English

Embedding Galilean and Carrollian geometries I. Gravitational waves

High Energy Physics - Theory 2020-08-21 v2 General Relativity and Quantum Cosmology Mathematical Physics math.MP

Abstract

The aim of this series of papers is to generalise the ambient approach of Duval et al. regarding the embedding of Galilean and Carrollian geometries inside gravitational waves with parallel rays. In this first part, we propose a generalisation of the embedding of torsionfree Galilean and Carrollian manifolds inside larger classes of gravitational waves. On the Galilean side, the quotient procedure of Duval et al. is extended to gravitational waves endowed with a lightlike hypersurface-orthogonal Killing vector field. This extension is shown to provide the natural geometric framework underlying the generalisation by Lichnerowicz of the Eisenhart lift. On the Carrollian side, a new class of gravitational waves - dubbed Dodgson waves - is introduced and geometrically characterised. Dodgson waves are shown to admit a lightlike foliation by Carrollian manifolds and furthermore to be the largest subclass of gravitational waves satisfying this property. This extended class allows to generalise the embedding procedure to a larger class of Carrollian manifolds that we explicitly identify. As an application of the general formalism, (Anti) de Sitter spacetime is shown to admit a lightlike foliation by codimension one (A)dS Carroll manifolds.

Keywords

Cite

@article{arxiv.1811.12681,
  title  = {Embedding Galilean and Carrollian geometries I. Gravitational waves},
  author = {Kevin Morand},
  journal= {arXiv preprint arXiv:1811.12681},
  year   = {2020}
}

Comments

60 pages, 3 figures; References and summarizing figure added, matches published version