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Beam-dynamics driven design of the LHeC energy-recovery linac

The LHeC is envisioned as a natural upgrade of the LHC that aims at delivering an electron beam for collisions with the existing hadronic beams. The current baseline design for the electron facility consists of a multipass superconducting energy-recovery linac (ERL) operating in a continuous wave mo...

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Detalles Bibliográficos
Autores principales: Pellegrini, Dario, Latina, Andrea, Schulte, Daniel, Bogacz, S Alex
Lenguaje:eng
Publicado: 2015
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevSTAB.18.121004
http://cds.cern.ch/record/2135978
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author Pellegrini, Dario
Latina, Andrea
Schulte, Daniel
Bogacz, S Alex
author_facet Pellegrini, Dario
Latina, Andrea
Schulte, Daniel
Bogacz, S Alex
author_sort Pellegrini, Dario
collection CERN
description The LHeC is envisioned as a natural upgrade of the LHC that aims at delivering an electron beam for collisions with the existing hadronic beams. The current baseline design for the electron facility consists of a multipass superconducting energy-recovery linac (ERL) operating in a continuous wave mode. The unprecedently high energy of the multipass ERL combined with a stringent emittance dilution budget poses new challenges for the beam optics. Here, we investigate the performances of a novel arc architecture based on a flexible momentum compaction lattice that mitigates the effects of synchrotron radiation while containing the bunch lengthening. Extensive beam-dynamics investigations have been performed with placet2, a recently developed tracking code for recirculating machines. They include the first end-to-end tracking and a simulation of the machine operation with a continuous beam. This paper briefly describes the Conceptual Design Report lattice, with an emphasis on possible and proposed improvements that emerged from the beam-dynamics studies. The detector bypass section has been integrated in the lattice, and its design choices are presented here. The stable operation of the ERL with a current up to ∼150  mA in the linacs has been validated in the presence of single- and multibunch wakefields, synchrotron radiation, and beam-beam effects.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2015
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spelling oai-inspirehep.net-14123042022-08-10T13:04:21Zdoi:10.1103/PhysRevSTAB.18.121004http://cds.cern.ch/record/2135978engPellegrini, DarioLatina, AndreaSchulte, DanielBogacz, S AlexBeam-dynamics driven design of the LHeC energy-recovery linacAccelerators and Storage RingsThe LHeC is envisioned as a natural upgrade of the LHC that aims at delivering an electron beam for collisions with the existing hadronic beams. The current baseline design for the electron facility consists of a multipass superconducting energy-recovery linac (ERL) operating in a continuous wave mode. The unprecedently high energy of the multipass ERL combined with a stringent emittance dilution budget poses new challenges for the beam optics. Here, we investigate the performances of a novel arc architecture based on a flexible momentum compaction lattice that mitigates the effects of synchrotron radiation while containing the bunch lengthening. Extensive beam-dynamics investigations have been performed with placet2, a recently developed tracking code for recirculating machines. They include the first end-to-end tracking and a simulation of the machine operation with a continuous beam. This paper briefly describes the Conceptual Design Report lattice, with an emphasis on possible and proposed improvements that emerged from the beam-dynamics studies. The detector bypass section has been integrated in the lattice, and its design choices are presented here. The stable operation of the ERL with a current up to ∼150  mA in the linacs has been validated in the presence of single- and multibunch wakefields, synchrotron radiation, and beam-beam effects.oai:inspirehep.net:14123042015
spellingShingle Accelerators and Storage Rings
Pellegrini, Dario
Latina, Andrea
Schulte, Daniel
Bogacz, S Alex
Beam-dynamics driven design of the LHeC energy-recovery linac
title Beam-dynamics driven design of the LHeC energy-recovery linac
title_full Beam-dynamics driven design of the LHeC energy-recovery linac
title_fullStr Beam-dynamics driven design of the LHeC energy-recovery linac
title_full_unstemmed Beam-dynamics driven design of the LHeC energy-recovery linac
title_short Beam-dynamics driven design of the LHeC energy-recovery linac
title_sort beam-dynamics driven design of the lhec energy-recovery linac
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1103/PhysRevSTAB.18.121004
http://cds.cern.ch/record/2135978
work_keys_str_mv AT pellegrinidario beamdynamicsdrivendesignofthelhecenergyrecoverylinac
AT latinaandrea beamdynamicsdrivendesignofthelhecenergyrecoverylinac
AT schultedaniel beamdynamicsdrivendesignofthelhecenergyrecoverylinac
AT bogaczsalex beamdynamicsdrivendesignofthelhecenergyrecoverylinac