Full Text Available

Note: Clicking the button above will open the full text document at the original institutional repository in a new window.

Stability and gravitational collapse in extended theories of gravity: from singularities to bouncing scenarios

Einstein theory of General Relativity was well adapted and accepted until limitations in the form of an unexplained form of energy, referred today as Dark Energy, were observed. For this reason, modifications to the standard Theory of General Relativity were proposed: the so-called f(R) theories. In...

Full description

Saved in:
Bibliographic Details
Main Author: Hurgobin, Kirtika Juhi
Other Authors: De La Cruz-Dombriz, Alvaro
Format: Thesis
Language:English
Published: Department of Maths and Applied Maths 2020
Subjects:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1867614073028345856
access_status_str Open Access
author Hurgobin, Kirtika Juhi
author2 De La Cruz-Dombriz, Alvaro
author_browse De La Cruz-Dombriz, Alvaro
Hurgobin, Kirtika Juhi
author_facet De La Cruz-Dombriz, Alvaro
Hurgobin, Kirtika Juhi
author_sort Hurgobin, Kirtika Juhi
collection Thesis
description Einstein theory of General Relativity was well adapted and accepted until limitations in the form of an unexplained form of energy, referred today as Dark Energy, were observed. For this reason, modifications to the standard Theory of General Relativity were proposed: the so-called f(R) theories. In this dissertation, after a passage on the generalities of cosmology, we use the metric formalism technique to derive the field equations for the general f(R) function. Thereafter we analyse and check the solutions proposed in [85] for the quadratic model in f(R) gravity, for spherically symmetric and static neutron stars, using two different viable equations of state. We also check the accuracy of our code through a forward-backward integration technique, to show that in both directions, we obtain the same results. We then perform a thorough analysis in the case of f(R) = R1+ models. Results will show that for a negative value, we have non-Schwarzschild, but asymptotically flat solutions, for which we can use the backward integration technique to retrieve the solutions from the forward integration. However, for the case of positive values, we will show the existence of horizons, which deny us the possibility of using the backward integration technique. One of the aims of this thesis is to check, through the backward integration technique that we developed, whether the exact exterior solutions proposed in [86], are indeed realistic solutions for neutron stars. We will see that for some cases, we do have realistic profiles, while for some others, although solutions exist, they are rejected due to their disagreement with the equation of state used therein.
format Thesis
id oai:open.uct.ac.za:11427/31395
institution University of Cape Town (South Africa)
language eng
last_indexed 2026-06-10T12:46:14.406Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from UCTD — University of Cape Town Open Access Repository
publishDate 2020
publishDateRange 2020
publishDateSort 2020
publisher Department of Maths and Applied Maths
publisherStr Department of Maths and Applied Maths
record_format dspace
source_str UCTD — University of Cape Town Open Access Repository
spelling oai:open.uct.ac.za:11427/31395 Stability and gravitational collapse in extended theories of gravity: from singularities to bouncing scenarios Hurgobin, Kirtika Juhi De La Cruz-Dombriz, Alvaro Mathematics and Applied Mathematics Einstein theory of General Relativity was well adapted and accepted until limitations in the form of an unexplained form of energy, referred today as Dark Energy, were observed. For this reason, modifications to the standard Theory of General Relativity were proposed: the so-called f(R) theories. In this dissertation, after a passage on the generalities of cosmology, we use the metric formalism technique to derive the field equations for the general f(R) function. Thereafter we analyse and check the solutions proposed in [85] for the quadratic model in f(R) gravity, for spherically symmetric and static neutron stars, using two different viable equations of state. We also check the accuracy of our code through a forward-backward integration technique, to show that in both directions, we obtain the same results. We then perform a thorough analysis in the case of f(R) = R1+ models. Results will show that for a negative value, we have non-Schwarzschild, but asymptotically flat solutions, for which we can use the backward integration technique to retrieve the solutions from the forward integration. However, for the case of positive values, we will show the existence of horizons, which deny us the possibility of using the backward integration technique. One of the aims of this thesis is to check, through the backward integration technique that we developed, whether the exact exterior solutions proposed in [86], are indeed realistic solutions for neutron stars. We will see that for some cases, we do have realistic profiles, while for some others, although solutions exist, they are rejected due to their disagreement with the equation of state used therein. 2020-02-28T12:54:49Z 2020-02-28T12:54:49Z 2019 2020-02-28T08:58:56Z Master Thesis Masters MSc http://hdl.handle.net/11427/31395 eng application/pdf Department of Maths and Applied Maths Faculty of Science
spellingShingle Mathematics and Applied Mathematics
Hurgobin, Kirtika Juhi
Stability and gravitational collapse in extended theories of gravity: from singularities to bouncing scenarios
thesis_degree_str Master's
title Stability and gravitational collapse in extended theories of gravity: from singularities to bouncing scenarios
title_full Stability and gravitational collapse in extended theories of gravity: from singularities to bouncing scenarios
title_fullStr Stability and gravitational collapse in extended theories of gravity: from singularities to bouncing scenarios
title_full_unstemmed Stability and gravitational collapse in extended theories of gravity: from singularities to bouncing scenarios
title_short Stability and gravitational collapse in extended theories of gravity: from singularities to bouncing scenarios
title_sort stability and gravitational collapse in extended theories of gravity from singularities to bouncing scenarios
topic Mathematics and Applied Mathematics
url http://hdl.handle.net/11427/31395
work_keys_str_mv AT hurgobinkirtikajuhi stabilityandgravitationalcollapseinextendedtheoriesofgravityfromsingularitiestobouncingscenarios