Self–gravitating fluid flows with Gowdy symmetry near cosmological singularities

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Abstract

We consider self-gravitating fluids in cosmological spacetimes with Gowdy symmetry on the torus T3 and, in this class, we solve the singular initial value problem for the Einstein–Euler system of general relativity, when an initial data set is prescribed on the hypersurface of singularity. We specify initial conditions for the geometric and matter variables and identify the asymptotic behavior of these variables near the cosmological singularity. Our analysis of this class of nonlinear and singular partial differential equations exhibits a condition on the sound speed, which leads us to the notion of sub-critical, critical, and super-critical regimes. Solutions to the Einstein–Euler systems when the fluid is governed by a linear equation of state are constructed in the first two regimes, while additional difficulties arise in the latter one. All previous studies on inhomogeneous spacetimes concerned vacuum cosmological spacetimes only.

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Beyer, F., & LeFloch, P. G. (2017). Self–gravitating fluid flows with Gowdy symmetry near cosmological singularities. Communications in Partial Differential Equations, 42(8), 1199–1248. https://doi.org/10.1080/03605302.2017.1345938

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