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Transverse and Longitudinal Beam Collimation in a High-Energy Proton Collider (LHC)

In the Large Hadron Collider (LHC), particles from the beam halo might potentially impinge on the vacuum chamber, effecting harmful transitions of the superconducting magnets ("quenches"). This can be prevented by the collimation system which confines the particle losses to special, non su...

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Autor principal: Catalan-Lasheras, N
Lenguaje:eng
Publicado: CERN 1998
Materias:
Acceso en línea:http://cds.cern.ch/record/447077
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author Catalan-Lasheras, N
author_facet Catalan-Lasheras, N
author_sort Catalan-Lasheras, N
collection CERN
description In the Large Hadron Collider (LHC), particles from the beam halo might potentially impinge on the vacuum chamber, effecting harmful transitions of the superconducting magnets ("quenches"). This can be prevented by the collimation system which confines the particle losses to special, non superconducting sections of the machine. Due to the high energy and intensity of the LHC, any removal system must attain an unprecedented efficiency. The cleaning system was designed on the basis of purely geometric and optical models which neglect non linear effects and assume perfectly absorbing materials. In a second step, true scattering in matter is considered. A series of machine developments (MD) were carried out in 1996-7 with the principal aim of validating the design assumptions. A collimation system comparable to that of the LHC was employed. The predictions of the numerical model used to compute the LHC collimation system efficiency were compared with the data acquired during the measurement sessions. The experiments pointed to areas for further refinement of the design model and highlighted the physical constraints which one might expect in such an elaborated cleaning system. They revealed the critical importance to the simulation model of accurate values for the diffusion velocity of the halo particles and of the aperture limitations in the machine.In addition, the experiments confirmed the necessity of controlling the closed orbit excursions in the collimation sections. They also revealed the sensitivity of the cleaning to small deviations of the linear optic functions. Insights gained from the MD sessions allowed further refinements to the LHC collimation system model. The results of subsequent simulations indicate that the ultimate efficiency required for optimum operation of the LHC can be reached.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1998
publisher CERN
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spelling cern-4470772019-09-30T06:29:59Zhttp://cds.cern.ch/record/447077engCatalan-Lasheras, NTransverse and Longitudinal Beam Collimation in a High-Energy Proton Collider (LHC)Accelerators and Storage RingsIn the Large Hadron Collider (LHC), particles from the beam halo might potentially impinge on the vacuum chamber, effecting harmful transitions of the superconducting magnets ("quenches"). This can be prevented by the collimation system which confines the particle losses to special, non superconducting sections of the machine. Due to the high energy and intensity of the LHC, any removal system must attain an unprecedented efficiency. The cleaning system was designed on the basis of purely geometric and optical models which neglect non linear effects and assume perfectly absorbing materials. In a second step, true scattering in matter is considered. A series of machine developments (MD) were carried out in 1996-7 with the principal aim of validating the design assumptions. A collimation system comparable to that of the LHC was employed. The predictions of the numerical model used to compute the LHC collimation system efficiency were compared with the data acquired during the measurement sessions. The experiments pointed to areas for further refinement of the design model and highlighted the physical constraints which one might expect in such an elaborated cleaning system. They revealed the critical importance to the simulation model of accurate values for the diffusion velocity of the halo particles and of the aperture limitations in the machine.In addition, the experiments confirmed the necessity of controlling the closed orbit excursions in the collimation sections. They also revealed the sensitivity of the cleaning to small deviations of the linear optic functions. Insights gained from the MD sessions allowed further refinements to the LHC collimation system model. The results of subsequent simulations indicate that the ultimate efficiency required for optimum operation of the LHC can be reached.CERNCERN-THESIS-2000-019oai:cds.cern.ch:4470771998
spellingShingle Accelerators and Storage Rings
Catalan-Lasheras, N
Transverse and Longitudinal Beam Collimation in a High-Energy Proton Collider (LHC)
title Transverse and Longitudinal Beam Collimation in a High-Energy Proton Collider (LHC)
title_full Transverse and Longitudinal Beam Collimation in a High-Energy Proton Collider (LHC)
title_fullStr Transverse and Longitudinal Beam Collimation in a High-Energy Proton Collider (LHC)
title_full_unstemmed Transverse and Longitudinal Beam Collimation in a High-Energy Proton Collider (LHC)
title_short Transverse and Longitudinal Beam Collimation in a High-Energy Proton Collider (LHC)
title_sort transverse and longitudinal beam collimation in a high-energy proton collider (lhc)
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/447077
work_keys_str_mv AT catalanlasherasn transverseandlongitudinalbeamcollimationinahighenergyprotoncolliderlhc