Cargando…

Evaluation of the radiation field in the future circular collider detector

The radiation load on a detector at a 100 TeV proton-proton collider, that is being investigated within the Future Circular Collider (FCC) study, is presented. A peak luminosity of 30 1034 cm−2s−1 and a total integrated luminosity of 30 ab−1 are assumed for these radiation studies. A first concept o...

Descripción completa

Detalles Bibliográficos
Autores principales: Besana, Maria Ilaria, Cerutti, Francesco, Ferrari, Alfredo, Riegler, Werner, Vlachoudis, Vasilis
Lenguaje:eng
Publicado: 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevAccelBeams.19.111004
http://cds.cern.ch/record/2198578
_version_ 1780951218392137728
author Besana, Maria Ilaria
Cerutti, Francesco
Ferrari, Alfredo
Riegler, Werner
Vlachoudis, Vasilis
author_facet Besana, Maria Ilaria
Cerutti, Francesco
Ferrari, Alfredo
Riegler, Werner
Vlachoudis, Vasilis
author_sort Besana, Maria Ilaria
collection CERN
description The radiation load on a detector at a 100 TeV proton-proton collider, that is being investigated within the Future Circular Collider (FCC) study, is presented. A peak luminosity of 30 1034 cm−2s−1 and a total integrated luminosity of 30 ab−1 are assumed for these radiation studies. A first concept of the detector foresees the presence of central and forward sub-detectors that provide acceptance up to |η|=6 inside a magnetic field generated by the combination of a central solenoid and two forward dipoles. This layout has been modelled and relevant fluence and dose distributions have been calculated using the FLUKA Monte Carlo code. Distributions of fluence rates are discussed separately for charged particles, neutrons and pho- tons. Dose and 1 MeV neutron equivalent fluence, for the accumulated integrated luminosity, are presented. The peak values of these quantities in the different sub-detectors are highlighted, in order to define the radiation tolerance requirements for the choice of possible technologies. The effect of the magnetic field is also discussed. Two shielding solutions have been conceived to minimise the backscattering from the forward calorimeters to the muon chambers and the forward tracking stations. The two tentative designs are presented and their effectiveness is discussed in terms of 1 MeV neutron equivalent fluence and particle fluence rate reduction.
id cern-2198578
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2016
record_format invenio
spelling cern-21985782022-08-10T12:43:52Zdoi:10.1103/PhysRevAccelBeams.19.111004http://cds.cern.ch/record/2198578engBesana, Maria IlariaCerutti, FrancescoFerrari, AlfredoRiegler, WernerVlachoudis, VasilisEvaluation of the radiation field in the future circular collider detectorAccelerators and Storage RingsThe radiation load on a detector at a 100 TeV proton-proton collider, that is being investigated within the Future Circular Collider (FCC) study, is presented. A peak luminosity of 30 1034 cm−2s−1 and a total integrated luminosity of 30 ab−1 are assumed for these radiation studies. A first concept of the detector foresees the presence of central and forward sub-detectors that provide acceptance up to |η|=6 inside a magnetic field generated by the combination of a central solenoid and two forward dipoles. This layout has been modelled and relevant fluence and dose distributions have been calculated using the FLUKA Monte Carlo code. Distributions of fluence rates are discussed separately for charged particles, neutrons and pho- tons. Dose and 1 MeV neutron equivalent fluence, for the accumulated integrated luminosity, are presented. The peak values of these quantities in the different sub-detectors are highlighted, in order to define the radiation tolerance requirements for the choice of possible technologies. The effect of the magnetic field is also discussed. Two shielding solutions have been conceived to minimise the backscattering from the forward calorimeters to the muon chambers and the forward tracking stations. The two tentative designs are presented and their effectiveness is discussed in terms of 1 MeV neutron equivalent fluence and particle fluence rate reduction.CERN-EN-2016-003CERN-ATS-2016-006oai:cds.cern.ch:21985782016-07-01
spellingShingle Accelerators and Storage Rings
Besana, Maria Ilaria
Cerutti, Francesco
Ferrari, Alfredo
Riegler, Werner
Vlachoudis, Vasilis
Evaluation of the radiation field in the future circular collider detector
title Evaluation of the radiation field in the future circular collider detector
title_full Evaluation of the radiation field in the future circular collider detector
title_fullStr Evaluation of the radiation field in the future circular collider detector
title_full_unstemmed Evaluation of the radiation field in the future circular collider detector
title_short Evaluation of the radiation field in the future circular collider detector
title_sort evaluation of the radiation field in the future circular collider detector
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1103/PhysRevAccelBeams.19.111004
http://cds.cern.ch/record/2198578
work_keys_str_mv AT besanamariailaria evaluationoftheradiationfieldinthefuturecircularcolliderdetector
AT ceruttifrancesco evaluationoftheradiationfieldinthefuturecircularcolliderdetector
AT ferrarialfredo evaluationoftheradiationfieldinthefuturecircularcolliderdetector
AT rieglerwerner evaluationoftheradiationfieldinthefuturecircularcolliderdetector
AT vlachoudisvasilis evaluationoftheradiationfieldinthefuturecircularcolliderdetector