{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:170233"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:170233","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Interfaces in Numerical Relativistic hydrodynamics","abstract":"This thesis investigates numerical techniques for modelling sharp interfaces<br/>between relativistic fluids. The motivation for this work lies in obtaining accurate<br/>models of neutron star interiors for use in multidimensional simulations<br/>in general relativity. The interior structure of a neutron star is believed to<br/>contain several regions, often separated by sharp transition layers. These layers<br/>are too thin to be explicitly incorporated in a numerical simulation of the<br/>entire star. We investigate how techniques can be developed to model these<br/>layers as sharp interfaces, across which the matter model can change, with<br/>the microphysical behaviour of the transition layer described through some<br/>appropriate boundary conditions.<br/><br/>The physical situations in which strong, detectable, gravitational waves are<br/>produced are, by their nature, violent events. As a result, we expect that large<br/>non-linear features, such as shock waves, will be formed. Therefore it is essential<br/>that the techniques developed to incorporate these sharp interfaces allow<br/>for their interaction with non-linear features in a stable manner numerically.<br/><br/>The techniques required for modelling sharp interfaces between two fluid<br/>components has not previously been considered in relativity. However, in Newtonian<br/>computational fluid dynamics, the boundary conditions required for<br/>stable, accurate behaviour across a sharp interface between two fluids, modelled<br/>using level set methods, have been developed. These techniques lend<br/>themselves naturally to an extension to the relativistic situations we wish to<br/>consider. In this thesis we start from the Ghost Fluid Method of Fedkiw et al.<br/>We first investigate whether it can be extended to simple relativistic situations,<br/>hence use special relativity in 1+1 dimensions. In order to use this method in<br/>neutron star simulations, however, full general relativity is required. We therefore<br/>extend these initial results to a spherically symmetric self-gravitating body<br/>in 1+1 dimensional general relativity. Finally, since gravitational wave production<br/>requires a fully asymmetric system, we show that our method extends to<br/>multidimensional relativistic situations. To this end, the final chapter presents<br/>results using 2+1 dimensional special relativistic simulations.","abstract_html":"This thesis investigates numerical techniques for modelling sharp interfaces&lt;br/&gt;between relativistic fluids. The motivation for this work lies in obtaining accurate&lt;br/&gt;models of neutron star interiors for use in multidimensional simulations&lt;br/&gt;in general relativity. The interior structure of a neutron star is believed to&lt;br/&gt;contain several regions, often separated by sharp transition layers. These layers&lt;br/&gt;are too thin to be explicitly incorporated in a numerical simulation of the&lt;br/&gt;entire star. We investigate how techniques can be developed to model these&lt;br/&gt;layers as sharp interfaces, across which the matter model can change, with&lt;br/&gt;the microphysical behaviour of the transition layer described through some&lt;br/&gt;appropriate boundary conditions.&lt;br/&gt;&lt;br/&gt;The physical situations in which strong, detectable, gravitational waves are&lt;br/&gt;produced are, by their nature, violent events. As a result, we expect that large&lt;br/&gt;non-linear features, such as shock waves, will be formed. Therefore it is essential&lt;br/&gt;that the techniques developed to incorporate these sharp interfaces allow&lt;br/&gt;for their interaction with non-linear features in a stable manner numerically.&lt;br/&gt;&lt;br/&gt;The techniques required for modelling sharp interfaces between two fluid&lt;br/&gt;components has not previously been considered in relativity. However, in Newtonian&lt;br/&gt;computational fluid dynamics, the boundary conditions required for&lt;br/&gt;stable, accurate behaviour across a sharp interface between two fluids, modelled&lt;br/&gt;using level set methods, have been developed. These techniques lend&lt;br/&gt;themselves naturally to an extension to the relativistic situations we wish to&lt;br/&gt;consider. In this thesis we start from the Ghost Fluid Method of Fedkiw et al.&lt;br/&gt;We first investigate whether it can be extended to simple relativistic situations,&lt;br/&gt;hence use special relativity in 1+1 dimensions. In order to use this method in&lt;br/&gt;neutron star simulations, however, full general relativity is required. We therefore&lt;br/&gt;extend these initial results to a spherically symmetric self-gravitating body&lt;br/&gt;in 1+1 dimensional general relativity. Finally, since gravitational wave production&lt;br/&gt;requires a fully asymmetric system, we show that our method extends to&lt;br/&gt;multidimensional relativistic situations. To this end, the final chapter presents&lt;br/&gt;results using 2+1 dimensional special relativistic simulations.","abstract_has_math":false,"creators":["Millmore, Stephen Timothy"],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Hawke, Ian"],"committee_chairs":[],"committee_members":[],"year":2010,"date_issued":"2010-10","date_published":"2010-10","updated_at":"2026-07-24T04:36:21Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":null,"outbound_label":null,"outbound_source":null},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Hawke, Ian"]},{"key":"dc:creator","label":"Author","values":["Millmore, Stephen Timothy"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2010-10"]},{"key":"dc:date.issued","label":"Date","values":["2010-10"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Mathematics (pre 2011 reorg)","School of Mathematics"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of Southampton"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://eprints.soton.ac.uk/170233/"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["doctoral"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Ph.D."