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Conceptual design and modeling of particle-matter interaction cooling systems for muon based applications
An ionization cooling channel is a tightly spaced lattice containing absorbers for reducing the momentum of the muon beam, rf cavities for restoring the longitudinal momentum, and strong solenoids for focusing. Such a lattice can be an essential feature for fundamental high-energy physics applicatio...
Autores principales: | , , , , |
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Lenguaje: | eng |
Publicado: |
2014
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1103/PhysRevSTAB.17.071001 http://cds.cern.ch/record/2135823 |
_version_ | 1780949974698164224 |
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author | Stratakis, Diktys Sayed, H Kamal Rogers, Chris T Alekou, Androula Pasternak, Jaroslaw |
author_facet | Stratakis, Diktys Sayed, H Kamal Rogers, Chris T Alekou, Androula Pasternak, Jaroslaw |
author_sort | Stratakis, Diktys |
collection | CERN |
description | An ionization cooling channel is a tightly spaced lattice containing absorbers for reducing the momentum of the muon beam, rf cavities for restoring the longitudinal momentum, and strong solenoids for focusing. Such a lattice can be an essential feature for fundamental high-energy physics applications. In this paper we design, simulate, and compare four individual cooling schemes that rely on ionization cooling. We establish a scaling characterizing the impact of rf gradient limitations on the overall performance and systematically compare important lattice parameters such as the required magnetic fields and the number of cavities and absorber lengths for each cooling scenario. We discuss approaches for reducing the peak magnetic field inside the rf cavities by either increasing the lattice cell length or adopting a novel bucked-coil configuration. We numerically examine the performance of our proposed channels with two independent codes that fully incorporate all basic particle-matter-interaction physical processes. |
id | oai-inspirehep.net-1307208 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2014 |
record_format | invenio |
spelling | oai-inspirehep.net-13072082022-08-10T20:07:39Zdoi:10.1103/PhysRevSTAB.17.071001http://cds.cern.ch/record/2135823engStratakis, DiktysSayed, H KamalRogers, Chris TAlekou, AndroulaPasternak, JaroslawConceptual design and modeling of particle-matter interaction cooling systems for muon based applicationsAccelerators and Storage RingsHigh-Energy Accelerators and CollidersAn ionization cooling channel is a tightly spaced lattice containing absorbers for reducing the momentum of the muon beam, rf cavities for restoring the longitudinal momentum, and strong solenoids for focusing. Such a lattice can be an essential feature for fundamental high-energy physics applications. In this paper we design, simulate, and compare four individual cooling schemes that rely on ionization cooling. We establish a scaling characterizing the impact of rf gradient limitations on the overall performance and systematically compare important lattice parameters such as the required magnetic fields and the number of cavities and absorber lengths for each cooling scenario. We discuss approaches for reducing the peak magnetic field inside the rf cavities by either increasing the lattice cell length or adopting a novel bucked-coil configuration. We numerically examine the performance of our proposed channels with two independent codes that fully incorporate all basic particle-matter-interaction physical processes.An ionization cooling channel is a tightly spaced lattice containing absorbers for reducing the momentum of the muon beam, rf cavities for restoring the longitudinal momentum, and strong solenoids for focusing. Such a lattice can be an essential feature for fundamental high-energy physics applications. In this paper we design, simulate, and compare four individual cooling schemes that rely on ionization cooling. We establish a scaling characterizing the impact of rf gradient limitations on the overall performance and systematically compare important lattice parameters such as the required magnetic fields and the number of cavities and absorber lengths for each cooling scenario. We discuss approaches for reducing the peak magnetic field inside the rf cavities by either increasing the lattice cell length or adopting a novel bucked-coil configuration. We numerically examine the performance of our proposed channels with two independent codes that fully incorporate all basic particle-matter-interaction physical processes.oai:inspirehep.net:13072082014 |
spellingShingle | Accelerators and Storage Rings High-Energy Accelerators and Colliders Stratakis, Diktys Sayed, H Kamal Rogers, Chris T Alekou, Androula Pasternak, Jaroslaw Conceptual design and modeling of particle-matter interaction cooling systems for muon based applications |
title | Conceptual design and modeling of particle-matter interaction cooling systems for muon based applications |
title_full | Conceptual design and modeling of particle-matter interaction cooling systems for muon based applications |
title_fullStr | Conceptual design and modeling of particle-matter interaction cooling systems for muon based applications |
title_full_unstemmed | Conceptual design and modeling of particle-matter interaction cooling systems for muon based applications |
title_short | Conceptual design and modeling of particle-matter interaction cooling systems for muon based applications |
title_sort | conceptual design and modeling of particle-matter interaction cooling systems for muon based applications |
topic | Accelerators and Storage Rings High-Energy Accelerators and Colliders |
url | https://dx.doi.org/10.1103/PhysRevSTAB.17.071001 http://cds.cern.ch/record/2135823 |
work_keys_str_mv | AT stratakisdiktys conceptualdesignandmodelingofparticlematterinteractioncoolingsystemsformuonbasedapplications AT sayedhkamal conceptualdesignandmodelingofparticlematterinteractioncoolingsystemsformuonbasedapplications AT rogerschrist conceptualdesignandmodelingofparticlematterinteractioncoolingsystemsformuonbasedapplications AT alekouandroula conceptualdesignandmodelingofparticlematterinteractioncoolingsystemsformuonbasedapplications AT pasternakjaroslaw conceptualdesignandmodelingofparticlematterinteractioncoolingsystemsformuonbasedapplications |