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Crystal collimator systems for high energy frontier

Crystalline collimators can potentially considerably improve the cleaning performance of the presently used collimator systems using amorphous collimators. A crystal-based collimation scheme which relies on the channeling particle deflection in bent crystals has been proposed and extensively studied...

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Detalles Bibliográficos
Autores principales: Sytov, Alexei, Tikhomirov, Viktor, Lobko, Alexander
Publicado: 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevAccelBeams.20.071001
http://cds.cern.ch/record/2281394
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author Sytov, Alexei
Tikhomirov, Viktor
Lobko, Alexander
author_facet Sytov, Alexei
Tikhomirov, Viktor
Lobko, Alexander
author_sort Sytov, Alexei
collection CERN
description Crystalline collimators can potentially considerably improve the cleaning performance of the presently used collimator systems using amorphous collimators. A crystal-based collimation scheme which relies on the channeling particle deflection in bent crystals has been proposed and extensively studied both theoretically and experimentally. However, since the efficiency of particle capture into the channeling regime does not exceed ninety percent, this collimation scheme partly suffers from the same leakage problems as the schemes using amorphous collimators. To improve further the cleaning efficiency of the crystal-based collimation system to meet the requirements of the FCC, we suggest here a double crystal-based collimation scheme, to which the second crystal is introduced to enhance the deflection of the particles escaping the capture to the channeling regime in its first crystal. The application of the effect of multiple volume reflection in one bent crystal and of the same in a sequence of crystals is simulated and compared for different crystal numbers and materials at the energy of 50 TeV. To enhance also the efficiency of use of the first crystal of the suggested double crystal-based scheme, we propose: the method of increase of the probability of particle capture into the channeling regime at the first crystal passage by means of fabrication of a crystal cut and the method of the amplification of nonchanneled particle deflection through the multiple volume reflection in one bent crystal, accompanying the particle channeling by a skew plane. We simulate both of these methods for the 50 TeV FCC energy.
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institution Organización Europea para la Investigación Nuclear
publishDate 2017
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spelling cern-22813942019-09-30T06:29:59Zdoi:10.1103/PhysRevAccelBeams.20.071001http://cds.cern.ch/record/2281394Sytov, AlexeiTikhomirov, ViktorLobko, AlexanderCrystal collimator systems for high energy frontierAccelerators and Storage RingsCrystalline collimators can potentially considerably improve the cleaning performance of the presently used collimator systems using amorphous collimators. A crystal-based collimation scheme which relies on the channeling particle deflection in bent crystals has been proposed and extensively studied both theoretically and experimentally. However, since the efficiency of particle capture into the channeling regime does not exceed ninety percent, this collimation scheme partly suffers from the same leakage problems as the schemes using amorphous collimators. To improve further the cleaning efficiency of the crystal-based collimation system to meet the requirements of the FCC, we suggest here a double crystal-based collimation scheme, to which the second crystal is introduced to enhance the deflection of the particles escaping the capture to the channeling regime in its first crystal. The application of the effect of multiple volume reflection in one bent crystal and of the same in a sequence of crystals is simulated and compared for different crystal numbers and materials at the energy of 50 TeV. To enhance also the efficiency of use of the first crystal of the suggested double crystal-based scheme, we propose: the method of increase of the probability of particle capture into the channeling regime at the first crystal passage by means of fabrication of a crystal cut and the method of the amplification of nonchanneled particle deflection through the multiple volume reflection in one bent crystal, accompanying the particle channeling by a skew plane. We simulate both of these methods for the 50 TeV FCC energy.CERN-ACC-2017-0084oai:cds.cern.ch:22813942017-07-13
spellingShingle Accelerators and Storage Rings
Sytov, Alexei
Tikhomirov, Viktor
Lobko, Alexander
Crystal collimator systems for high energy frontier
title Crystal collimator systems for high energy frontier
title_full Crystal collimator systems for high energy frontier
title_fullStr Crystal collimator systems for high energy frontier
title_full_unstemmed Crystal collimator systems for high energy frontier
title_short Crystal collimator systems for high energy frontier
title_sort crystal collimator systems for high energy frontier
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1103/PhysRevAccelBeams.20.071001
http://cds.cern.ch/record/2281394
work_keys_str_mv AT sytovalexei crystalcollimatorsystemsforhighenergyfrontier
AT tikhomirovviktor crystalcollimatorsystemsforhighenergyfrontier
AT lobkoalexander crystalcollimatorsystemsforhighenergyfrontier