Simple, explicitly time-dependent, and regular solutions of the linearized vacuum Einstein equations in Bondi-Sachs coordinates

Thomas Mädler
Phys. Rev. D 87, 104016 – Published 13 May 2013

Abstract

Perturbations of the linearized vacuum Einstein equations in the Bondi-Sachs formulation of general relativity can be derived from a single master function with spin weight two, which is related to the Weyl scalar Ψ0, and which is determined by a simple wave equation. By utilizing a standard spin representation of tensors on a sphere and two different approaches to solve the master equation, we are able to determine two simple and explicitly time-dependent solutions. Both solutions, of which one is asymptotically flat, comply with the regularity conditions at the vertex of the null cone. For the asymptotically flat solution we calculate the corresponding linearized perturbations, describing all multipoles of spin-2 waves that propagate on a Minkowskian background spacetime. We also analyze the asymptotic behavior of this solution at null infinity using a Penrose compactification and calculate the Weyl scalar Ψ4. Because of its simplicity, the asymptotically flat solution presented here is ideally suited for test bed calculations in the Bondi-Sachs formulation of numerical relativity. It may be considered as a sibling of the Bergmann-Sachs or Teukolsky-Rinne solutions, on spacelike hypersurfaces, for a metric adapted to null hypersurfaces.

  • Received 28 February 2013

DOI:https://doi.org/10.1103/PhysRevD.87.104016

© 2013 American Physical Society

Authors & Affiliations

Thomas Mädler*

  • Laboratoire Univers et Theorie (LUTH), CNRS/Observatoire de Paris, Université Paris Diderot, 5 place Jules Janssen, 92195 Meudon Cedex, France

  • *thomas.maedler@obspm.fr

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Vol. 87, Iss. 10 — 15 May 2013

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