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Design Guidelines for Ferrite Absorbers Submitted to RF-induced Heating

The use of ferrite absorbers is one of the most effective means of damping potentially harmful high order RF modes, which may lead to beam instabilities and excessive power losses in accelerator devices. However, the power deposited on ferrite absorbers themselves maylead to ferrite exceeding its Cu...

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Detalles Bibliográficos
Autores principales: Bertarelli, A, Garlasche, M
Lenguaje:eng
Publicado: 2013
Materias:
Acceso en línea:http://cds.cern.ch/record/1635958
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author Bertarelli, A
Garlasche, M
author_facet Bertarelli, A
Garlasche, M
author_sort Bertarelli, A
collection CERN
description The use of ferrite absorbers is one of the most effective means of damping potentially harmful high order RF modes, which may lead to beam instabilities and excessive power losses in accelerator devices. However, the power deposited on ferrite absorbers themselves maylead to ferrite exceeding its Curie temperature, losing its damping properties. An evaluation of the ferrite capability to dissipate deposited heat is hence of paramount importance for the safe design of particle accelerator devices. In this paper, figures of merit are proposed to assess the maximum specific power allowed on a generic ferrite tile, before it reaches its Curie temperature. Due to its inherent brittleness, sufficient contact pressure between ferrite and its housing, allowing heat transmission by conduction, can hardly be applied. A semi-analytical study is thus performed, assuming that ferrite is evacuating heat solely through radiation. The described method is then exemplified in the case of the BPM-embedded tertiary collimator (TCTP) designed in the framework of the LHC collimation upgrade.
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institution Organización Europea para la Investigación Nuclear
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publishDate 2013
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spelling cern-16359582022-08-10T21:06:16Zhttp://cds.cern.ch/record/1635958engBertarelli, AGarlasche, MDesign Guidelines for Ferrite Absorbers Submitted to RF-induced HeatingAccelerators and Storage RingsThe use of ferrite absorbers is one of the most effective means of damping potentially harmful high order RF modes, which may lead to beam instabilities and excessive power losses in accelerator devices. However, the power deposited on ferrite absorbers themselves maylead to ferrite exceeding its Curie temperature, losing its damping properties. An evaluation of the ferrite capability to dissipate deposited heat is hence of paramount importance for the safe design of particle accelerator devices. In this paper, figures of merit are proposed to assess the maximum specific power allowed on a generic ferrite tile, before it reaches its Curie temperature. Due to its inherent brittleness, sufficient contact pressure between ferrite and its housing, allowing heat transmission by conduction, can hardly be applied. A semi-analytical study is thus performed, assuming that ferrite is evacuating heat solely through radiation. The described method is then exemplified in the case of the BPM-embedded tertiary collimator (TCTP) designed in the framework of the LHC collimation upgrade.CERN-ACC-2013-0269oai:cds.cern.ch:16359582013-05-08
spellingShingle Accelerators and Storage Rings
Bertarelli, A
Garlasche, M
Design Guidelines for Ferrite Absorbers Submitted to RF-induced Heating
title Design Guidelines for Ferrite Absorbers Submitted to RF-induced Heating
title_full Design Guidelines for Ferrite Absorbers Submitted to RF-induced Heating
title_fullStr Design Guidelines for Ferrite Absorbers Submitted to RF-induced Heating
title_full_unstemmed Design Guidelines for Ferrite Absorbers Submitted to RF-induced Heating
title_short Design Guidelines for Ferrite Absorbers Submitted to RF-induced Heating
title_sort design guidelines for ferrite absorbers submitted to rf-induced heating
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/1635958
work_keys_str_mv AT bertarellia designguidelinesforferriteabsorberssubmittedtorfinducedheating
AT garlaschem designguidelinesforferriteabsorberssubmittedtorfinducedheating