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://eprints.soton.ac.uk/170233/1/Millmore_Thesis.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["This thesis investigates numerical techniques for modelling sharp interfaces<br/>between relativistic fluids. The motivation for this work lies in obtaining accurate<br/>models of neutron star interiors for use in multidimensional simulations<br/>in general relativity. The interior structure of a neutron star is believed to<br/>contain several regions, often separated by sharp transition layers. These layers<br/>are too thin to be explicitly incorporated in a numerical simulation of the<br/>entire star. We investigate how techniques can be developed to model these<br/>layers as sharp interfaces, across which the matter model can change, with<br/>the microphysical behaviour of the transition layer described through some<br/>appropriate boundary conditions.<br/><br/>The physical situations in which strong, detectable, gravitational waves are<br/>produced are, by their nature, violent events. As a result, we expect that large<br/>non-linear features, such as shock waves, will be formed. Therefore it is essential<br/>that the techniques developed to incorporate these sharp interfaces allow<br/>for their interaction with non-linear features in a stable manner numerically.<br/><br/>The techniques required for modelling sharp interfaces between two fluid<br/>components has not previously been considered in relativity. However, in Newtonian<br/>computational fluid dynamics, the boundary conditions required for<br/>stable, accurate behaviour across a sharp interface between two fluids, modelled<br/>using level set methods, have been developed. These techniques lend<br/>themselves naturally to an extension to the relativistic situations we wish to<br/>consider. In this thesis we start from the Ghost Fluid Method of Fedkiw et al.<br/>We first investigate whether it can be extended to simple relativistic situations,<br/>hence use special relativity in 1+1 dimensions. In order to use this method in<br/>neutron star simulations, however, full general relativity is required. We therefore<br/>extend these initial results to a spherically symmetric self-gravitating body<br/>in 1+1 dimensional general relativity. Finally, since gravitational wave production<br/>requires a fully asymmetric system, we show that our method extends to<br/>multidimensional relativistic situations. To this end, the final chapter presents<br/>results using 2+1 dimensional special relativistic simulations."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Interfaces in Numerical Relativistic hydrodynamics"]}]}],"canonical_facts":{"dc:contributor.advisor":["Hawke, Ian"],"dc:creator":["Millmore, Stephen Timothy"],"dc:date":["2010-10"],"dc:date.issued":["2010-10"],"dc:description.abstract":["This thesis investigates numerical techniques for modelling sharp interfaces<br/>between relativistic fluids. The motivation for this work lies in obtaining accurate<br/>models of neutron star interiors for use in multidimensional simulations<br/>in general relativity. The interior structure of a neutron star is believed to<br/>contain several regions, often separated by sharp transition layers. These layers<br/>are too thin to be explicitly incorporated in a numerical simulation of the<br/>entire star. We investigate how techniques can be developed to model these<br/>layers as sharp interfaces, across which the matter model can change, with<br/>the microphysical behaviour of the transition layer described through some<br/>appropriate boundary conditions.<br/><br/>The physical situations in which strong, detectable, gravitational waves are<br/>produced are, by their nature, violent events. As a result, we expect that large<br/>non-linear features, such as shock waves, will be formed. Therefore it is essential<br/>that the techniques developed to incorporate these sharp interfaces allow<br/>for their interaction with non-linear features in a stable manner numerically.<br/><br/>The techniques required for modelling sharp interfaces between two fluid<br/>components has not previously been considered in relativity. However, in Newtonian<br/>computational fluid dynamics, the boundary conditions required for<br/>stable, accurate behaviour across a sharp interface between two fluids, modelled<br/>using level set methods, have been developed. These techniques lend<br/>themselves naturally to an extension to the relativistic situations we wish to<br/>consider. In this thesis we start from the Ghost Fluid Method of Fedkiw et al.<br/>We first investigate whether it can be extended to simple relativistic situations,<br/>hence use special relativity in 1+1 dimensions. In order to use this method in<br/>neutron star simulations, however, full general relativity is required. We therefore<br/>extend these initial results to a spherically symmetric self-gravitating body<br/>in 1+1 dimensional general relativity. Finally, since gravitational wave production<br/>requires a fully asymmetric system, we show that our method extends to<br/>multidimensional relativistic situations. To this end, the final chapter presents<br/>results using 2+1 dimensional special relativistic simulations."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/170233/1/Millmore_Thesis.pdf"],"dc:publisher.department":["Mathematics (pre 2011 reorg)","School of Mathematics"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/170233/"],"dc:title":["Interfaces in Numerical Relativistic hydrodynamics"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:36:21Z"}