Publications

Institute of Theoretical Physics · Faculty of Mathematics and Physics, Charles University

← Back to the list

Article

Slicing conditions for axisymmetric gravitational collapse of Brill waves

Khirnov, A.; Ledvinka, T.

Class. Quantum Grav. 35, 215003 (2018)

doi ↗ arXiv:1908.06034 ↗

Abstract

In numerical relativity, spacetimes involving compact strongly gravitating objects are constructed as numerical solutions of Einstein’s equations. Success of such a process strongly depends on the availability of appropriate coordinates, which are typically constructed dynamically. A very robust coordinate choice is a so-called moving puncture gauge, commonly used for numerical simulations of black hole spacetimes. Nevertheless it is known
to fail for evolving near-critical Brill wave data. We construct a new ‘quasimaximal’ slicing condition and demonstrate that it exhibits better behavior for such data. This condition is based on the 1+log slicing with an additional source term derived from maximal slicing. It is relatively simple to implement in existing moving puncture codes and computationally inexpensive. We also illustrate the properties of constructed spacetimes based on gauge-independent quantities in compactifed spacetime diagrams. These invariants are also used to show how created black holes settle down to a Schwarzschild black hole.

Institute authors

Supported by

  • GACR 14-37086G — Albert Einstein Center for Gravitation and Astrophysics
  • GAUK 2000314 — Numerické simulace v obecné relativitě a astrofyzice
  • SVV-260211 — Aktuální problémy teoretické fyziky, astronomie a astrofyziky

BibTeX

@article{UTF678,
  author        = {Khirnov, A. and Ledvinka, T.},
  title         = {{Slicing conditions for axisymmetric gravitational collapse of Brill waves}},
  journal       = {Class. Quantum Grav.},
  volume        = {35},
  pages         = {215003},
  year          = {2018},
  doi           = {10.1088/1361-6382/aae1bc},
  eprint        = {1908.06034},
  archivePrefix = {arXiv},
}