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Scaled prototype of a tantalum target embedded in expanded graphite for antiproton production: Design, manufacturing, and testing under proton beam impacts

This study presents a further step within the ongoing R&D activities for the redesign of the CERN’s Antiproton Decelerator Production Target (AD-Target). A first scaled target prototype, constituted of a sliced core made of ten Ta rods -8  mm diameter, 16 mm length-embedded in a compressed expan...

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Autores principales: Torregrosa Martin, Claudio, Calviani, Marco, Perillo-Marcone, Antonio, Ferriere, Romain, Solieri, Nicola, Butcher, Mark, Grec, Lucian-Mircea, Canhoto Espadanal, Joao
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevAccelBeams.21.073001
http://cds.cern.ch/record/2314653
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author Torregrosa Martin, Claudio
Calviani, Marco
Perillo-Marcone, Antonio
Ferriere, Romain
Solieri, Nicola
Butcher, Mark
Grec, Lucian-Mircea
Canhoto Espadanal, Joao
author_facet Torregrosa Martin, Claudio
Calviani, Marco
Perillo-Marcone, Antonio
Ferriere, Romain
Solieri, Nicola
Butcher, Mark
Grec, Lucian-Mircea
Canhoto Espadanal, Joao
author_sort Torregrosa Martin, Claudio
collection CERN
description This study presents a further step within the ongoing R&D activities for the redesign of the CERN’s Antiproton Decelerator Production Target (AD-Target). A first scaled target prototype, constituted of a sliced core made of ten Ta rods -8  mm diameter, 16 mm length-embedded in a compressed expanded graphite (EG) matrix, inserted in a 44 mm diameter Ti-6Al-4V container, has been built and tested under proton beam impacts at the CERN’s HiRadMat facility, in the so called HRMT-42 experiment. This prototype has been designed following the lessons learned from previous numerical and experimental works (HRMT-27 experiment) aiming at answering the open questions left in these studies. Velocity data recorded on-line at the target periphery during the HRMT-42 experiment is presented, showing features of its dynamic response to proton beam impacts. Furthermore, x-ray and neutron tomographies of the target prototype after irradiation have been performed. These non-destructive techniques show the extensive plastic deformation of the Ta core, but suggest that the EG matrix can adapt to such deformation, which is a positive result. The neutron tomography successfully revealed the internal state of the tantalum core, showing the appearance of voids of several hundreds of micrometers, in particular in the downstream rods of the core. The possible origin of such voids is discussed while future microstructure analysis after the target opening will try to clarify their nature.
id cern-2314653
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
record_format invenio
spelling cern-23146532023-03-14T20:14:14Zdoi:10.1103/PhysRevAccelBeams.21.073001http://cds.cern.ch/record/2314653engTorregrosa Martin, ClaudioCalviani, MarcoPerillo-Marcone, AntonioFerriere, RomainSolieri, NicolaButcher, MarkGrec, Lucian-MirceaCanhoto Espadanal, JoaoScaled prototype of a tantalum target embedded in expanded graphite for antiproton production: Design, manufacturing, and testing under proton beam impactsphysics.acc-phAccelerators and Storage RingsThis study presents a further step within the ongoing R&D activities for the redesign of the CERN’s Antiproton Decelerator Production Target (AD-Target). A first scaled target prototype, constituted of a sliced core made of ten Ta rods -8  mm diameter, 16 mm length-embedded in a compressed expanded graphite (EG) matrix, inserted in a 44 mm diameter Ti-6Al-4V container, has been built and tested under proton beam impacts at the CERN’s HiRadMat facility, in the so called HRMT-42 experiment. This prototype has been designed following the lessons learned from previous numerical and experimental works (HRMT-27 experiment) aiming at answering the open questions left in these studies. Velocity data recorded on-line at the target periphery during the HRMT-42 experiment is presented, showing features of its dynamic response to proton beam impacts. Furthermore, x-ray and neutron tomographies of the target prototype after irradiation have been performed. These non-destructive techniques show the extensive plastic deformation of the Ta core, but suggest that the EG matrix can adapt to such deformation, which is a positive result. The neutron tomography successfully revealed the internal state of the tantalum core, showing the appearance of voids of several hundreds of micrometers, in particular in the downstream rods of the core. The possible origin of such voids is discussed while future microstructure analysis after the target opening will try to clarify their nature.This study presents a further step within the ongoing R&D activities for the redesign of the CERN's Antiproton Decelerator Production Target (AD-Target). A first scaled target prototype, constituted of a sliced core made of ten Ta rods -8 mm diameter, 16 mm length- embedded in a compressed expanded graphite (EG) matrix, inserted in a 44 mm diameter Ti-6Al-4V container, has been built and tested under proton beam impacts at the CERN's HiRadMat facility, in the so called HRMT-42 experiment. This prototype has been designed following the lessons learned from previous numerical and experimental works (HRMT-27 experiment) aiming at answering the open questions left in these studies. Velocity data recorded on-line at the target periphery during the HRMT-42 experiment is presented, showing features of its dynamic response to proton beam impacts. Furthermore, x-ray and neutron tomographies of the target prototype after irradiation have been performed. These non-destructive techniques show the extensive plastic deformation of the Ta core, but suggest that the EG matrix can adapt to such deformation, which is a positive result. The neutron tomography successfully revealed the internal state of the tantalum core, showing the appearance of voids of several hundreds of micrometers, in particular in the downstream rods of the core. The possible origin of such voids is discussed while future microstructure analysis after the target opening will try to clarify their nature.arXiv:1803.09776oai:cds.cern.ch:23146532018-03-26
spellingShingle physics.acc-ph
Accelerators and Storage Rings
Torregrosa Martin, Claudio
Calviani, Marco
Perillo-Marcone, Antonio
Ferriere, Romain
Solieri, Nicola
Butcher, Mark
Grec, Lucian-Mircea
Canhoto Espadanal, Joao
Scaled prototype of a tantalum target embedded in expanded graphite for antiproton production: Design, manufacturing, and testing under proton beam impacts
title Scaled prototype of a tantalum target embedded in expanded graphite for antiproton production: Design, manufacturing, and testing under proton beam impacts
title_full Scaled prototype of a tantalum target embedded in expanded graphite for antiproton production: Design, manufacturing, and testing under proton beam impacts
title_fullStr Scaled prototype of a tantalum target embedded in expanded graphite for antiproton production: Design, manufacturing, and testing under proton beam impacts
title_full_unstemmed Scaled prototype of a tantalum target embedded in expanded graphite for antiproton production: Design, manufacturing, and testing under proton beam impacts
title_short Scaled prototype of a tantalum target embedded in expanded graphite for antiproton production: Design, manufacturing, and testing under proton beam impacts
title_sort scaled prototype of a tantalum target embedded in expanded graphite for antiproton production: design, manufacturing, and testing under proton beam impacts
topic physics.acc-ph
Accelerators and Storage Rings
url https://dx.doi.org/10.1103/PhysRevAccelBeams.21.073001
http://cds.cern.ch/record/2314653
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