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On the resolution function of the n_TOF facility: a comprehensive study and user guide

The purpose of this report is to provide the necessary information and tools for the n_TOF Collaboration on how to correctly account for the neutron resolution function in the experimental areas (EAR1 and EAR2) for different n_TOF operation periods. The n_TOF target as well as th...

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Autores principales: Vlachoudis, Vasilis, Sabate-Gilarte, Marta, Alcayne, Victor, Gunsing, Frank, Mendoza, Emilio, Ogallar, Francisco, Rejwan, Idan, Bacak, Michael, Guerrero, Carlos, Massimi, Cristian, Stamatopoulos, Athanasios
Lenguaje:eng
Publicado: 2021
Materias:
Acceso en línea:http://cds.cern.ch/record/2764434
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author Vlachoudis, Vasilis
Sabate-Gilarte, Marta
Alcayne, Victor
Gunsing, Frank
Mendoza, Emilio
Ogallar, Francisco
Rejwan, Idan
Bacak, Michael
Guerrero, Carlos
Massimi, Cristian
Stamatopoulos, Athanasios
author_facet Vlachoudis, Vasilis
Sabate-Gilarte, Marta
Alcayne, Victor
Gunsing, Frank
Mendoza, Emilio
Ogallar, Francisco
Rejwan, Idan
Bacak, Michael
Guerrero, Carlos
Massimi, Cristian
Stamatopoulos, Athanasios
author_sort Vlachoudis, Vasilis
collection CERN
description The purpose of this report is to provide the necessary information and tools for the n_TOF Collaboration on how to correctly account for the neutron resolution function in the experimental areas (EAR1 and EAR2) for different n_TOF operation periods. The n_TOF target as well as the cooling/moderation system was designed to optimize the performances of the neutron beam for EAR1. Additionally, EAR1 is located underground 200 m away, in nearly the same direction as the incoming proton beam, from the spallation target. On the contrary, EAR2 was an extension of the existing facility. It is located above the ground at 20 m from the spallation target in the perpendicular direction with respect to the incoming proton beam. Even though the energy resolution is worse due to the shorter flightpath, the main issue with the resolution function comes from the geometry of the cooling/moderation system and the shape of the spallation target. Experimental data acquired in any of the experimental areas has embedded the effect of the resolution function. Therefore, when treating these data there are two options. Either deconvolute them from the resolution function or convolve the reference data, for instance evaluated cross sections, with the resolution function to be able to compare both sets of data in the same conditions. Usually, the second method is adopted for simplicity. In both cases the explicit distribution of the resolution function should be available. Even more, to perform the resonance analysis with SAMMY or REFIT this information must be known. The question here is: how to obtain the resolution function.
id cern-2764434
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2021
record_format invenio
spelling cern-27644342021-04-26T07:24:07Zhttp://cds.cern.ch/record/2764434engVlachoudis, VasilisSabate-Gilarte, MartaAlcayne, VictorGunsing, FrankMendoza, EmilioOgallar, FranciscoRejwan, IdanBacak, MichaelGuerrero, CarlosMassimi, CristianStamatopoulos, AthanasiosOn the resolution function of the n_TOF facility: a comprehensive study and user guideNuclear Physics - ExperimentThe purpose of this report is to provide the necessary information and tools for the n_TOF Collaboration on how to correctly account for the neutron resolution function in the experimental areas (EAR1 and EAR2) for different n_TOF operation periods. The n_TOF target as well as the cooling/moderation system was designed to optimize the performances of the neutron beam for EAR1. Additionally, EAR1 is located underground 200 m away, in nearly the same direction as the incoming proton beam, from the spallation target. On the contrary, EAR2 was an extension of the existing facility. It is located above the ground at 20 m from the spallation target in the perpendicular direction with respect to the incoming proton beam. Even though the energy resolution is worse due to the shorter flightpath, the main issue with the resolution function comes from the geometry of the cooling/moderation system and the shape of the spallation target. Experimental data acquired in any of the experimental areas has embedded the effect of the resolution function. Therefore, when treating these data there are two options. Either deconvolute them from the resolution function or convolve the reference data, for instance evaluated cross sections, with the resolution function to be able to compare both sets of data in the same conditions. Usually, the second method is adopted for simplicity. In both cases the explicit distribution of the resolution function should be available. Even more, to perform the resonance analysis with SAMMY or REFIT this information must be known. The question here is: how to obtain the resolution function.n_TOF-PUB-2021-001CERN-n_TOF-PUB-2021-001oai:cds.cern.ch:27644342021-04-16
spellingShingle Nuclear Physics - Experiment
Vlachoudis, Vasilis
Sabate-Gilarte, Marta
Alcayne, Victor
Gunsing, Frank
Mendoza, Emilio
Ogallar, Francisco
Rejwan, Idan
Bacak, Michael
Guerrero, Carlos
Massimi, Cristian
Stamatopoulos, Athanasios
On the resolution function of the n_TOF facility: a comprehensive study and user guide
title On the resolution function of the n_TOF facility: a comprehensive study and user guide
title_full On the resolution function of the n_TOF facility: a comprehensive study and user guide
title_fullStr On the resolution function of the n_TOF facility: a comprehensive study and user guide
title_full_unstemmed On the resolution function of the n_TOF facility: a comprehensive study and user guide
title_short On the resolution function of the n_TOF facility: a comprehensive study and user guide
title_sort on the resolution function of the n_tof facility: a comprehensive study and user guide
topic Nuclear Physics - Experiment
url http://cds.cern.ch/record/2764434
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