Self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid
Exact solutions of the semi-classical Einstein equations with cosmological constant for conformally invariant free quantum fields in a general Robertson-Walker metric are found when a classical perfect fluid is present. There exist a one-parameter family of time-symmetric bouncing solutions that avo...
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todo:paper_0004640X_v215_n2_p229_Chimento2023-10-03T14:02:48Z Self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid Chimento, L.P. Zuccalá, N.A. Exact solutions of the semi-classical Einstein equations with cosmological constant for conformally invariant free quantum fields in a general Robertson-Walker metric are found when a classical perfect fluid is present. There exist a one-parameter family of time-symmetric bouncing solutions that avoid the singularity and a one-parameter family which does not have particles horizons. The de Sitter solution is found to be stable, while the Einstein universe is unstable. © 1994 Kluwer Academic Publishers. Fil:Chimento, L.P. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales; Argentina. Fil:Zuccalá, N.A. Universidad de Buenos Aires. Facultad de Ciencias Exactas y Naturales; Argentina. JOUR info:eu-repo/semantics/openAccess http://creativecommons.org/licenses/by/2.5/ar http://hdl.handle.net/20.500.12110/paper_0004640X_v215_n2_p229_Chimento |
institution |
Universidad de Buenos Aires |
institution_str |
I-28 |
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R-134 |
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Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA) |
description |
Exact solutions of the semi-classical Einstein equations with cosmological constant for conformally invariant free quantum fields in a general Robertson-Walker metric are found when a classical perfect fluid is present. There exist a one-parameter family of time-symmetric bouncing solutions that avoid the singularity and a one-parameter family which does not have particles horizons. The de Sitter solution is found to be stable, while the Einstein universe is unstable. © 1994 Kluwer Academic Publishers. |
format |
JOUR |
author |
Chimento, L.P. Zuccalá, N.A. |
spellingShingle |
Chimento, L.P. Zuccalá, N.A. Self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid |
author_facet |
Chimento, L.P. Zuccalá, N.A. |
author_sort |
Chimento, L.P. |
title |
Self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid |
title_short |
Self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid |
title_full |
Self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid |
title_fullStr |
Self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid |
title_full_unstemmed |
Self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid |
title_sort |
self-consistent solutions of the semi-classical back-reaction equations with cosmological constant spatial curvature and perfect fluid |
url |
http://hdl.handle.net/20.500.12110/paper_0004640X_v215_n2_p229_Chimento |
work_keys_str_mv |
AT chimentolp selfconsistentsolutionsofthesemiclassicalbackreactionequationswithcosmologicalconstantspatialcurvatureandperfectfluid AT zuccalana selfconsistentsolutionsofthesemiclassicalbackreactionequationswithcosmologicalconstantspatialcurvatureandperfectfluid |
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1807315788763234304 |