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Thermo-structural analysis of the rf-induced pulsed surface heating of the CLIC accelerating structures

The CLIC (Compact LInear Collider) is being studied at CERN as a potential multi-TeV e+e- collider. The acceleration of the particles is done by RF (Radio Frequency). The surfaces of the RF (radio frequency) accelerating cavities are exposed to high pulsed RF currents which induce cyclic thermal str...

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Detalles Bibliográficos
Autores principales: Huopana, Jouni Juhani, Heikkinen, Samuli Tapio
Lenguaje:eng
Publicado: 2006
Materias:
Acceso en línea:http://cds.cern.ch/record/1012908
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author Huopana, Jouni Juhani
Heikkinen, Samuli Tapio
author_facet Huopana, Jouni Juhani
Heikkinen, Samuli Tapio
author_sort Huopana, Jouni Juhani
collection CERN
description The CLIC (Compact LInear Collider) is being studied at CERN as a potential multi-TeV e+e- collider. The acceleration of the particles is done by RF (Radio Frequency). The surfaces of the RF (radio frequency) accelerating cavities are exposed to high pulsed RF currents which induce cyclic thermal stresses. These cyclic stresses are crucial for the fatigue lifetime of the cavities. To study the fatigue phenomenon properly the induced stresses must be well known. ANSYS FEM simulations were made to study the thermo-structural behaviour of the CLIC accelerating structure in copper zirconium, bimetallic and diamond coated constructions. The simulations showed the existence of high thermal stresses and low stress level shockwaves. It was also shown that the bimetallic structure increases stress values due to the differences in material properties. Diamond coating was found to reduce the thermal stresses.
id cern-1012908
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2006
record_format invenio
spelling cern-10129082023-07-20T15:04:59Zhttp://cds.cern.ch/record/1012908engHuopana, Jouni JuhaniHeikkinen, Samuli TapioThermo-structural analysis of the rf-induced pulsed surface heating of the CLIC accelerating structuresAccelerators and Storage RingsThe CLIC (Compact LInear Collider) is being studied at CERN as a potential multi-TeV e+e- collider. The acceleration of the particles is done by RF (Radio Frequency). The surfaces of the RF (radio frequency) accelerating cavities are exposed to high pulsed RF currents which induce cyclic thermal stresses. These cyclic stresses are crucial for the fatigue lifetime of the cavities. To study the fatigue phenomenon properly the induced stresses must be well known. ANSYS FEM simulations were made to study the thermo-structural behaviour of the CLIC accelerating structure in copper zirconium, bimetallic and diamond coated constructions. The simulations showed the existence of high thermal stresses and low stress level shockwaves. It was also shown that the bimetallic structure increases stress values due to the differences in material properties. Diamond coating was found to reduce the thermal stresses.CERN-OPEN-2007-002CLIC-Note-702oai:cds.cern.ch:10129082006-08-28
spellingShingle Accelerators and Storage Rings
Huopana, Jouni Juhani
Heikkinen, Samuli Tapio
Thermo-structural analysis of the rf-induced pulsed surface heating of the CLIC accelerating structures
title Thermo-structural analysis of the rf-induced pulsed surface heating of the CLIC accelerating structures
title_full Thermo-structural analysis of the rf-induced pulsed surface heating of the CLIC accelerating structures
title_fullStr Thermo-structural analysis of the rf-induced pulsed surface heating of the CLIC accelerating structures
title_full_unstemmed Thermo-structural analysis of the rf-induced pulsed surface heating of the CLIC accelerating structures
title_short Thermo-structural analysis of the rf-induced pulsed surface heating of the CLIC accelerating structures
title_sort thermo-structural analysis of the rf-induced pulsed surface heating of the clic accelerating structures
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/1012908
work_keys_str_mv AT huopanajounijuhani thermostructuralanalysisoftherfinducedpulsedsurfaceheatingoftheclicacceleratingstructures
AT heikkinensamulitapio thermostructuralanalysisoftherfinducedpulsedsurfaceheatingoftheclicacceleratingstructures