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Modeling Compact Objects with Effective Field Theory

In this master's thesis we have developed a worldline Effective Field Theory of compact objects, by extending the model of spinning extended objects derived using the coset construction [1], from which one can derive the effective theory from symmetry principles. To massive spinning extended objects...

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Main Author: Martinez, Rodriguez Irvin Fabian
Other Authors: Weltman, Amanda
Format: Thesis
Language:English
Published: Department of Mathematics and Applied Mathematics 2023
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access_status_str Open Access
author Martinez, Rodriguez Irvin Fabian
author2 Weltman, Amanda
author_browse Martinez, Rodriguez Irvin Fabian
Weltman, Amanda
author_facet Weltman, Amanda
Martinez, Rodriguez Irvin Fabian
author_sort Martinez, Rodriguez Irvin Fabian
collection Thesis
description In this master's thesis we have developed a worldline Effective Field Theory of compact objects, by extending the model of spinning extended objects derived using the coset construction [1], from which one can derive the effective theory from symmetry principles. To massive spinning extended objects, we have added electromagnetic charge and the finite-size structure including dissipation, such that we describe charged spinning compact objects, the most general compact object allowed in a theory of gravity such as General Relativity with classical electrodynamics. To the derived effective action, we have matched the coefficients of the theory from the literature and obtained the leading order post-Newtonian expansion of our effective description of compact objects to show its predictability. We have expanded on the theoretical foundations of the effective theory for spinning extended objects by showing that the developed theory can be equivalent to the currently used theories as a special case. Nonetheless, the effective theory itself is more general and does not require additional degrees of freedom to be introduced, other than the ones derived from symmetries. We bring new results on the interaction and internal structure of charged spinning compact objects. On the numerical side, based on the Effective Field Theory reasoning, we have introduced a framework for evolving a compact object binary. Within this approach, we obtain the leading order waveform emitted by the binary during its late inspiral and compare it to a waveform from standard methodologies. Then, by performing illustrative numerical experiments of systems that the LIGO-Virgo observatories have already detected, we show the role of the stellar structure and their coefficients in the phase evolution of the waveform, as well as the order in which they arise and the sensitivity required for the gravitational wave observatories to measure them. If these coefficients are to be measured, tight constraints on fundamental physics can be placed.
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institution University of Cape Town (South Africa)
language eng
last_indexed 2026-06-10T12:33:48.261Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from UCTD — University of Cape Town Open Access Repository
publishDate 2023
publishDateRange 2023
publishDateSort 2023
publisher Department of Mathematics and Applied Mathematics
publisherStr Department of Mathematics and Applied Mathematics
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source_str UCTD — University of Cape Town Open Access Repository
spelling oai:open.uct.ac.za:11427/37609 Modeling Compact Objects with Effective Field Theory Martinez, Rodriguez Irvin Fabian Weltman, Amanda Mathematics In this master's thesis we have developed a worldline Effective Field Theory of compact objects, by extending the model of spinning extended objects derived using the coset construction [1], from which one can derive the effective theory from symmetry principles. To massive spinning extended objects, we have added electromagnetic charge and the finite-size structure including dissipation, such that we describe charged spinning compact objects, the most general compact object allowed in a theory of gravity such as General Relativity with classical electrodynamics. To the derived effective action, we have matched the coefficients of the theory from the literature and obtained the leading order post-Newtonian expansion of our effective description of compact objects to show its predictability. We have expanded on the theoretical foundations of the effective theory for spinning extended objects by showing that the developed theory can be equivalent to the currently used theories as a special case. Nonetheless, the effective theory itself is more general and does not require additional degrees of freedom to be introduced, other than the ones derived from symmetries. We bring new results on the interaction and internal structure of charged spinning compact objects. On the numerical side, based on the Effective Field Theory reasoning, we have introduced a framework for evolving a compact object binary. Within this approach, we obtain the leading order waveform emitted by the binary during its late inspiral and compare it to a waveform from standard methodologies. Then, by performing illustrative numerical experiments of systems that the LIGO-Virgo observatories have already detected, we show the role of the stellar structure and their coefficients in the phase evolution of the waveform, as well as the order in which they arise and the sensitivity required for the gravitational wave observatories to measure them. If these coefficients are to be measured, tight constraints on fundamental physics can be placed. 2023-03-31T08:17:48Z 2023-03-31T08:17:48Z 2022 2023-03-29T09:09:23Z Master Thesis Masters MSc http://hdl.handle.net/11427/37609 eng application/pdf Department of Mathematics and Applied Mathematics Faculty of Science
spellingShingle Mathematics
Martinez, Rodriguez Irvin Fabian
Modeling Compact Objects with Effective Field Theory
thesis_degree_str Master's
title Modeling Compact Objects with Effective Field Theory
title_full Modeling Compact Objects with Effective Field Theory
title_fullStr Modeling Compact Objects with Effective Field Theory
title_full_unstemmed Modeling Compact Objects with Effective Field Theory
title_short Modeling Compact Objects with Effective Field Theory
title_sort modeling compact objects with effective field theory
topic Mathematics
url http://hdl.handle.net/11427/37609
work_keys_str_mv AT martinezrodriguezirvinfabian modelingcompactobjectswitheffectivefieldtheory