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Gravitational Waves from Current-Carrying Cosmic Strings
Cosmic strings are predicted by many Standard Model extensions involving the cosmological breaking of a symmetry with nontrivial first homotopy group and represent a potential source of primordial gravitational waves (GWs).Present efforts to model the GW signal from cosmic strings are often based on...
Autores principales: | , , , |
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Lenguaje: | eng |
Publicado: |
2022
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1088/1475-7516/2023/04/009 http://cds.cern.ch/record/2815543 |
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author | Auclair, Pierre Blasi, Simone Brdar, Vedran Schmitz, Kai |
author_facet | Auclair, Pierre Blasi, Simone Brdar, Vedran Schmitz, Kai |
author_sort | Auclair, Pierre |
collection | CERN |
description | Cosmic strings are predicted by many Standard Model extensions involving the cosmological breaking of a symmetry with nontrivial first homotopy group and represent a potential source of primordial gravitational waves (GWs).Present efforts to model the GW signal from cosmic strings are often based on minimal models, such as, e.g., the Nambu-Goto action that describes cosmic strings as exactly one-dimensional objects without any internal structure.In order to arrive at more realistic predictions, it is therefore necessary to consider nonminimal models that make an attempt at accounting for the microscopic properties of cosmic strings.With this goal in mind, we derive in this paper the GW spectrum emitted by current-carrying cosmic strings (CCCSs), which may form in a variety of cosmological scenarios.Our analysis is based on a generalized version of the velocity-dependent one-scale (VOS) model, which, in addition to the mean velocity and correlation length of the string network, also describes the evolution of a chiral (light-like) current.As we are able to show, the solutions of the VOS equations imply a temporarily growing fractional cosmic-string energy density, Ω$_{cs}$.This results in an enhanced GW signal across a broad frequency interval, whose boundaries are determined by the times of generation and decay of cosmic-string currents.Our findings have important implications for GW experiments in the Hz to MHz band and motivate the construction of realistic particle physics models that give rise to large currents on cosmic strings. |
id | cern-2815543 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2022 |
record_format | invenio |
spelling | cern-28155432023-06-27T04:57:31Zdoi:10.1088/1475-7516/2023/04/009http://cds.cern.ch/record/2815543engAuclair, PierreBlasi, SimoneBrdar, VedranSchmitz, KaiGravitational Waves from Current-Carrying Cosmic Stringshep-phParticle Physics - Phenomenologyastro-ph.COAstrophysics and AstronomyCosmic strings are predicted by many Standard Model extensions involving the cosmological breaking of a symmetry with nontrivial first homotopy group and represent a potential source of primordial gravitational waves (GWs).Present efforts to model the GW signal from cosmic strings are often based on minimal models, such as, e.g., the Nambu-Goto action that describes cosmic strings as exactly one-dimensional objects without any internal structure.In order to arrive at more realistic predictions, it is therefore necessary to consider nonminimal models that make an attempt at accounting for the microscopic properties of cosmic strings.With this goal in mind, we derive in this paper the GW spectrum emitted by current-carrying cosmic strings (CCCSs), which may form in a variety of cosmological scenarios.Our analysis is based on a generalized version of the velocity-dependent one-scale (VOS) model, which, in addition to the mean velocity and correlation length of the string network, also describes the evolution of a chiral (light-like) current.As we are able to show, the solutions of the VOS equations imply a temporarily growing fractional cosmic-string energy density, Ω$_{cs}$.This results in an enhanced GW signal across a broad frequency interval, whose boundaries are determined by the times of generation and decay of cosmic-string currents.Our findings have important implications for GW experiments in the Hz to MHz band and motivate the construction of realistic particle physics models that give rise to large currents on cosmic strings.Cosmic strings are predicted by many Standard Model extensions involving the cosmological breaking of a symmetry with nontrivial first homotopy group and represent a potential source of primordial gravitational waves (GWs). Present efforts to model the GW signal from cosmic strings are often based on minimal models, such as, eg, the Nambu--Goto action that describes cosmic strings as exactly one-dimensional objects without any internal structure. In order to arrive at more realistic predictions, it is therefore necessary to consider nonminimal models that make an attempt at accounting for the microscopic properties of cosmic strings. With this goal in mind, we derive in this paper the GW spectrum emitted by current-carrying cosmic strings (CCCSs), which may form in a variety of cosmological scenarios. Our analysis is based on a generalized version of the velocity-dependent one-scale (VOS) model, which, in addition to the mean velocity and correlation length of the string network, also describes the evolution of a chiral (light-like) current. As we are able to show, the solutions of the VOS equations imply a temporarily growing fractional cosmic-string energy density, $\Omega_{\rm cs}$. This results in an enhanced GW signal across a broad frequency interval, whose boundaries are determined by the times of generation and decay of cosmic-string currents. Our findings have important implications for GW experiments in the Hz to MHz band and motivate the construction of realistic particle physics models that give rise to large currents on cosmic strings.arXiv:2207.03510CERN-TH-2022-116FERMILAB-PUB-22-508-TMS-TP-22-19NUHEP-TH/22-07oai:cds.cern.ch:28155432022-07-07 |
spellingShingle | hep-ph Particle Physics - Phenomenology astro-ph.CO Astrophysics and Astronomy Auclair, Pierre Blasi, Simone Brdar, Vedran Schmitz, Kai Gravitational Waves from Current-Carrying Cosmic Strings |
title | Gravitational Waves from Current-Carrying Cosmic Strings |
title_full | Gravitational Waves from Current-Carrying Cosmic Strings |
title_fullStr | Gravitational Waves from Current-Carrying Cosmic Strings |
title_full_unstemmed | Gravitational Waves from Current-Carrying Cosmic Strings |
title_short | Gravitational Waves from Current-Carrying Cosmic Strings |
title_sort | gravitational waves from current-carrying cosmic strings |
topic | hep-ph Particle Physics - Phenomenology astro-ph.CO Astrophysics and Astronomy |
url | https://dx.doi.org/10.1088/1475-7516/2023/04/009 http://cds.cern.ch/record/2815543 |
work_keys_str_mv | AT auclairpierre gravitationalwavesfromcurrentcarryingcosmicstrings AT blasisimone gravitationalwavesfromcurrentcarryingcosmicstrings AT brdarvedran gravitationalwavesfromcurrentcarryingcosmicstrings AT schmitzkai gravitationalwavesfromcurrentcarryingcosmicstrings |