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Flow induced vibrations of the CLIC X-Band accelerating structures

Turbulent cooling water in the Compact Linear Collider (CLIC) accelerating structures will inevitably induce some vibrations. The maximum acceptable amplitude of vibrations is small, as vibrations in the accelerating structure could lead to beam jitter and alignment difficulties. A Finite Element An...

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Autores principales: Charles, Tessa, Ryan, Kris, Boland, Mark, Riddone, Germana, Samoshkin, Alexandre
Lenguaje:eng
Publicado: 2011
Materias:
Acceso en línea:http://cds.cern.ch/record/1473441
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author Charles, Tessa
Ryan, Kris
Boland, Mark
Riddone, Germana
Samoshkin, Alexandre
author_facet Charles, Tessa
Ryan, Kris
Boland, Mark
Riddone, Germana
Samoshkin, Alexandre
author_sort Charles, Tessa
collection CERN
description Turbulent cooling water in the Compact Linear Collider (CLIC) accelerating structures will inevitably induce some vibrations. The maximum acceptable amplitude of vibrations is small, as vibrations in the accelerating structure could lead to beam jitter and alignment difficulties. A Finite Element Analysis model is needed to identify the conditions under which turbulent instabilities and significant vibrations are induced. Due to the orders of magnitude difference between the fluid motion and the structure’s motion, small vibrations of the structure will not contribute to the turbulence of the cooling fluid. Therefore the resonant conditions of the cooling channels presented in this paper, directly identify the natural frequencies of the accelerating structures to be avoided under normal operating conditions. In this paper a 2D model of the cooling channel is presented finding spots of turbulence being formed from a shear layer instability. This effect is observed through direct visualization and wavelet analysis.
id cern-1473441
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2011
record_format invenio
spelling cern-14734412023-07-20T15:01:37Zhttp://cds.cern.ch/record/1473441engCharles, TessaRyan, KrisBoland, MarkRiddone, GermanaSamoshkin, AlexandreFlow induced vibrations of the CLIC X-Band accelerating structuresAccelerators and Storage RingsTurbulent cooling water in the Compact Linear Collider (CLIC) accelerating structures will inevitably induce some vibrations. The maximum acceptable amplitude of vibrations is small, as vibrations in the accelerating structure could lead to beam jitter and alignment difficulties. A Finite Element Analysis model is needed to identify the conditions under which turbulent instabilities and significant vibrations are induced. Due to the orders of magnitude difference between the fluid motion and the structure’s motion, small vibrations of the structure will not contribute to the turbulence of the cooling fluid. Therefore the resonant conditions of the cooling channels presented in this paper, directly identify the natural frequencies of the accelerating structures to be avoided under normal operating conditions. In this paper a 2D model of the cooling channel is presented finding spots of turbulence being formed from a shear layer instability. This effect is observed through direct visualization and wavelet analysis.CERN-OPEN-2012-023CLIC-Note-929oai:cds.cern.ch:14734412011-09-01
spellingShingle Accelerators and Storage Rings
Charles, Tessa
Ryan, Kris
Boland, Mark
Riddone, Germana
Samoshkin, Alexandre
Flow induced vibrations of the CLIC X-Band accelerating structures
title Flow induced vibrations of the CLIC X-Band accelerating structures
title_full Flow induced vibrations of the CLIC X-Band accelerating structures
title_fullStr Flow induced vibrations of the CLIC X-Band accelerating structures
title_full_unstemmed Flow induced vibrations of the CLIC X-Band accelerating structures
title_short Flow induced vibrations of the CLIC X-Band accelerating structures
title_sort flow induced vibrations of the clic x-band accelerating structures
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/1473441
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AT ryankris flowinducedvibrationsoftheclicxbandacceleratingstructures
AT bolandmark flowinducedvibrationsoftheclicxbandacceleratingstructures
AT riddonegermana flowinducedvibrationsoftheclicxbandacceleratingstructures
AT samoshkinalexandre flowinducedvibrationsoftheclicxbandacceleratingstructures