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arXiv · gr-qc/0606130

Energy of general 4-dimensional stationary axisymmetric spacetime in the teleparallel geometry

Abstract

The field equation with the cosmological constant term is derived and the energy of the general 4-dimensional stationary axisymmetric spacetime is studied in the context of the hamiltonian formulation of the teleparallel equivalent of general relativity (TEGR). We find that, by means of the integral form of the constraints equations of the formalism naturally without any restriction on the metric parameters, the energy for the asymptotically flat/de Sitter/Anti-de Sitter stationary spacetimes in the Boyer-Lindquist coordinate can be expressed as $E=\frac{1}{8π}\int_S dθdϕ(sinθ\sqrt{g_{θθ}}+\sqrt{g_{ϕϕ}}-(1/\sqrt{g_{rr}})(\partial{\sqrt{g_ {θθ} g_{ϕϕ}}}/\partial r))$. It is surprised to learn that the energy expression is relevant to the metric components $g_{rr}$, $g_{θθ}$ and $g_{ϕϕ}$ only. As examples, by using this formula we calculate the energies of the Kerr-Newman (KN), Kerr-Newman Anti-de Sitter (KN-AdS), Kaluza-Klein, and Cvetič-Youm spacetimes.

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Shanxian Xu, Jiliang Jing. 2006-06-30. Energy of general 4-dimensional stationary axisymmetric spacetime in the teleparallel geometry. https://doi.org/10.1088/0264-9381%2F23%2F14%2F007

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