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Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton Beam

AWAKE, the Advanced Proton-Driven Plasma Wakefield Acceleration Experiment, is a proof-of-principle R&D experiment at CERN using a 400 GeV/c proton beam from the CERN SPS (longitudinal beam size sigma_z = 12 mm) which will be sent into a 10 m long plasma section with a nominal density of approx....

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Detalles Bibliográficos
Autores principales: Turner, M., Petrenko, A., Biskup, B., Burger, S., Gschwendtner, E., Lotov, K.V., Mazzoni, S., Vincke, H.
Lenguaje:eng
Publicado: 2015
Materias:
Acceso en línea:https://dx.doi.org/10.1016/j.nima.2016.01.060
http://cds.cern.ch/record/2104428
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author Turner, M.
Petrenko, A.
Biskup, B.
Burger, S.
Gschwendtner, E.
Lotov, K.V.
Mazzoni, S.
Vincke, H.
author_facet Turner, M.
Petrenko, A.
Biskup, B.
Burger, S.
Gschwendtner, E.
Lotov, K.V.
Mazzoni, S.
Vincke, H.
author_sort Turner, M.
collection CERN
description AWAKE, the Advanced Proton-Driven Plasma Wakefield Acceleration Experiment, is a proof-of-principle R&D experiment at CERN using a 400 GeV/c proton beam from the CERN SPS (longitudinal beam size sigma_z = 12 mm) which will be sent into a 10 m long plasma section with a nominal density of approx. 7x10^14 atoms/cm3 (plasma wavelength lambda_p = 1.2mm). In this paper we show that by measuring the time integrated transverse profile of the proton bunch at two locations downstream of the AWAKE plasma, information about the occurrence of the self-modulation instability (SMI) can be inferred. In particular we show that measuring defocused protons with an angle of 1 mrad corresponds to having electric fields in the order of GV/m and fully developed self-modulation of the proton bunch. Additionally, by measuring the defocused beam edge of the self-modulated bunch, information about the growth rate of the instability can be extracted. If hosing instability occurs, it could be detected by measuring a non-uniform defocused beam shape with changing radius. Using a 1 mm thick Chromox scintillation screen for imaging of the self-modulated proton bunch, an edge resolution of 0.6 mm and hence a SMI saturation point resolution of 1.2 m can be achieved.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2015
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spelling cern-21044282022-08-10T12:44:15Zdoi:10.1016/j.nima.2016.01.060http://cds.cern.ch/record/2104428engTurner, M.Petrenko, A.Biskup, B.Burger, S.Gschwendtner, E.Lotov, K.V.Mazzoni, S.Vincke, H.Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton BeamOther Fields of PhysicsAWAKE, the Advanced Proton-Driven Plasma Wakefield Acceleration Experiment, is a proof-of-principle R&D experiment at CERN using a 400 GeV/c proton beam from the CERN SPS (longitudinal beam size sigma_z = 12 mm) which will be sent into a 10 m long plasma section with a nominal density of approx. 7x10^14 atoms/cm3 (plasma wavelength lambda_p = 1.2mm). In this paper we show that by measuring the time integrated transverse profile of the proton bunch at two locations downstream of the AWAKE plasma, information about the occurrence of the self-modulation instability (SMI) can be inferred. In particular we show that measuring defocused protons with an angle of 1 mrad corresponds to having electric fields in the order of GV/m and fully developed self-modulation of the proton bunch. Additionally, by measuring the defocused beam edge of the self-modulated bunch, information about the growth rate of the instability can be extracted. If hosing instability occurs, it could be detected by measuring a non-uniform defocused beam shape with changing radius. Using a 1 mm thick Chromox scintillation screen for imaging of the self-modulated proton bunch, an edge resolution of 0.6 mm and hence a SMI saturation point resolution of 1.2 m can be achieved.AWAKE, the Advanced Proton-Driven Plasma Wakefield Acceleration Experiment, is a proof-of-principle R&D experiment at CERN using a 400 GeV/c proton beam from the CERN SPS (longitudinal beam size sigma_z = 12 mm) which will be sent into a 10 m long plasma section with a nominal density of approx. 7x10^14 atoms/cm3 (plasma wavelength lambda_p = 1.2mm). In this paper we show that by measuring the time integrated transverse profile of the proton bunch at two locations downstream of the AWAKE plasma, information about the occurrence of the self-modulation instability (SMI) can be inferred. In particular we show that measuring defocused protons with an angle of 1 mrad corresponds to having electric fields in the order of GV/m and fully developed self-modulation of the proton bunch. Additionally, by measuring the defocused beam edge of the self-modulated bunch, information about the growth rate of the instability can be extracted. If hosing instability occurs, it could be detected by measuring a non-uniform defocused beam shape with changing radius. Using a 1 mm thick Chromox scintillation screen for imaging of the self-modulated proton bunch, an edge resolution of 0.6 mm and hence a SMI saturation point resolution of 1.2 m can be achieved.AWAKE, the Advanced Proton-Driven Plasma Wakefield Acceleration Experiment, is a proof-of-principle R&D; experiment at CERN using a 400GeV/c proton beam from the CERN SPS (longitudinal beam size σz=12cm ) which will be sent into a 10m long plasma section with a nominal density of ≈7×1014atoms/cm3 (plasma wavelength λp=1.2mm ). In this paper we show that by measuring the time integrated transverse profile of the proton bunch at two locations downstream of the AWAKE plasma, information about the occurrence of the self-modulation instability (SMI) can be inferred. In particular we show that measuring defocused protons with an angle of 1mrad corresponds to having electric fields in the order of GV/m and fully developed self-modulation of the proton bunch. Additionally, by measuring the defocused beam edge of the self-modulated bunch, information about the growth rate of the instability can be extracted. If hosing instability occurs, it could be detected by measuring a non-uniform defocused beam shape with changing radius. Using a 1mm thick Chromox scintillation screen for imaging of the self-modulated proton bunch, an edge resolution of 0.6mm and hence an SMI saturation point resolution of 1.2m can be achieved.arXiv:1511.06537oai:cds.cern.ch:21044282015-11-20
spellingShingle Other Fields of Physics
Turner, M.
Petrenko, A.
Biskup, B.
Burger, S.
Gschwendtner, E.
Lotov, K.V.
Mazzoni, S.
Vincke, H.
Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton Beam
title Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton Beam
title_full Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton Beam
title_fullStr Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton Beam
title_full_unstemmed Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton Beam
title_short Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton Beam
title_sort indirect self-modulation instability measurement concept for the awake proton beam
topic Other Fields of Physics
url https://dx.doi.org/10.1016/j.nima.2016.01.060
http://cds.cern.ch/record/2104428
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