Lagrangian and Hamiltonian formalism for discontinuous fluid and gravitational field

P. Hájíček and J. Kijowski
Phys. Rev. D 57, 914 – Published 15 January 1998; Erratum Phys. Rev. D 61, 129901 (2000)
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Abstract

The barotropic ideal fluid with step and δ-function discontinuities coupled to Einstein’s gravity is studied. The discontinuities represent star surfaces and thin shells; only nonintersecting discontinuity hypersurfaces are considered. No symmetry (such as, e.g., the spherical symmetry) is assumed. The symplectic structure as well as the Lagrangian and the Hamiltonian variational principles for the system are written down. The dynamics is described completely by the fluid variables and the metric on the fixed background manifold. The Lagrangian and the Hamiltonian are given in two forms: the volume form, which is identical to that corresponding to the smooth system, but employs distributions, and the surface form, which is a sum of volume and surface integrals and employs only smooth variables. The surface form is completely four or three covariant (unlike the volume form). The spacelike surfaces of time foliations can have a cusp at the surface of discontinuity. Geometrical meaning of the surface terms in the Hamiltonian is given. Some of the constraint functions that result from the shell Hamiltonian cannot be smeared so as to become differentiable functions on the (unconstrained) phase space. Generalization of the formulas to more general fluid is straightforward.

  • Received 9 July 1997

DOI:https://doi.org/10.1103/PhysRevD.57.914

©1998 American Physical Society

Erratum

Authors & Affiliations

P. Hájíček

  • Institute for Theoretical Physics, University of Bern, Sidlerstrasse 5, CH-3012 Bern, Switzerland

J. Kijowski

  • Center for Theoretical Physics, Polish Academy of Sciences, Aleja Lotników 32/46, 02-668 Warsaw, Poland
  • Department of Mathematical Methods in Physics, University of Warsaw, Ul. Hoża 74, 00-682 Warsaw, Poland

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Vol. 57, Iss. 2 — 15 January 1998

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