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Adiabatic theory for slowly varying Hamiltonian systems with applications to beam dynamics

In this work, we present two models in which adiabatic invariance theory can be applied to achieve peculiar effects in beam dynamics, exploiting the phase space separatrix crossing caused by the passage through specific resonances of a system. In particular, we present a 2-d model for the emittance...

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Autor principal: Capoani, Federico
Lenguaje:eng
Publicado: 2020
Materias:
Acceso en línea:http://cds.cern.ch/record/2728135
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author Capoani, Federico
author_facet Capoani, Federico
author_sort Capoani, Federico
collection CERN
description In this work, we present two models in which adiabatic invariance theory can be applied to achieve peculiar effects in beam dynamics, exploiting the phase space separatrix crossing caused by the passage through specific resonances of a system. In particular, we present a 2-d model for the emittance transfer between the two coordinates in the transverse space: we give a theoretical explanation of the mechanism involved and we show how to predict the final emittance values. These results are confirmed by numerical simulation. On the other hand, we present numerical simulation for a 1-d model of a dipolar exciter whose frequency is slowly modulated close to a multiple of the accelerator tune which allow to capture beam particles in a number of stable islands.
id cern-2728135
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
record_format invenio
spelling cern-27281352020-09-28T12:42:26Zhttp://cds.cern.ch/record/2728135engCapoani, FedericoAdiabatic theory for slowly varying Hamiltonian systems with applications to beam dynamicsAccelerators and Storage RingsNonlinear SystemsIn this work, we present two models in which adiabatic invariance theory can be applied to achieve peculiar effects in beam dynamics, exploiting the phase space separatrix crossing caused by the passage through specific resonances of a system. In particular, we present a 2-d model for the emittance transfer between the two coordinates in the transverse space: we give a theoretical explanation of the mechanism involved and we show how to predict the final emittance values. These results are confirmed by numerical simulation. On the other hand, we present numerical simulation for a 1-d model of a dipolar exciter whose frequency is slowly modulated close to a multiple of the accelerator tune which allow to capture beam particles in a number of stable islands.CERN-THESIS-2018-476oai:cds.cern.ch:27281352020-08-17T07:17:45Z
spellingShingle Accelerators and Storage Rings
Nonlinear Systems
Capoani, Federico
Adiabatic theory for slowly varying Hamiltonian systems with applications to beam dynamics
title Adiabatic theory for slowly varying Hamiltonian systems with applications to beam dynamics
title_full Adiabatic theory for slowly varying Hamiltonian systems with applications to beam dynamics
title_fullStr Adiabatic theory for slowly varying Hamiltonian systems with applications to beam dynamics
title_full_unstemmed Adiabatic theory for slowly varying Hamiltonian systems with applications to beam dynamics
title_short Adiabatic theory for slowly varying Hamiltonian systems with applications to beam dynamics
title_sort adiabatic theory for slowly varying hamiltonian systems with applications to beam dynamics
topic Accelerators and Storage Rings
Nonlinear Systems
url http://cds.cern.ch/record/2728135
work_keys_str_mv AT capoanifederico adiabatictheoryforslowlyvaryinghamiltoniansystemswithapplicationstobeamdynamics