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Temperature measurement on copper surfaces for superconducting thin film cavity applications

Superconducting radio-frequency (SRF) thin film cavities on copper substrates are employed in several particle accelerators. However, these SRF cavities historically featured a progressive performance degradation with the accelerating field that is still not completely understood. The degradation of...

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Autores principales: Bianchi, Antonio, Vandoni, Giovanna, Venturini Delsolaro, Walter
Lenguaje:eng
Publicado: 2023
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1361-6501/acfba2
http://cds.cern.ch/record/2875424
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author Bianchi, Antonio
Vandoni, Giovanna
Venturini Delsolaro, Walter
author_facet Bianchi, Antonio
Vandoni, Giovanna
Venturini Delsolaro, Walter
author_sort Bianchi, Antonio
collection CERN
description Superconducting radio-frequency (SRF) thin film cavities on copper substrates are employed in several particle accelerators. However, these SRF cavities historically featured a progressive performance degradation with the accelerating field that is still not completely understood. The degradation of cavity performance, which limits the use of this technology in accelerators where the real-estate gradient has to be maximized, is manifested by the presence of heat losses in the superconducting film. However, measuring the temperature on the outer surface of copper substrates is challenging due to the higher thermal conductivity of copper at low temperatures compared to niobium. This study describes how temperature variations on copper surfaces can be satisfactorily measured in view of superconducting thin film cavity applications at liquid helium temperatures. Furthermore, we explore how the thermal exchange between thermometers and copper surfaces, and thermometers and helium bath must be tuned with respect to each other in order to measure accurately temperature rises in the thin film. Our findings suggest that engineering the copper surfaces can improve heat transfer into the helium bath and potentially enhance the performance of thin film SRF cavities.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2023
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spelling cern-28754242023-10-14T02:09:53Zdoi:10.1088/1361-6501/acfba2http://cds.cern.ch/record/2875424engBianchi, AntonioVandoni, GiovannaVenturini Delsolaro, WalterTemperature measurement on copper surfaces for superconducting thin film cavity applicationsphysics.ins-detDetectors and Experimental Techniquesphysics.acc-phAccelerators and Storage RingsSuperconducting radio-frequency (SRF) thin film cavities on copper substrates are employed in several particle accelerators. However, these SRF cavities historically featured a progressive performance degradation with the accelerating field that is still not completely understood. The degradation of cavity performance, which limits the use of this technology in accelerators where the real-estate gradient has to be maximized, is manifested by the presence of heat losses in the superconducting film. However, measuring the temperature on the outer surface of copper substrates is challenging due to the higher thermal conductivity of copper at low temperatures compared to niobium. This study describes how temperature variations on copper surfaces can be satisfactorily measured in view of superconducting thin film cavity applications at liquid helium temperatures. Furthermore, we explore how the thermal exchange between thermometers and copper surfaces, and thermometers and helium bath must be tuned with respect to each other in order to measure accurately temperature rises in the thin film. Our findings suggest that engineering the copper surfaces can improve heat transfer into the helium bath and potentially enhance the performance of thin film SRF cavities.Superconducting radio-frequency (SRF) thin film cavities on copper substrates are employed in several particle accelerators. However, these SRF cavities historically featured a progressive performance degradation with the accelerating field that is still not completely understood. The degradation of cavity performance, which limits the use of this technology in accelerators where the real-estate gradient has to be maximized, is manifested by the presence of heat losses in the superconducting film. However, measuring the temperature on the outer surface of copper substrates is challenging due to the higher thermal conductivity of copper at low temperatures compared to niobium. This study describes how temperature variations on copper surfaces can be satisfactorily measured in view of superconducting thin film cavity applications at liquid helium temperatures. Furthermore, we explore how the thermal exchange between thermometers and copper surfaces, and thermometers and helium bath must be tuned with respect to each other in order to measure accurately temperature rises in the thin film. Our findings suggest that engineering the copper surfaces can improve heat transfer into the helium bath and potentially enhance the performance of thin film SRF cavities.arXiv:2304.14229oai:cds.cern.ch:28754242023-04-27
spellingShingle physics.ins-det
Detectors and Experimental Techniques
physics.acc-ph
Accelerators and Storage Rings
Bianchi, Antonio
Vandoni, Giovanna
Venturini Delsolaro, Walter
Temperature measurement on copper surfaces for superconducting thin film cavity applications
title Temperature measurement on copper surfaces for superconducting thin film cavity applications
title_full Temperature measurement on copper surfaces for superconducting thin film cavity applications
title_fullStr Temperature measurement on copper surfaces for superconducting thin film cavity applications
title_full_unstemmed Temperature measurement on copper surfaces for superconducting thin film cavity applications
title_short Temperature measurement on copper surfaces for superconducting thin film cavity applications
title_sort temperature measurement on copper surfaces for superconducting thin film cavity applications
topic physics.ins-det
Detectors and Experimental Techniques
physics.acc-ph
Accelerators and Storage Rings
url https://dx.doi.org/10.1088/1361-6501/acfba2
http://cds.cern.ch/record/2875424
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AT vandonigiovanna temperaturemeasurementoncoppersurfacesforsuperconductingthinfilmcavityapplications
AT venturinidelsolarowalter temperaturemeasurementoncoppersurfacesforsuperconductingthinfilmcavityapplications