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Cryopumping and Vacuum Systems
The understanding of complex and/or large vacuum systems operating at cryogenic temperatures requires a specific knowledge of the vacuum science at such temperatures. At room temperature, molecules with a low binding energy to a surface are not pumped. However, at cryogenic temperatures, their sojou...
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Lenguaje: | eng |
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2020
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Acceso en línea: | http://cds.cern.ch/record/2723432 |
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author | Baglin, Vincent |
author_facet | Baglin, Vincent |
author_sort | Baglin, Vincent |
collection | CERN |
description | The understanding of complex and/or large vacuum systems operating at cryogenic temperatures requires a specific knowledge of the vacuum science at such temperatures. At room temperature, molecules with a low binding energy to a surface are not pumped. However, at cryogenic temperatures, their sojourn time is significantly increased, thanks to the temperature reduction, which allow a "cryopumping". This lecture gives an introduction to the field of cryogenic vacuum, discussing surface desorption, sticking probability, thermal transpiration, adsorption isotherms, vapour pressure of usual gases, industrial surfaces and roughness factors. These aspects are illustrated with the case of the Large Hardon Collider explaining its beam screen and its cryosorber, leaks and beam vacuum system modelling in a cryogenic environment. Finally, operation of cryogenic beam vacuum systems is discussed for LHC and other cryogenic machines. |
id | cern-2723432 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2020 |
record_format | invenio |
spelling | cern-27234322020-07-16T03:24:00Zhttp://cds.cern.ch/record/2723432engBaglin, VincentCryopumping and Vacuum Systemsphysics.acc-phAccelerators and Storage Ringsphysics.ins-detDetectors and Experimental TechniquesThe understanding of complex and/or large vacuum systems operating at cryogenic temperatures requires a specific knowledge of the vacuum science at such temperatures. At room temperature, molecules with a low binding energy to a surface are not pumped. However, at cryogenic temperatures, their sojourn time is significantly increased, thanks to the temperature reduction, which allow a "cryopumping". This lecture gives an introduction to the field of cryogenic vacuum, discussing surface desorption, sticking probability, thermal transpiration, adsorption isotherms, vapour pressure of usual gases, industrial surfaces and roughness factors. These aspects are illustrated with the case of the Large Hardon Collider explaining its beam screen and its cryosorber, leaks and beam vacuum system modelling in a cryogenic environment. Finally, operation of cryogenic beam vacuum systems is discussed for LHC and other cryogenic machines.arXiv:2006.01574oai:cds.cern.ch:27234322020-06-02 |
spellingShingle | physics.acc-ph Accelerators and Storage Rings physics.ins-det Detectors and Experimental Techniques Baglin, Vincent Cryopumping and Vacuum Systems |
title | Cryopumping and Vacuum Systems |
title_full | Cryopumping and Vacuum Systems |
title_fullStr | Cryopumping and Vacuum Systems |
title_full_unstemmed | Cryopumping and Vacuum Systems |
title_short | Cryopumping and Vacuum Systems |
title_sort | cryopumping and vacuum systems |
topic | physics.acc-ph Accelerators and Storage Rings physics.ins-det Detectors and Experimental Techniques |
url | http://cds.cern.ch/record/2723432 |
work_keys_str_mv | AT baglinvincent cryopumpingandvacuumsystems |