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High Power RF Induced Thermal Fatigue in the High Gradient CLIC Accelerating Structures

The need for high accelerating gradients for the CLIC (Compact Linear Collider) imposes considerable constraints on the materials of the accelerating structures. The surfaces exposed to high pulsed RF (Radio Frequency) currents are subjected to cyclic thermal stresses possibly resulting in surface b...

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Autores principales: Arnau-Izquierdo, G, Calatroni, S, Heikkinen, S, Neupert, N, Wuensch, W
Lenguaje:eng
Publicado: 2007
Materias:
Acceso en línea:http://cds.cern.ch/record/1026736
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author Arnau-Izquierdo, G
Calatroni, S
Heikkinen, S
Neupert, N
Wuensch, W
author_facet Arnau-Izquierdo, G
Calatroni, S
Heikkinen, S
Neupert, N
Wuensch, W
author_sort Arnau-Izquierdo, G
collection CERN
description The need for high accelerating gradients for the CLIC (Compact Linear Collider) imposes considerable constraints on the materials of the accelerating structures. The surfaces exposed to high pulsed RF (Radio Frequency) currents are subjected to cyclic thermal stresses possibly resulting in surface break up by fatigue. Various high strength alloys from the group of high conductivity copper alloys have been selected and have been tested in different states, with different surface treatments and in different stress ratios. Low to medium cycle fatigue data (up to 108 cycles) of fully compressive surface thermal stresses has been collected by means of a pulsed laser surface heating apparatus. The surface damage has been characterized by SEM observations and roughness measurements. High cycle fatigue data, up to 7x1010 cycles, of varying stress ratio has been collected in high frequency bulk fatigue tests using an ultrasonic apparatus. Up-to-date results from these experiments are presented.
id cern-1026736
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2007
record_format invenio
spelling cern-10267362023-07-20T15:03:19Zhttp://cds.cern.ch/record/1026736engArnau-Izquierdo, GCalatroni, SHeikkinen, SNeupert, NWuensch, WHigh Power RF Induced Thermal Fatigue in the High Gradient CLIC Accelerating StructuresAccelerators and Storage RingsThe need for high accelerating gradients for the CLIC (Compact Linear Collider) imposes considerable constraints on the materials of the accelerating structures. The surfaces exposed to high pulsed RF (Radio Frequency) currents are subjected to cyclic thermal stresses possibly resulting in surface break up by fatigue. Various high strength alloys from the group of high conductivity copper alloys have been selected and have been tested in different states, with different surface treatments and in different stress ratios. Low to medium cycle fatigue data (up to 108 cycles) of fully compressive surface thermal stresses has been collected by means of a pulsed laser surface heating apparatus. The surface damage has been characterized by SEM observations and roughness measurements. High cycle fatigue data, up to 7x1010 cycles, of varying stress ratio has been collected in high frequency bulk fatigue tests using an ultrasonic apparatus. Up-to-date results from these experiments are presented.CERN-OPEN-2007-013CLIC-Note-708oai:cds.cern.ch:10267362007-04-04
spellingShingle Accelerators and Storage Rings
Arnau-Izquierdo, G
Calatroni, S
Heikkinen, S
Neupert, N
Wuensch, W
High Power RF Induced Thermal Fatigue in the High Gradient CLIC Accelerating Structures
title High Power RF Induced Thermal Fatigue in the High Gradient CLIC Accelerating Structures
title_full High Power RF Induced Thermal Fatigue in the High Gradient CLIC Accelerating Structures
title_fullStr High Power RF Induced Thermal Fatigue in the High Gradient CLIC Accelerating Structures
title_full_unstemmed High Power RF Induced Thermal Fatigue in the High Gradient CLIC Accelerating Structures
title_short High Power RF Induced Thermal Fatigue in the High Gradient CLIC Accelerating Structures
title_sort high power rf induced thermal fatigue in the high gradient clic accelerating structures
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/1026736
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