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Mechanical Engineering and Design of Novel Collimators for HL-LHC

In view of High Luminosity LHC (HL-LHC) upgrades, collimator materials may become a limit to the machine performance: the high RF impedance of Carbon-Carbon composites used for primary and secondary collimators can lead to beam instabilities, while the Tungsten alloy adopted in tertiary collimators...

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Autores principales: Carra, F, Bertarelli, A, Dallocchio, A, Gentini, L, Gradassi, P, Maitrejean, G, Manousos, A, Mariani, N, Mounet, N, Quaranta, E, Redaelli, S, Vlachoudis, V
Lenguaje:eng
Publicado: 2014
Materias:
Acceso en línea:http://cds.cern.ch/record/1748367
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author Carra, F
Bertarelli, A
Dallocchio, A
Gentini, L
Gradassi, P
Maitrejean, G
Manousos, A
Mariani, N
Mounet, N
Quaranta, E
Redaelli, S
Vlachoudis, V
author_facet Carra, F
Bertarelli, A
Dallocchio, A
Gentini, L
Gradassi, P
Maitrejean, G
Manousos, A
Mariani, N
Mounet, N
Quaranta, E
Redaelli, S
Vlachoudis, V
author_sort Carra, F
collection CERN
description In view of High Luminosity LHC (HL-LHC) upgrades, collimator materials may become a limit to the machine performance: the high RF impedance of Carbon-Carbon composites used for primary and secondary collimators can lead to beam instabilities, while the Tungsten alloy adopted in tertiary collimators exhibits low robustness in case of beam-induced accidents. An R&D program has been pursued to develop new materials overcoming such limitations. Molybdenum-Graphite, in addition to its outstanding thermal conductivity, can be coated with pure molybdenum, reducing collimator impedance by a factor of 10. A new secondary collimator is being designed around this novel composite. New high-melting materials are also proposed to improve the robustness of tertiary collimators. New collimators will also be equipped with BPMs, significantly enhancing the alignment speed and the beta-star reach. This implies additional constraints of space, as well as detailed static and fatigue calculations on cables and connectors. This paper describes the mechanical design and the engineering calculations of such future collimators, focusing on the study via state-of-the-art numerical methods of interactions between the particle beams and the new materials adopted.
id cern-1748367
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2014
record_format invenio
spelling cern-17483672022-08-17T13:12:28Zhttp://cds.cern.ch/record/1748367engCarra, FBertarelli, ADallocchio, AGentini, LGradassi, PMaitrejean, GManousos, AMariani, NMounet, NQuaranta, ERedaelli, SVlachoudis, VMechanical Engineering and Design of Novel Collimators for HL-LHCAccelerators and Storage RingsIn view of High Luminosity LHC (HL-LHC) upgrades, collimator materials may become a limit to the machine performance: the high RF impedance of Carbon-Carbon composites used for primary and secondary collimators can lead to beam instabilities, while the Tungsten alloy adopted in tertiary collimators exhibits low robustness in case of beam-induced accidents. An R&D program has been pursued to develop new materials overcoming such limitations. Molybdenum-Graphite, in addition to its outstanding thermal conductivity, can be coated with pure molybdenum, reducing collimator impedance by a factor of 10. A new secondary collimator is being designed around this novel composite. New high-melting materials are also proposed to improve the robustness of tertiary collimators. New collimators will also be equipped with BPMs, significantly enhancing the alignment speed and the beta-star reach. This implies additional constraints of space, as well as detailed static and fatigue calculations on cables and connectors. This paper describes the mechanical design and the engineering calculations of such future collimators, focusing on the study via state-of-the-art numerical methods of interactions between the particle beams and the new materials adopted.CERN-ACC-2014-0184oai:cds.cern.ch:17483672014
spellingShingle Accelerators and Storage Rings
Carra, F
Bertarelli, A
Dallocchio, A
Gentini, L
Gradassi, P
Maitrejean, G
Manousos, A
Mariani, N
Mounet, N
Quaranta, E
Redaelli, S
Vlachoudis, V
Mechanical Engineering and Design of Novel Collimators for HL-LHC
title Mechanical Engineering and Design of Novel Collimators for HL-LHC
title_full Mechanical Engineering and Design of Novel Collimators for HL-LHC
title_fullStr Mechanical Engineering and Design of Novel Collimators for HL-LHC
title_full_unstemmed Mechanical Engineering and Design of Novel Collimators for HL-LHC
title_short Mechanical Engineering and Design of Novel Collimators for HL-LHC
title_sort mechanical engineering and design of novel collimators for hl-lhc
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/1748367
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