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Analytical RF Pulse Heating Analysis for High Gradient Accelerating Structures

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Analytical RF Pulse Heating Analysis for High Gradient Accelerating Structures

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dc.contributor.author González Iglesias, Daniel
dc.contributor.author Esperante Pereira, Daniel
dc.contributor.author Gimeno Martínez, Benito
dc.contributor.author Boronat Arévalo, Marçà Josep
dc.contributor.author Blanch, César
dc.contributor.author Fuster Martínez, Nuria
dc.contributor.author Martínez-Reviriego, Pablo
dc.contributor.author Martín-Luna, Pablo
dc.contributor.author Fuster Verdú, Juan A.
dc.date.accessioned 2021-07-09T08:41:06Z
dc.date.available 2021-07-10T04:45:05Z
dc.date.issued 2021 es_ES
dc.identifier.citation D. González-Iglesias, D. Esperante, B. Gimeno, M. Boronat, C. Blanch, N. Fuster-Martínez, P. Martinez-Reviriego, P. Martín-Luna, J. Fuster, Analytical RF Pulse Heating Analysis for High Gradient Accelerating Structures, IEEE Transactions on Nuclear Science, vol. 68, no. 2, pp. 78-91, Feb. 2021. doi: 10.1109/TNS.2021.3049319. es_ES
dc.identifier.uri https://hdl.handle.net/10550/79894
dc.description.abstract The main aim of this work is to present a simple method, based on analytical expressions, for obtaining the temperature increase due to the Joule effect inside the metallic walls of an RF accelerating component. This technique relies on solving the 1-D heat-transfer equation for a thick wall, considering that the heat sources inside the wall are the ohmic losses produced by the RF electromagnetic fields penetrating the metal with finite electrical conductivity. Furthermore, it is discussed how the theoretical expressions of this method can be applied to obtain an approximation to the temperature increase in realistic 3-D RF accelerating structures, taking as an example the cavity of an RF electron photoinjector and a traveling wave linac cavity. These theoretical results have been benchmarked with numerical simulations carried out with commercial finite-element method (FEM) software, finding good agreement among them. Besides, the advantage of the analytical method with respect to the numerical simulations is evidenced. In particular, the model could be very useful during the design and optimization phase of RF accelerating structures, where many different combinations of parameters must be analyzed in order to obtain the proper working point of the device, allowing to save time and speed up the process. However, it must be mentioned that the method described in this article is intended to provide a quick approximation to the temperature increase in the device, which of course is not as accurate as the proper 3-D numerical simulations of the component. es_ES
dc.description.abstract The main aim of this work is to present a simple method, based on analytical expressions, for obtaining the temperature increase due to the Joule effect inside the metallic walls of an RF accelerating component. This technique relies on solving the 1-D heat-transfer equation for a thick wall, considering that the heat sources inside the wall are the ohmic losses produced by the RF electromagnetic fields penetrating the metal with finite electrical conductivity. Furthermore, it is discussed how the theoretical expressions of this method can be applied to obtain an approximation to the temperature increase in realistic 3-D RF accelerating structures, taking as an example the cavity of an RF electron photoinjector and a traveling wave linac cavity. These theoretical results have been benchmarked with numerical simulations carried out with commercial finite-element method (FEM) software, finding good agreement among them. Besides, the advantage of the analytical method with respect to the numerical simulations is evidenced. In particular, the model could be very useful during the design and optimization phase of RF accelerating structures, where many different combinations of parameters must be analyzed in order to obtain the proper working point of the device, allowing to save time and speed up the process. However, it must be mentioned that the method described in this article is intended to provide a quick approximation to the temperature increase in the device, which of course is not as accurate as the proper 3-D numerical simulations of the component. en_US
dc.description.sponsorship European Union es_ES
dc.description.sponsorship Generalitat Valenciana. Conselleria d'Innovació, Universitats, Ciència i Societat
dc.language.iso en es_ES
dc.subject estructuras aceleradoras de RF es_ES
dc.subject RF pulse heating es_ES
dc.subject análisis térmico es_ES
dc.title Analytical RF Pulse Heating Analysis for High Gradient Accelerating Structures es_ES
dc.type journal article es_ES
dc.subject.unesco UNESCO::FÍSICA::Nucleónica::Aceleradores de partículas es_ES
dc.identifier.doi 10.1109/TNS.2021.3049319 es_ES
dc.accrualmethod - es_ES
dc.embargo.terms 0 days es_ES
dc.relation.projectID H2020/Grant 777431 (XLS CompactLight)
dc.relation.projectID APOSTD/2019/155

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