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Thermomechanical Characterisation of Copper Diamond and Benchmarking with the MultiMat Experiment

The High-Luminosity Large Hadron Collider upgrade at CERN will result in an increase in the energy stored in the circulating particle beams, making it necessary to assess the thermomechanical performance of currently used and newly developed materials for use in beam intercepting devices such as col...

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Autores principales: Portelli, Marcus, Pasquali, Michele, Carra, Federico, Bertarelli, Alessandro, Mollicone, Pierluigi, Sammut, Nicholas, de Frutos, Óscar Sacristán, Valenzuela, Jorge Guardia, Neubauer, Erich, Kitzmantel, Michael, Grech, David
Lenguaje:eng
Publicado: 2021
Materias:
Acceso en línea:https://dx.doi.org/10.1155/2021/8879400
http://cds.cern.ch/record/2751449
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author Portelli, Marcus
Pasquali, Michele
Carra, Federico
Bertarelli, Alessandro
Mollicone, Pierluigi
Sammut, Nicholas
de Frutos, Óscar Sacristán
Valenzuela, Jorge Guardia
Neubauer, Erich
Kitzmantel, Michael
Grech, David
author_facet Portelli, Marcus
Pasquali, Michele
Carra, Federico
Bertarelli, Alessandro
Mollicone, Pierluigi
Sammut, Nicholas
de Frutos, Óscar Sacristán
Valenzuela, Jorge Guardia
Neubauer, Erich
Kitzmantel, Michael
Grech, David
author_sort Portelli, Marcus
collection CERN
description The High-Luminosity Large Hadron Collider upgrade at CERN will result in an increase in the energy stored in the circulating particle beams, making it necessary to assess the thermomechanical performance of currently used and newly developed materials for use in beam intercepting devices such as collimators and absorbers. This study describes the thermomechanical characterisation of a novel copper diamond grade selected for use in tertiary collimators of the HL-LHC. The data obtained are used to build an elastoplastic material model and implemented in numerical simulations performed to benchmark experimental data obtained from the recently completed MultiMat experiment conducted at CERN’s HiRadMat facility, where various materials shaped as slender rods were tested under particle beam impact. The analyses focus on the dynamic longitudinal and flexural response of the material, with results showing that the material model is capable of replicating the material behaviour to a satisfactory level in both thermal and structural domains, accurately matching experimental measurements in terms of temperature, frequency content, and amplitude.
id oai-inspirehep.net-1840439
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2021
record_format invenio
spelling oai-inspirehep.net-18404392021-02-10T16:34:11Zdoi:10.1155/2021/8879400http://cds.cern.ch/record/2751449engPortelli, MarcusPasquali, MicheleCarra, FedericoBertarelli, AlessandroMollicone, PierluigiSammut, Nicholasde Frutos, Óscar SacristánValenzuela, Jorge GuardiaNeubauer, ErichKitzmantel, MichaelGrech, DavidThermomechanical Characterisation of Copper Diamond and Benchmarking with the MultiMat ExperimentAccelerators and Storage RingsThe High-Luminosity Large Hadron Collider upgrade at CERN will result in an increase in the energy stored in the circulating particle beams, making it necessary to assess the thermomechanical performance of currently used and newly developed materials for use in beam intercepting devices such as collimators and absorbers. This study describes the thermomechanical characterisation of a novel copper diamond grade selected for use in tertiary collimators of the HL-LHC. The data obtained are used to build an elastoplastic material model and implemented in numerical simulations performed to benchmark experimental data obtained from the recently completed MultiMat experiment conducted at CERN’s HiRadMat facility, where various materials shaped as slender rods were tested under particle beam impact. The analyses focus on the dynamic longitudinal and flexural response of the material, with results showing that the material model is capable of replicating the material behaviour to a satisfactory level in both thermal and structural domains, accurately matching experimental measurements in terms of temperature, frequency content, and amplitude.oai:inspirehep.net:18404392021
spellingShingle Accelerators and Storage Rings
Portelli, Marcus
Pasquali, Michele
Carra, Federico
Bertarelli, Alessandro
Mollicone, Pierluigi
Sammut, Nicholas
de Frutos, Óscar Sacristán
Valenzuela, Jorge Guardia
Neubauer, Erich
Kitzmantel, Michael
Grech, David
Thermomechanical Characterisation of Copper Diamond and Benchmarking with the MultiMat Experiment
title Thermomechanical Characterisation of Copper Diamond and Benchmarking with the MultiMat Experiment
title_full Thermomechanical Characterisation of Copper Diamond and Benchmarking with the MultiMat Experiment
title_fullStr Thermomechanical Characterisation of Copper Diamond and Benchmarking with the MultiMat Experiment
title_full_unstemmed Thermomechanical Characterisation of Copper Diamond and Benchmarking with the MultiMat Experiment
title_short Thermomechanical Characterisation of Copper Diamond and Benchmarking with the MultiMat Experiment
title_sort thermomechanical characterisation of copper diamond and benchmarking with the multimat experiment
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1155/2021/8879400
http://cds.cern.ch/record/2751449
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