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Predicting the Trajectory of a Relativistic Electron Beam for External Injection in Plasma Wakefields

We use beam position measurements over the first part of the AWAKE electron beamline, together with beamline modeling, to deduce the beam average momentum and to predict the beam position in the second part of the beamline. Results show that using only the first five beam position monitors leads to...

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Autores principales: Asmus, Felipe Peña, Velotti, Francesco Maria, Turner, Marlene, Gessner, Spencer, Martyanov, Mikhail, Bracco, Chiara, Goddard, Brennan, Muggli, Patric
Lenguaje:eng
Publicado: 2020
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1742-6596/1596/1/012048
http://cds.cern.ch/record/2799782
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author Asmus, Felipe Peña
Velotti, Francesco Maria
Turner, Marlene
Gessner, Spencer
Martyanov, Mikhail
Bracco, Chiara
Goddard, Brennan
Muggli, Patric
author_facet Asmus, Felipe Peña
Velotti, Francesco Maria
Turner, Marlene
Gessner, Spencer
Martyanov, Mikhail
Bracco, Chiara
Goddard, Brennan
Muggli, Patric
author_sort Asmus, Felipe Peña
collection CERN
description We use beam position measurements over the first part of the AWAKE electron beamline, together with beamline modeling, to deduce the beam average momentum and to predict the beam position in the second part of the beamline. Results show that using only the first five beam position monitors leads to much larger differences between predicted and measured positions at the last two monitors than when using the first eight beam position monitors. These last two positions can in principle be used with ballistic calculations to predict the parameters of closest approach of the electron bunch with the proton beam. In external injection experiments of the electron bunch into plasma wakefields driven by the proton bunch, only the first five beam position monitors measurements remain un-affected by the presence of the much higher charge proton bunch. Results with eight beam position monitors show the prediction method works in principle to determine electron and proton beams closest approach within the wakefields width (<1 mm), corresponding to injection of electrons into the wakefields. Using five beam position monitors is not sufficient.
id cern-2799782
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
record_format invenio
spelling cern-27997822023-03-14T19:17:05Zdoi:10.1088/1742-6596/1596/1/012048http://cds.cern.ch/record/2799782engAsmus, Felipe PeñaVelotti, Francesco MariaTurner, MarleneGessner, SpencerMartyanov, MikhailBracco, ChiaraGoddard, BrennanMuggli, PatricPredicting the Trajectory of a Relativistic Electron Beam for External Injection in Plasma Wakefieldsphysics.acc-phAccelerators and Storage RingsWe use beam position measurements over the first part of the AWAKE electron beamline, together with beamline modeling, to deduce the beam average momentum and to predict the beam position in the second part of the beamline. Results show that using only the first five beam position monitors leads to much larger differences between predicted and measured positions at the last two monitors than when using the first eight beam position monitors. These last two positions can in principle be used with ballistic calculations to predict the parameters of closest approach of the electron bunch with the proton beam. In external injection experiments of the electron bunch into plasma wakefields driven by the proton bunch, only the first five beam position monitors measurements remain un-affected by the presence of the much higher charge proton bunch. Results with eight beam position monitors show the prediction method works in principle to determine electron and proton beams closest approach within the wakefields width (<1 mm), corresponding to injection of electrons into the wakefields. Using five beam position monitors is not sufficient.We use beam position measurements over the first part of the AWAKE electron beamline, together with beamline modeling, to deduce the beam average momentum and to predict the beam position in the second part of the beamline. Results show that using only the first five beam position monitors leads to much larger differences between predicted and measured positions at the last two monitors than when using the first eight beam position monitors. These last two positions can in principle be used with ballistic calculations to predict the parameters of closest approach of the electron bunch with the proton beam. In external injection experiments of the electron bunch into plasma wakefields driven by the proton bunch, only the first five beam position monitors measurements remain un-affected by the presence of the much higher charge proton bunch. Results with eight beam position monitors show the prediction method works in principle to determine electron and proton beams closest approach within the wakefields width ($<$1\,mm), corresponding to injection of electrons into the wakefields. Using five beam position monitors is not sufficient.arXiv:2002.00379oai:cds.cern.ch:27997822020-02-02
spellingShingle physics.acc-ph
Accelerators and Storage Rings
Asmus, Felipe Peña
Velotti, Francesco Maria
Turner, Marlene
Gessner, Spencer
Martyanov, Mikhail
Bracco, Chiara
Goddard, Brennan
Muggli, Patric
Predicting the Trajectory of a Relativistic Electron Beam for External Injection in Plasma Wakefields
title Predicting the Trajectory of a Relativistic Electron Beam for External Injection in Plasma Wakefields
title_full Predicting the Trajectory of a Relativistic Electron Beam for External Injection in Plasma Wakefields
title_fullStr Predicting the Trajectory of a Relativistic Electron Beam for External Injection in Plasma Wakefields
title_full_unstemmed Predicting the Trajectory of a Relativistic Electron Beam for External Injection in Plasma Wakefields
title_short Predicting the Trajectory of a Relativistic Electron Beam for External Injection in Plasma Wakefields
title_sort predicting the trajectory of a relativistic electron beam for external injection in plasma wakefields
topic physics.acc-ph
Accelerators and Storage Rings
url https://dx.doi.org/10.1088/1742-6596/1596/1/012048
http://cds.cern.ch/record/2799782
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