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Experimental study of rf pulsed heating

Cyclic thermal stresses produced by rf pulsed heating can be the limiting factor on the attainable reliable gradients for room temperature linear accelerators. This is especially true for structures that have complicated features for wakefield damping. These limits could be pushed higher by using sp...

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Detalles Bibliográficos
Autores principales: Laurent, L, Heikkinen, S, Nantista, C, Dolgashev, V, Higashi, Y, Aicheler, M, Tantawi, S, Wuensch, W
Lenguaje:eng
Publicado: 2011
Materias:
XX
Acceso en línea:https://dx.doi.org/10.1103/PhysRevSTAB.14.041001
http://cds.cern.ch/record/1399819
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author Laurent, L
Heikkinen, S
Nantista, C
Dolgashev, V
Higashi, Y
Aicheler, M
Tantawi, S
Wuensch, W
author_facet Laurent, L
Heikkinen, S
Nantista, C
Dolgashev, V
Higashi, Y
Aicheler, M
Tantawi, S
Wuensch, W
author_sort Laurent, L
collection CERN
description Cyclic thermal stresses produced by rf pulsed heating can be the limiting factor on the attainable reliable gradients for room temperature linear accelerators. This is especially true for structures that have complicated features for wakefield damping. These limits could be pushed higher by using special types of copper, copper alloys, or other conducting metals in constructing partial or complete accelerator structures. Here we present an experimental study aimed at determining the potential of these materials for tolerating cyclic thermal fatigue due to rf magnetic fields. A special cavity that has no electric field on the surface was employed in these studies. The cavity shape concentrates the magnetic field on one flat surface where the test material is placed. The materials tested in this study have included oxygen free electronic grade copper, copper zirconium, copper chromium, hot isostatically pressed copper, single crystal copper, electroplated copper, Glidcop (R), copper silver, and silver plated copper. The samples were exposed to different machining and heat treatment processes prior to rf processing. Each sample was tested to a peak pulsed heating temperature of approximately 110 degrees C and remained at this temperature for approximately 10 X 10(6) rf pulses. In general, the results showed the possibility of pushing the gradient limits due to pulsed heating fatigue by the use of copper zirconium and copper chromium alloys.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2011
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spelling cern-13998192019-09-30T06:29:59Zdoi:10.1103/PhysRevSTAB.14.041001http://cds.cern.ch/record/1399819engLaurent, LHeikkinen, SNantista, CDolgashev, VHigashi, YAicheler, MTantawi, SWuensch, WExperimental study of rf pulsed heatingXXCyclic thermal stresses produced by rf pulsed heating can be the limiting factor on the attainable reliable gradients for room temperature linear accelerators. This is especially true for structures that have complicated features for wakefield damping. These limits could be pushed higher by using special types of copper, copper alloys, or other conducting metals in constructing partial or complete accelerator structures. Here we present an experimental study aimed at determining the potential of these materials for tolerating cyclic thermal fatigue due to rf magnetic fields. A special cavity that has no electric field on the surface was employed in these studies. The cavity shape concentrates the magnetic field on one flat surface where the test material is placed. The materials tested in this study have included oxygen free electronic grade copper, copper zirconium, copper chromium, hot isostatically pressed copper, single crystal copper, electroplated copper, Glidcop (R), copper silver, and silver plated copper. The samples were exposed to different machining and heat treatment processes prior to rf processing. Each sample was tested to a peak pulsed heating temperature of approximately 110 degrees C and remained at this temperature for approximately 10 X 10(6) rf pulses. In general, the results showed the possibility of pushing the gradient limits due to pulsed heating fatigue by the use of copper zirconium and copper chromium alloys.oai:cds.cern.ch:13998192011
spellingShingle XX
Laurent, L
Heikkinen, S
Nantista, C
Dolgashev, V
Higashi, Y
Aicheler, M
Tantawi, S
Wuensch, W
Experimental study of rf pulsed heating
title Experimental study of rf pulsed heating
title_full Experimental study of rf pulsed heating
title_fullStr Experimental study of rf pulsed heating
title_full_unstemmed Experimental study of rf pulsed heating
title_short Experimental study of rf pulsed heating
title_sort experimental study of rf pulsed heating
topic XX
url https://dx.doi.org/10.1103/PhysRevSTAB.14.041001
http://cds.cern.ch/record/1399819
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