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Power Deposition in LHC Magnets Due to Bound-Free Pair Production in the Experimental Insertions

The peak luminosity achieved during Pb-Pb collisions in the LHC in 2015 (3x1027cm⁻²s^{−1}) well exceeded the design luminosity and is anticipated to increase by another factor 2 after the next Long Shutdown (2019- 2020). A significant fraction of the power dissipated in ultra-peripheral Pb-Pb collis...

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Autores principales: Bahamonde Castro, Cristina, Auchmann, Bernhard, Besana, Maria Ilaria, Brodzinski, Krzysztof, Bruce, Roderik, Cerutti, Francesco, Jowett, John, Lechner, Anton, Mertens, Tom, Parma, Vittorio, Redaelli, Stefano, Schaumann, Michaela, Shetty, Nikhil Vittal, Skordis, Eleftherios, Steele, Genevieve, van Weelderen, Rob
Lenguaje:eng
Publicado: 2016
Materias:
Acceso en línea:https://dx.doi.org/10.18429/JACoW-IPAC2016-TUPMW006
http://cds.cern.ch/record/2207361
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author Bahamonde Castro, Cristina
Auchmann, Bernhard
Besana, Maria Ilaria
Brodzinski, Krzysztof
Bruce, Roderik
Cerutti, Francesco
Jowett, John
Lechner, Anton
Mertens, Tom
Parma, Vittorio
Redaelli, Stefano
Schaumann, Michaela
Shetty, Nikhil Vittal
Skordis, Eleftherios
Steele, Genevieve
van Weelderen, Rob
author_facet Bahamonde Castro, Cristina
Auchmann, Bernhard
Besana, Maria Ilaria
Brodzinski, Krzysztof
Bruce, Roderik
Cerutti, Francesco
Jowett, John
Lechner, Anton
Mertens, Tom
Parma, Vittorio
Redaelli, Stefano
Schaumann, Michaela
Shetty, Nikhil Vittal
Skordis, Eleftherios
Steele, Genevieve
van Weelderen, Rob
author_sort Bahamonde Castro, Cristina
collection CERN
description The peak luminosity achieved during Pb-Pb collisions in the LHC in 2015 (3x1027cm⁻²s^{−1}) well exceeded the design luminosity and is anticipated to increase by another factor 2 after the next Long Shutdown (2019- 2020). A significant fraction of the power dissipated in ultra-peripheral Pb-Pb collisions is carried by ions from bound-free pair production, which are lost in the dispersion suppressors adjacent to the experimental insertions. At higher luminosities, these ions risk to quench superconducting magnets and might limit their operation due to the dynamic heat load that needs to be evacuated by the cryogenic system. In this paper, we estimate the power deposition in superconducting coils and the magnet cold mass and we quantify the achievable reduction by deviating losses to less sensitive locations or by installing collimators at strategic positions. The second option is considered for the dispersion suppressor next to the ALICE insertion, where a selective displacement of losses to a magnet-free region is not possible.
id oai-inspirehep.net-1469920
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2016
record_format invenio
spelling oai-inspirehep.net-14699202022-08-10T12:47:54Zdoi:10.18429/JACoW-IPAC2016-TUPMW006http://cds.cern.ch/record/2207361engBahamonde Castro, CristinaAuchmann, BernhardBesana, Maria IlariaBrodzinski, KrzysztofBruce, RoderikCerutti, FrancescoJowett, JohnLechner, AntonMertens, TomParma, VittorioRedaelli, StefanoSchaumann, MichaelaShetty, Nikhil VittalSkordis, EleftheriosSteele, Genevievevan Weelderen, RobPower Deposition in LHC Magnets Due to Bound-Free Pair Production in the Experimental InsertionsAccelerators and Storage RingsThe peak luminosity achieved during Pb-Pb collisions in the LHC in 2015 (3x1027cm⁻²s^{−1}) well exceeded the design luminosity and is anticipated to increase by another factor 2 after the next Long Shutdown (2019- 2020). A significant fraction of the power dissipated in ultra-peripheral Pb-Pb collisions is carried by ions from bound-free pair production, which are lost in the dispersion suppressors adjacent to the experimental insertions. At higher luminosities, these ions risk to quench superconducting magnets and might limit their operation due to the dynamic heat load that needs to be evacuated by the cryogenic system. In this paper, we estimate the power deposition in superconducting coils and the magnet cold mass and we quantify the achievable reduction by deviating losses to less sensitive locations or by installing collimators at strategic positions. The second option is considered for the dispersion suppressor next to the ALICE insertion, where a selective displacement of losses to a magnet-free region is not possible.CERN-ACC-2016-264oai:inspirehep.net:14699202016
spellingShingle Accelerators and Storage Rings
Bahamonde Castro, Cristina
Auchmann, Bernhard
Besana, Maria Ilaria
Brodzinski, Krzysztof
Bruce, Roderik
Cerutti, Francesco
Jowett, John
Lechner, Anton
Mertens, Tom
Parma, Vittorio
Redaelli, Stefano
Schaumann, Michaela
Shetty, Nikhil Vittal
Skordis, Eleftherios
Steele, Genevieve
van Weelderen, Rob
Power Deposition in LHC Magnets Due to Bound-Free Pair Production in the Experimental Insertions
title Power Deposition in LHC Magnets Due to Bound-Free Pair Production in the Experimental Insertions
title_full Power Deposition in LHC Magnets Due to Bound-Free Pair Production in the Experimental Insertions
title_fullStr Power Deposition in LHC Magnets Due to Bound-Free Pair Production in the Experimental Insertions
title_full_unstemmed Power Deposition in LHC Magnets Due to Bound-Free Pair Production in the Experimental Insertions
title_short Power Deposition in LHC Magnets Due to Bound-Free Pair Production in the Experimental Insertions
title_sort power deposition in lhc magnets due to bound-free pair production in the experimental insertions
topic Accelerators and Storage Rings
url https://dx.doi.org/10.18429/JACoW-IPAC2016-TUPMW006
http://cds.cern.ch/record/2207361
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