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Definition of Energy in General Relativity via Approximate Symmetries
Details
Here approximate Lie symmetries are used to investigate the problem of energy in general relativity and in particular in gravitational waves (GW). For this purpose second-order approximate symmetries of the system of geodesic equations for the Reissner-Nordström, Kerr, Kerr-Newman and GW spacetimes are studied. It is shown that in the second-order approximation, energy must be rescaled for these spacetimes. Since GW spacetimes are time-varying vacuum solutions of Einstein's equations, there is no unambiguous means to define their energy content. Here a definition, using slightly broken symmetries is proposed. A problem is noted with the use of the proposal for pp waves. To attain a better understanding of the implications of this proposal we also use an artificially constructed time-varying non-vacuum plane symmetric metric and evaluate its Weyl and stress-energy tensors so as to obtain the gravitational and matter components separately and compare them with the energy content obtained by our proposal. The procedure is also used for cylindrical GWs. The usefulness of the definition is demonstrated by the fact that it leads to a result on whether GWs suffer self-damping.
Autorentext
I Hussain did M. Sc and M. Phil from Quaid-i-Azam University, Islamabad in 2002 & 2004 respectively. He did Ph.D in 2010 form National University of Sciences and Technology (NUST), Islamabad. His research work focused on the definition of energy in GR and especially in gravitational waves. His other interests include cosmology and symmetry analysis
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783848423927
- Auflage Aufl.
- Sprache Englisch
- Genre Physik & Astronomie
- Größe H220mm x B220mm
- Jahr 2012
- EAN 9783848423927
- Format Kartonierter Einband (Kt)
- ISBN 978-3-8484-2392-7
- Titel Definition of Energy in General Relativity via Approximate Symmetries
- Autor Ibrar Hussain
- Untertitel Gravitational Energy in spacetimes
- Herausgeber LAP Lambert Academic Publishing
- Anzahl Seiten 156