvbS9BZG9iZVByb2R1Y3RTZXJ2aWNlc0c0LmNybDCBjgYDVR0gBIGGMIGDMIGABgkqhkiG9y8BAgMwczBxBggrBgEFBQcCAjBlDGNZb3UgYXJlIG5vdCBwZXJtaXR0ZWQgdG8gdXNlIHRoaXMgTGljZW5zZSBDZXJ0aWZpY2F0ZSBleGNlcHQgYXMgcGVybWl0dGVkIGJ5IHRoZSBsaWNlbnNlIGFncmVlbWVudC4wDQYJKoZIhvcNAQELBQADggIBAJs7c8VwrVF+V6FDXrEeoTUZzzqRJGAXoQ7AiV6daRHHZVJPY2NO9OU6dahtUvF/2AUgw216awWggF82Zz5Hu34Y0Mz6FJ+y0smSoWoCVA61OJo5qSDpzS5tJVaqCx7+mI9rXmT+qsuki7hUF7cGbK05JJX4cU48qx3tw7T2wl4Mxq2TcriMcx79qdcRJReVo362iW9eDqoBDxcTVxJvrlAUGJrBQx6PqNBuQ1mneOeis4GpIl87EhDDv39acUxh/FEf+UjauxjjdimGpdwFeJ+MlDSPEUyokY2ubb/I4MvoEZW2uOf3uSh9lbZwoXPmsNJPOVwURwpQAHWJbt555NIqXNGRX46TaJvziVMWA1uL1QGdPcotLoSRksQil0DaHhK56fWnAeNaZmzFYDeH/f06hyw56Ass2+l1VEuW1/bqPvahpAd9PRDKHOvMNbjwUk3eiUmqUIEKTQbnCnc7kqkZ3I+r2EAaNMmu+nGycJdKqjplnO8mV+QmqQBrpd/3YsrrLCudTPLxoERASfIEXvqOg8zeBNYyclU8I+XUH0XLD63KpiC00yAnK+W0hyWvHirsMuW4ytv3YGeg3qdrD5t3Pkg3+ipHUoTNiuEPbiil2S1j0CyvdHcoUOB0++/+v9GTi921ieTIB1zzPGfKGdQdykAf0UOysArVG+Brix6yWQZnMIIGYzCCBEugAwIBAgIQDuG63614rm8mvVElmAeILzANBgkqhkiG9w0BAQsFADBsMQswCQYDVQQGEwJVUzEjMCEGA1UEChMaQWRvYmUgU3lzdGVtcyBJbmNvcnBvcmF0ZWQxHTAbBgNVBAsTFEFkb2JlIFRydXN0IFNlcnZpY2VzMRkwFwYDVQQDExBBZG9iZSBSb290IENBIEcyMB4XDTI0MTEyMDAwMDAwMFoXDTQ0MTExOTIzNTk1OVowdTELMAkGA1UEBhMCVVMxIzAhBgNVBAoTGkFkb2JlIFN5c3RlbXMgSW5jb3Jwb3JhdGVkMR0wGwYDVQQLExRBZG9iZSBUcnVzdCBTZXJ2aWNlczEiMCAGA1UEAxMZQWRvYmUgUHJvZHVjdCBTZXJ2aWNlcyBHNDCCAiIwDQYJKoZIhvcNAQEBBQADggIPADCCAgoCggIBAKxF+ICxWEi8zumCmeLCiU7as6RDEkgB/y6nFXeceMAQC5afyCzXeWyQJolO7Cmi4Nw5vtexdD3zVCwG7cUAn3kHrNaLNtkGS+qp7jCG3QpvASkdR+ujOpyWiOB/iBlyWR+8djFpjv3N323tR4Don9zeZ23+Gctlmd+D5KvI1zKQdWYHKtMxFJaRKXwrebOE4it4lVoPfY843ve9N7cuJlFyj2Vu3NLrr1RgEF+jdUAAEynThGKVVoUKG1abmuvmLq34LluAcRIME0TE8EuGMNvomTLAYI2c4MSXxhrJqThlWRo+MsXi+J5S/VYsm+hvd4Flwus+qF4cA+1QEDNMiidxPTMji3OXNAhsnFWNFFBt0RzTNSFsOQObDKTo90YBvEfT6JGqjwkr7hEfj87gcNVXkzoJSHEADJ4kNnJu5rgef2LvYp4dG1EpQskGMrZaq55gDcbKVm4rnY5M93lHsG4DEusf/3YihdPOdc0sDgmDDJiuQR6Glb1fK4Se0J9vomXSSW1p3ICv3TUpeKd/GRb3ChDFpMfHDv0UjfCRh9eeRBXFGCWkB6DUvSMz6uAHFpDuXiRyemRjjszJTWwx0p6HByMdtvRQhhA/JfgEcLEtUcb5MToCr+DwIO4ZaoNaktJvJOQHtG0TQbArhIg+/35UrTbVPbZg7pxmQnjTgbPvAgMBAAGjgfcwgfQwEgYDVR0TAQH/BAgwBgEB/wIBADA1BgNVHR8ELjAsMCqgKKAmhiRodHRwOi8vY3JsLmFkb2JlLmNvbS9hZG9iZXJvb3RnMi5jcmwwDgYDVR0PAQH/BAQDAgGGMFcGA1UdIARQME4wTAYJKoZIhvcvAQIDMD8wPQYIKwYBBQUHAgEWMWh0dHBzOi8vd3d3LmFkb2JlLmNvbS9taXNjL3BraS9wcm9kX3N2Y2VfY3BzLmh0bWwwHQYDVR0OBBYEFNCtQorwehQHJcaXwEOoI4XotS0jMB8GA1UdIwQYMBaAFKYc4W1UJEyoj0hyv26pjNXk7DHUMA0GCSqGSIb3DQEBCwUAA4ICAQCRlqhDU07OWLmha2+YptYEMFr3tEE9vhBLlnlN7oeKRW9S8UVEGJUNwGnw4HMy2IIeGGc6pn2h+s6ZV6xJ8CdjgMT8Zp5OtaNNe5O/qH37EETsDxN79lUDolWAnO9GT1Ln1fT25z7n+ilSPQ5EMUzKsTRslqJMVQeTOYWNYX80+eFeoT8/0s6NZLsxodw4l+pBRdyvI5g2g/vgxTYPQjdjBeqIIPBZfW5PI6WJwesJW65tXaqd1GNmkkDPlO3ZcS8qj0TONxpCfrDsjTm+OpX9k2Yvyljuz/GLssmw9hpwwOa9gSIOhVrR1hSCoWkrHQ1KWeaedPREi0AdlQ0NXClPmf7AxCZN8e4fkNovduPXyTnI43nN8PFMsUmySUxb9RtyWOH87KuJjBVkgX2PbIRvCxnQ6RrzElMbzKfw/oDRs8Psq/mm3OqVxGE8JqEH7yl3mLa7OQEk6bAMjqEoORkxudGTf0beyV72Iu5MlklIZ9L3J7XLIObmURgVhJfzmBfubLwfRGm1aaScfeyCL/38T0jKtKqYklDi1A3VbWPBSMn8sCcS7cOrbRLQtm1Y6qES+zE5Lvt/HnsVAeB1caQuxP+Fblc7a4xQb6sRmy6FmVWFbqwC1yzeXbSo9ki2+zd3OezgyfNmWgoEj3MwlbQXMNi9Vq8kA9Hf4rayLs28fqNmc2lnVHN0oWl0c3RUb2tlbnOBoWN2YWxZDlowgg5WMAMCAQAwgg5NBgkqhkiG9w0BBwKggg4+MIIOOgIBAzEPMA0GCWCGSAFlAwQCAQUAMIGDBgsqhkiG9w0BCRABBKB0BHIwcAIBAQYJYIZIAYb9bAcBMDEwDQYJYIZIAWUDBAIBBQAEIPV1tB/rv/bOcigG4IvJwYnxKAYD3Hrn8yVucuBE6ycAAhEA9YvE7joF9DAt3OBtN661KhgPMjAyNTExMjcxMDMwNTJaAgkA5IpelsFmouGgggvaMIIFHjCCAwagAwIBAgIQCRkNwSych9sy/Qq1UL3tSzANBgkqhkiG9w0BAQsFADBpMQswCQYDVQQGEwJVUzEXMBUGA1UEChMORGlnaUNlcnQsIEluYy4xQTA/BgNVBAMTOERpZ2lDZXJ0IFRydXN0ZWQgRzQgVGltZVN0YW1waW5nIFJTQTQwOTYgU0hBMjU2IDIwMjUgQ0ExMB4XDTI1MDYxMTAwMDAwMFoXDTM2MDkxMDIzNTk1OVowXzELMAkGA1UEBhMCVVMxFzAVBgNVBAoTDkRpZ2lDZXJ0LCBJbmMuMTcwNQYDVQQDEy5BZG9iZSBTSEEyNTYgRUNDMjU2IFRpbWVzdGFtcCBSZXNwb25kZXIgMjAyNSAxMFkwEwYHKoZIzj0CAQYIKoZIzj0DAQcDQgAEOpnJ1dlI70vziNfGsnAg894iynDv+TyM/WLDFvlk7Q9uI3eKNW5ux1vNXfywrXuGdLS7mGcY4R0fYSexTBGp8qOCAZUwggGRMAwGA1UdEwEB/wQCMAAwHQYDVR0OBBYEFCB2oaNucRWPdJUNrqQspDY/WBkVMB8GA1UdIwQYMBaAFO9vU0rp5AZ8esrikFb2L9RJ7MtOMA4GA1UdDwEB/wQEAwIHgDAWBgNVHSUBAf8EDDAKBggrBgEFBQcDCDCBlQYIKwYBBQUHAQEEgYgwgYUwJAYIKwYBBQUHMAGGGGh0dHA6Ly9vY3NwLmRpZ2ljZXJ0LmNvbTBdBggrBgEFBQcwAoZRaHR0cDovL2NhY2VydHMuZGlnaWNlcnQuY29tL0RpZ2lDZXJ0VHJ1c3RlZEc0VGltZVN0YW1waW5nUlNBNDA5NlNIQTI1NjIwMjVDQTEuY3J0MF8GA1UdHwRYMFYwVKBSoFCGTmh0dHA6Ly9jcmwzLmRpZ2ljZXJ0LmNvbS9EaWdpQ2VydFRydXN0ZWRHNFRpbWVTdGFtcGluZ1JTQTQwOTZTSEEyNTYyMDI1Q0ExLmNybDAgBgNVHSAEGTAXMAgGBmeBDAEEAjALBglghkgBhv1sBwEwDQYJKoZIhvcNAQELBQADggIBAEqc/irOueTptp7riY2S4C96BV8XhZnvnY8IgXVT5ByEr+H0Q17Tv1IBTuzrp/rOjqDa2CkOhsWkS1Lttw5qwnhMrwXROUV/wgBLSuO9z7A7KPHNbZpI6g0h84MQ0bMKF/xB1iLEka4yTPEVgeyndyj42tI7mbZBVaSc6o5P3aifVGqsoinyqwkYsCKS1NQnQURZ4+rsSU34dMu8c6/q1jjx1TCTXsxed4iaPcIvkEjl9nnuma23SgGB1jvLDPhGRtL8zWlnqlDdS5U4Oe0NTyqSgsYgpioKrMRl5knForGT84xLlDsqyw/TiY8r1zvEnh73+sTxcIZwhN4HNnnbB+0AlXbCdzqSmeyTLm8CNhsKiPTIMBpyiRt+ZPvL0BPTC84lQ99IuMvI8jknTGn3lx2LxsdGhgMAjmzNnsxkpp3VVq/Qz4dXBmpjQK401JHFkRdMqNFMycHRteFUKj5eZ5Y/9rS6pNtOg09hbCDECgmuNlCWyIUtoXS8ZxzfEqZKcnlOtoFOFU+WUVmqpm78PuEBSIB0KFj3jDsDaVR6n1gKHG9r+27KJoLyqDHeeZIxo253LeucYpBGkjHuU5RozZn6M26tQQvDixfXqgOi+GVtWYnkSSD9GAYvRIkF+Zh9CzcjVgPwroGIHfW8c0RxfvUaFV/Gq/N9xHwaRj7EUh5MMIIGtDCCBJygAwIBAgIQDcesVwX/IZkuQEMiDDpJhjANBgkqhkiG9w0BAQsFADBiMQswCQYDVQQGEwJVUzEVMBMGA1UEChMMRGlnaUNlcnQgSW5jMRkwFwYDVQQLExB3d3cuZGlnaWNlcnQuY29tMSEwHwYDVQQDExhEaWdpQ2VydCBUcnVzdGVkIFJvb3QgRzQwHhcNMjUwNTA3MDAwMDAwWhcNMzgwMTE0MjM1OTU5WjBpMQswCQYDVQQGEwJVUzEXMBUGA1UEChMORGlnaUNlcnQsIEluYy4xQTA/BgNVBAMTOERpZ2lDZXJ0IFRydXN0ZWQgRzQgVGltZVN0YW1waW5nIFJTQTQwOTYgU0hBMjU2IDIwMjUgQ0ExMIICIjANBgkqhkiG9w0BAQEFAAOCAg8AMIICCgKCAgEAtHgx0wqYQXK+PEbAHKx126NGaHS0URedTa2NDZS1mZaDLFTtQ2oRjzUXMmxCqvkbsDpz4aH+qbxeLho8I6jY3xL1IusLopuW2qftJYJaDNs1+JH7Z+QdSKWM06qchUP+AbdJgMQB3h2DZ0Mal5kYp77jYMVQXSZH++0trj6Ao+xh/AS7sQRuQL37QXbDhAktVJMQbzIBHYJBYgzWIjk8eDrYhXDEpKk7RdoX0M980EpLtlrNyHw0Xm+nt5pnYJU3Gmq6bNMI1I7Gb5IBZK4ivbVCiZv7PNBYqHEpNVWC2ZQ8BbfnFRQVESYOszFI2Wv82wnJRfN20VRS3hpLgIR4hjzL0hpoYGk81coWJ+KdPvMvaB0WkE/2qHxJ0ucS638ZxqU14lDnki7CcoKCz6eum5A19WZQHkqUJfdkDjHkccpL6uoG8pbF0LJAQQZxst7VvwDDjAmSFTUms+wV/FbWBqi7fTJnjq3hj0XbQcd8hjj/q8d6ylgxCZSKi17yVp2NL+cnT6Toy+rN+nM8M7LnLqCrO2JP3oW//1sfuZDKiDEb1AQ8es9Xr/u6bDTnYCTKIsDq1BtmXUqEG1NqzJKS4kOmxkYp2WyODi7vQTCBZtVFJfVZ3j7OgWmnhFr4yUozZtqgPrHRVHhGNKlYzyjlroPxul+bgIspzOwbtmsgY1MCAwEAAaOCAV0wggFZMBIGA1UdEwEB/wQIMAYBAf8CAQAwHQYDVR0OBBYEFO9vU0rp5AZ8esrikFb2L9RJ7MtOMB8GA1UdIwQYMBaAFOzX44LScV1kTN8uZz/nupiuHA9PMA4GA1UdDwEB/wQEAwIBhjATBgNVHSUEDDAKBggrBgEFBQcDCDB3BggrBgEFBQcBAQRrMGkwJAYIKwYBBQUHMAGGGGh0dHA6Ly9vY3NwLmRpZ2ljZXJ0LmNvbTBBBggrBgEFBQcwAoY1aHR0cDovL2NhY2VydHMuZGlnaWNlcnQuY29tL0RpZ2lDZXJ0VHJ1c3RlZFJvb3RHNC5jcnQwQwYDVR0fBDwwOjA4oDagNIYyaHR0cDovL2NybDMuZGlnaWNlcnQuY29tL0RpZ2lDZXJ0VHJ1c3RlZFJvb3RHNC5jcmwwIAYDVR0gBBkwFzAIBgZngQwBBAIwCwYJYIZIAYb9bAcBMA0GCSqGSIb3DQEBCwUAA4ICAQAXzvsWgBz+Bz0RdnEwvb4LyLU0pn/N0IfFiBowf0/Dm1wGc/Do7oVMY2mhXZXjDNJQa8j00DNqhCT3t+s8G0iP5kvN2n7Jd2E4/iEIUBO41P5F448rSYJ59Ib61eoalhnd6ywFLerycvZTAz40y8S4F3/a+Z1jEMK/DMm/axFSgoR8n6c3nuZB9BfBwAQYK9FHaoq2e26MHvVY9gCDA/JYsq7pGdogP8HRtrYfctSLANEBfHU16r3J05qX3kId+ZOczgj5kjatVB+NdADVZKON/gnZruMvNYY2o1f4MXRJDMdTSlOLh0HCn2cQLwQCqjFbqrXuvTPSegOOzr4EWj7PtspIHBldNE2K9i697cvaiIo2p61Ed2p8xMJb82Yosn0z4y25xUbI7GIN/TpVfHIqQ6Ku/qjTY6hc3hsXMrS+U0yy+GWqAXam4ToWd2UQ1KYT70kZjE4YtL8Pbzg0c1ugMZyZZd/BdHLiRu7hAWE6bTEm4XYRkA6Tl4KSFLFk43esaUeqGkH/wyW4N7OigizwJWeukcyIPbAvjSabnf7+Pu0VrFgoiovRDiyx3zEdmcif/sYQsfch28bZeUz2rtY/9TCA6TD8dC3JE3rYkrhLULy7Dc90G6e8BlqmyIjlgp2+VqsS9/wQD7yFylIz0scmbKvFoW2jNrbM1pD2T7m3XDGCAb4wggG6AgEBMH0waTELMAkGA1UEBhMCVVMxFzAVBgNVBAoTDkRpZ2lDZXJ0LCBJbmMuMUEwPwYDVQQDEzhEaWdpQ2VydCBUcnVzdGVkIEc0IFRpbWVTdGFtcGluZyBSU0E0MDk2IFNIQTI1NiAyMDI1IENBMQIQCRkNwSych9sy/Qq1UL3tSzANBglghkgBZQMEAgEFAKCB0TAaBgkqhkiG9w0BCQMxDQYLKoZIhvcNAQkQAQQwHAYJKoZIhvcNAQkFMQ8XDTI1MTEyNzEwMzA1MlowKwYLKoZIhvcNAQkQAgwxHDAaMBgwFgQU14e6eSljn7jBL0qmFlF0y+ClgPMwLwYJKoZIhvcNAQkEMSIEIJfoEPMN9jDgczcRbzH0vxgojknfo6f2VnlGB4ltpv78MDcGCyqGSIb3DQEJEAIvMSgwJjAkMCIEINMjr+Jf3T0W8m8vJZ585InbhtLZqrB7JvWYNwhgiVZ4MAoGCCqGSM49BAMCBEcwRQIhALVQyzNFWnVBf7Pu347vxPoGrh08spDnh0mxFe/0gdiDAiBJnCuZZOERGiUH+yRbB6jU/X+pE0ETn0EgZdoeG1pahGVyVmFsc6Fob2NzcFZhbHOBWQLbMIIC1woBAKCCAtAwggLMBgkrBgEFBQcwAQEEggK9MIICuTCBoqIWBBTQrUKK8HoUByXGl8BDqCOF6LUtIxgPMjAyNTExMjYxNjQ2NDJaMHcwdTBNMAkGBSsOAwIaBQAEFIrvsgEQb2tlFU3Bo7dRqYtzkssWBBTQrUKK8HoUByXGl8BDqCOF6LUtIwIUSXMgaz5138lsr39W/y0qrbBAB92AABgPMjAyNTExMjYxNjQ2NDJaoBEYDzIwMjUxMjAzMTY0NjQyWjANBgkqhkiG9w0BAQsFAAOCAgEAS+QT9zz0Rf5vY6x0LX2rZi4IWWqSdsa4DS6mVDQhqCi6RdYaVpD+Dt+MRmGpn5Nxi5EoT1tCLXE9uZncHrzW2A+Wbki6kE3NO79ksnCXRsrttClizeGD7K+mlv42Y59gUbkZw/tRlKpxTc8OB8fMGQ0HqYVncSDOqIYcI11JXhG95IssRv2OhFAX/5Y2OVDD8XExyYGkx+eP2Ee2add5AmFRAphCqpN/mIARB5/mFNEjcX3iqiLQrbzOrUz2gNu+97e/flOqfxAa59RzdQ728T6CjF5nfrGRTkVzi8ZZExb6pmsqB8gHFbJB1zxx5kIgRQrn2HcWyeVE2B6mcCqeFHdRFNojIPJq41fq8XuVOn96aXQ8np1DFZ5p1UgHS0kfVOOu2VRbdOnaYxn2juM984R7wlUvC8mTHT2H6p6vhTIJJf4a6MPh33xr7RGBPAluE8ra8YwqdFrLnKkGDbKL4TE5XpveRR/+5YFrOVM0GolDxDE/priQg3Q6ila0I7caFYJNjJQXq+OYwLMgPDENnqhZFSNUzI95ZkZsbvT3x+DsEeeg70K7dPOgKfsG2ptiy5KwHrmOsg4HLJdD4UJjt2Ga0LhtuGfLpc8nnJLiAVvDVU+xMrnRbbmErWA7/WD3OXIUJ6U6PfkpCkmuyF/2faW+Omc+YgOzf9x5VQrOc2pjcGFkWRBPAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAD2WQEAelHqq8KQ6w4Del4AEiZv0kFwLI3RQrI1zZk/kbyohTL2K+Z+/vayG2xaWfOhf8I0V0lCKfCbcjJ94gxwKvPJ6ycPeTM9xKEfW5XAfdfgABGuNGRCiv3FdEUTdBVN/Vwv0n4pwLlnyjBIUWNcoEluzG5NRXGL7YGmmERebD//K34tQXFXpu92W4dLezR2WmLnMtx9gQCwZ2pwvh1A0zPj5/TFGpCePTiDE6XRnAhDH6sFV8KcxfUFbW1JmylL3bJI1s+Vg0Bdx4FxIDwU3OkoSBZ05O4hrS/qF/0/Z8k/fx7Q79Ywt17nnJy3A+ZWlnBT1CO3x142R0EBUFXFW0tMrw==

