Pith. sign in

Well-posed Cauchy formulation for Einstein-\ae ther theory

1 Pith paper cite this work. Polarity classification is still indexing.

1 Pith paper citing it
abstract

We study the well-posedness of the initial value (Cauchy) problem of vacuum Einstein-aether theory. The latter is a Lorentz-violating gravitational theory consisting of General Relativity with a dynamical timelike 'aether' vector field, which selects a 'preferred time' direction at each spacetime event. The Einstein-aether action is quadratic in the aether, and thus yields second order field equations for the metric and the aether. However, the well-posedness of the Cauchy problem is not easy to prove away from the simple case of perturbations over flat space. This is particularly problematic because well-posedness is a necessary requirement to ensure stability of numerical evolutions of the initial value problem. Here, we employ a first-order formulation of Einstein-aether theory in terms of projections on a tetrad frame. We show that under suitable conditions on the coupling constants of the theory, the resulting evolution equations can be cast into strongly or even symmetric hyperbolic form, and therefore they define a well-posed Cauchy problem.

citation-role summary

background 1

citation-polarity summary

fields

astro-ph.HE 1

years

2019 1

verdicts

UNVERDICTED 1

roles

background 1

polarities

unclear 1

representative citing papers

Probing the Nature of Black Holes: Deep in the mHz Gravitational-Wave Sky

astro-ph.HE · 2019-08-29 · unverdicted · novelty 3.0

A gravitational wave observatory ten times more sensitive than LISA in the millihertz band would enable precision tests of general relativity, black hole horizons, exotic compact objects, ultralight bosons, and dark matter environments.

citing papers explorer

Showing 1 of 1 citing paper.

  • Probing the Nature of Black Holes: Deep in the mHz Gravitational-Wave Sky astro-ph.HE · 2019-08-29 · unverdicted · none · ref 55 · internal anchor

    A gravitational wave observatory ten times more sensitive than LISA in the millihertz band would enable precision tests of general relativity, black hole horizons, exotic compact objects, ultralight bosons, and dark matter environments.