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CLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropies

Gravitational radiation offers a unique possibility to study the large-scale structure of the Universe, gravitational wave sources and propagation in a completely novel way. Given that gravitational wave maps contain a wealth of astrophysical and cosmological information, interpreting this signal re...

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Autores principales: Bellomo, Nicola, Bertacca, Daniele, Jenkins, Alexander C., Matarrese, Sabino, Raccanelli, Alvise, Regimbau, Tania, Ricciardone, Angelo, Sakellariadou, Mairi
Lenguaje:eng
Publicado: 2021
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2022/06/030
http://cds.cern.ch/record/2790626
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author Bellomo, Nicola
Bertacca, Daniele
Jenkins, Alexander C.
Matarrese, Sabino
Raccanelli, Alvise
Regimbau, Tania
Ricciardone, Angelo
Sakellariadou, Mairi
author_facet Bellomo, Nicola
Bertacca, Daniele
Jenkins, Alexander C.
Matarrese, Sabino
Raccanelli, Alvise
Regimbau, Tania
Ricciardone, Angelo
Sakellariadou, Mairi
author_sort Bellomo, Nicola
collection CERN
description Gravitational radiation offers a unique possibility to study the large-scale structure of the Universe, gravitational wave sources and propagation in a completely novel way. Given that gravitational wave maps contain a wealth of astrophysical and cosmological information, interpreting this signal requires a non-trivial multidisciplinary approach. In this work we present the complete computation of the signal produced by compact object mergers accounting for a detailed modelling of the astrophysical sources and for cosmological perturbations. We develop the CLASS_GWB code, which allows for the computation of the anisotropies of the astrophysical gravitational wave background, accounting for source and detector properties, as well as effects of gravitational wave propagation. We apply our numerical tools to robustly compute the angular power spectrum of the anisotropies of the gravitational wave background generated by astrophysical sources in the LIGO-Virgo frequency band. The end-to-end theoretical framework we present can be easily applied to different sources and detectors in other frequency bands. Moreover, the same numerical tools can be used to compute the anisotropies of gravitational wave maps of the sky made using resolved events.
id cern-2790626
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2021
record_format invenio
spelling cern-27906262023-07-08T06:24:55Zdoi:10.1088/1475-7516/2022/06/030http://cds.cern.ch/record/2790626engBellomo, NicolaBertacca, DanieleJenkins, Alexander C.Matarrese, SabinoRaccanelli, AlviseRegimbau, TaniaRicciardone, AngeloSakellariadou, MairiCLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropiesastro-ph.COAstrophysics and Astronomygr-qcGeneral Relativity and CosmologyGravitational radiation offers a unique possibility to study the large-scale structure of the Universe, gravitational wave sources and propagation in a completely novel way. Given that gravitational wave maps contain a wealth of astrophysical and cosmological information, interpreting this signal requires a non-trivial multidisciplinary approach. In this work we present the complete computation of the signal produced by compact object mergers accounting for a detailed modelling of the astrophysical sources and for cosmological perturbations. We develop the CLASS_GWB code, which allows for the computation of the anisotropies of the astrophysical gravitational wave background, accounting for source and detector properties, as well as effects of gravitational wave propagation. We apply our numerical tools to robustly compute the angular power spectrum of the anisotropies of the gravitational wave background generated by astrophysical sources in the LIGO-Virgo frequency band. The end-to-end theoretical framework we present can be easily applied to different sources and detectors in other frequency bands. Moreover, the same numerical tools can be used to compute the anisotropies of gravitational wave maps of the sky made using resolved events.Gravitational radiation offers a unique possibility to study the large-scale structure of the Universe, gravitational wave sources and propagation in a completely novel way. Given that gravitational wave maps contain a wealth of astrophysical and cosmological information, interpreting this signal requires a non-trivial multidisciplinary approach. In this work we present the complete computation of the signal produced by compact object mergers accounting for a detailed modelling of the astrophysical sources and for cosmological perturbations. We develop the CLASS_GWB code, which allows for the computation of the anisotropies of the astrophysical gravitational wave background, accounting for source and detector properties, as well as effects of gravitational wave propagation. We apply our numerical tools to robustly compute the angular power spectrum of the anisotropies of the gravitational wave background generated by astrophysical sources in the LIGO-Virgo frequency band. The end-to-end theoretical framework we present can be easily applied to different sources and detectors in other frequency bands. Moreover, the same numerical tools can be used to compute the anisotropies of gravitational wave maps of the sky made using resolved events.arXiv:2110.15059KCL-PH-TH-2021-70oai:cds.cern.ch:27906262021-10-26
spellingShingle astro-ph.CO
Astrophysics and Astronomy
gr-qc
General Relativity and Cosmology
Bellomo, Nicola
Bertacca, Daniele
Jenkins, Alexander C.
Matarrese, Sabino
Raccanelli, Alvise
Regimbau, Tania
Ricciardone, Angelo
Sakellariadou, Mairi
CLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropies
title CLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropies
title_full CLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropies
title_fullStr CLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropies
title_full_unstemmed CLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropies
title_short CLASS_GWB: robust modeling of the astrophysical gravitational wave background anisotropies
title_sort class_gwb: robust modeling of the astrophysical gravitational wave background anisotropies
topic astro-ph.CO
Astrophysics and Astronomy
gr-qc
General Relativity and Cosmology
url https://dx.doi.org/10.1088/1475-7516/2022/06/030
http://cds.cern.ch/record/2790626
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