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 >
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

Options

  • Cleaning covers
  • Rotation monitoring
  • Moveable design
  • Intermediate bearings with high-wear-resistant ODM - DUROGLIDE
For individual requirements or special configurations, please contact us.
Request >

Designs & products

ODM – Trough Screw Conveyors TSF

  • Conveying, dosing and discharge of bulk materials
  • Horizontal conveying and inclines of up to approx. 30°; special designs available for inclines of up to approx. 70°
  • Conveying lengths of up to approx. 12 m without intermediate bearings, and up to approx. 64 m with intermediate bearings
  • Volumetric flow rates of up to approx. 1,100 m³/h
  • Suitable for reversible operation, depending on configuration

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 – Pipe Screw Conveyors RSF

  • Conveying, dosing and discharge of bulk materials
  • Enclosed tubular design for low-dust conveying processes
  • Horizontal to vertical conveying layouts available
  • Conveying lengths of up to approx. 12 m without intermediate bearings
  • Volumetric flow rates of up to approx. 1,100 m³/h
  • Suitable for reversible operation, depending on configuration

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 – Vertical Screw Conveyors VSF

  • Vertical conveying of bulk materials
  • Enclosed tubular design for low-dust conveying processes
  • Conveying heights of up to approx. 12 m without intermediate bearings
  • Volumetric flow rates of up to approx. 1,200 m³/h
  • High conveying capacity combined with a compact design

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 – Discharge and Dosing Screw Systems ScrewDOS® TSF

  • Discharge and dosing of bulk materials
  • Primarily used for discharge from silos and hoppers
  • Conveying lengths of up to approx. 11 m
  • Volumetric flow rates of up to approx. 2,800 m³/h (depending on the number of installed screw shafts)
  • Suitable for mass flow discharge, depending on configuration

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 – Feeding Screw Conveyors ScrewFEED TSF / RSF

  • Conveying, feeding and charging of process chambers
  • Design with U-shaped screw trough or enclosed tubular configuration
  • Conveying lengths of up to approx. 10 m
  • Volumetric flow rates of up to approx. 500 m³/h
  • Screw shaft available in cantilever-mounted design

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 – Trough Screw System ScrewSPLIT TSF

  • Conveying, dosing, discharge and distribution of bulk materials
  • Feeding of multiple conveying lines possible
  • Conveying lengths of up to approx. 12 m without intermediate bearings
  • Volumetric flow rates of up to approx. 900 m³/h
  • Suitable for reversible operation, depending on configuration

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 – Cooling Screw Systems ScrewCOOL RSF

  • Conveying with simultaneous cooling of hot bulk materials
  • Enclosed tubular design for low-dust conveying processes
  • Conveying heights of up to approx. 12 m without intermediate bearings
  • Volumetric flow rates of up to approx. 400 m³/h
  • Optional heating of bulk materials using heated media

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 – ScrewSCREEN Systems SSF

  • Conveying with simultaneous separation of bulk materials
  • Separation into two or more fractions or particle size classes
  • Separation of potential contaminants possible
  • Conveying heights of up to approx. 12 m without intermediate bearings
  • Volumetric flow rates of up to approx. 700 m³/h
  • Can be configured as an application-specific solution for material flow diversion

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 – Mixing Screw Conveyors ScrewMIX MSF

  • Simultaneous mixing and conveying of bulk materials
  • Horizontal to slightly inclined conveying layouts
  • Conveying heights of up to approx. 12 m without intermediate bearings
  • Volumetric flow rates of up to approx. 500 m³/h
  • Optional addition of liquids or additives during the mixing process, depending on configuration

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 »

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.

Contact person

Svetoslav Chopov

Sales International

Contact person

Arnim Morgenweck

Sales National

Contact person

Maximilian Brentrup

Sales National

Contact person

Rafael Castan

Sales International (spanish speaking areas)

/ 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.