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Thermomechanical assessment of the effects of a jaw-beam angle during beam impact on Large Hadron Collider collimators

The correct functioning of a collimation system is crucial to safely and successfully operate high-energy particle accelerators, such as the Large Hadron Collider (LHC). However, the requirements to handle high-intensity beams can be demanding, and accident scenarios must be well studied in order to...

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Autores principales: Cauchi, Marija, Assmann, R  W, Bertarelli, A, Carra, F, Lari, L, Rossi, A, Mollicone, P, Sammut, N
Lenguaje:eng
Publicado: 2015
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevSTAB.18.021001
http://cds.cern.ch/record/2153723
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author Cauchi, Marija
Assmann, R  W
Bertarelli, A
Carra, F
Lari, L
Rossi, A
Mollicone, P
Sammut, N
author_facet Cauchi, Marija
Assmann, R  W
Bertarelli, A
Carra, F
Lari, L
Rossi, A
Mollicone, P
Sammut, N
author_sort Cauchi, Marija
collection CERN
description The correct functioning of a collimation system is crucial to safely and successfully operate high-energy particle accelerators, such as the Large Hadron Collider (LHC). However, the requirements to handle high-intensity beams can be demanding, and accident scenarios must be well studied in order to assess if the collimator design is robust against possible error scenarios. One of the catastrophic, though not very probable, accident scenarios identified within the LHC is an asynchronous beam dump. In this case, one (or more) of the 15 precharged kicker circuits fires out of time with the abort gap, spraying beam pulses onto LHC machine elements before the machine protection system can fire the remaining kicker circuits and bring the beam to the dump. If a proton bunch directly hits a collimator during such an event, severe beam-induced damage such as magnet quenches and other equipment damage might result, with consequent downtime for the machine. This study investigates a number of newly defined jaw error cases, which include angular misalignment errors of the collimator jaw. A numerical finite element method approach is presented in order to precisely evaluate the thermomechanical response of tertiary collimators to beam impact. We identify the most critical and interesting cases, and show that a tilt of the jaw can actually mitigate the effect of an asynchronous dump on the collimators. Relevant collimator damage limits are taken into account, with the aim to identify optimal operational conditions for the LHC.
id oai-inspirehep.net-1346747
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2015
record_format invenio
spelling oai-inspirehep.net-13467472022-08-10T13:07:21Zdoi:10.1103/PhysRevSTAB.18.021001http://cds.cern.ch/record/2153723engCauchi, MarijaAssmann, R  WBertarelli, ACarra, FLari, LRossi, AMollicone, PSammut, NThermomechanical assessment of the effects of a jaw-beam angle during beam impact on Large Hadron Collider collimatorsAccelerators and Storage Rings11: Collimator Materials for fast High Density Energy Deposition (COMA-HDED)11.3: Material mechanical modellingThe correct functioning of a collimation system is crucial to safely and successfully operate high-energy particle accelerators, such as the Large Hadron Collider (LHC). However, the requirements to handle high-intensity beams can be demanding, and accident scenarios must be well studied in order to assess if the collimator design is robust against possible error scenarios. One of the catastrophic, though not very probable, accident scenarios identified within the LHC is an asynchronous beam dump. In this case, one (or more) of the 15 precharged kicker circuits fires out of time with the abort gap, spraying beam pulses onto LHC machine elements before the machine protection system can fire the remaining kicker circuits and bring the beam to the dump. If a proton bunch directly hits a collimator during such an event, severe beam-induced damage such as magnet quenches and other equipment damage might result, with consequent downtime for the machine. This study investigates a number of newly defined jaw error cases, which include angular misalignment errors of the collimator jaw. A numerical finite element method approach is presented in order to precisely evaluate the thermomechanical response of tertiary collimators to beam impact. We identify the most critical and interesting cases, and show that a tilt of the jaw can actually mitigate the effect of an asynchronous dump on the collimators. Relevant collimator damage limits are taken into account, with the aim to identify optimal operational conditions for the LHC.oai:inspirehep.net:13467472015
spellingShingle Accelerators and Storage Rings
11: Collimator Materials for fast High Density Energy Deposition (COMA-HDED)
11.3: Material mechanical modelling
Cauchi, Marija
Assmann, R  W
Bertarelli, A
Carra, F
Lari, L
Rossi, A
Mollicone, P
Sammut, N
Thermomechanical assessment of the effects of a jaw-beam angle during beam impact on Large Hadron Collider collimators
title Thermomechanical assessment of the effects of a jaw-beam angle during beam impact on Large Hadron Collider collimators
title_full Thermomechanical assessment of the effects of a jaw-beam angle during beam impact on Large Hadron Collider collimators
title_fullStr Thermomechanical assessment of the effects of a jaw-beam angle during beam impact on Large Hadron Collider collimators
title_full_unstemmed Thermomechanical assessment of the effects of a jaw-beam angle during beam impact on Large Hadron Collider collimators
title_short Thermomechanical assessment of the effects of a jaw-beam angle during beam impact on Large Hadron Collider collimators
title_sort thermomechanical assessment of the effects of a jaw-beam angle during beam impact on large hadron collider collimators
topic Accelerators and Storage Rings
11: Collimator Materials for fast High Density Energy Deposition (COMA-HDED)
11.3: Material mechanical modelling
url https://dx.doi.org/10.1103/PhysRevSTAB.18.021001
http://cds.cern.ch/record/2153723
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