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We construct a three-dimensional, fully relativistic numerical model of a universe filled with an inhomogeneous pressureless fluid, starting from initial data that represent a perturbation of the Einstein-de Sitter model.
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F. Loffler, J. Faber, E. Bentivegna, T. Bode, P. Diener, et al. , “The Einstein Toolkit: A Community Computational Infrastructure for Relativistic Astrophysics,” Class.Quant.Grav. 29
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J. Adamek, D. Daverio, R. Durrer, and M. Kunz, “General Relativistic N N -body simulations in the weak field limit,” Phys. Rev. D88
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C.-M. Yoo, H. Okawa, and K.-i. Nakao, “Black Hole Universe: Time Evolution,” Phys.Rev.Lett. 111
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E. Bentivegna and M. Korzynski, “Evolution of a family of expanding cubic black-hole lattices in numerical relativity,” Class.Quant.Grav. 30
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J. Adamek, R. Durrer, and M. Kunz, “N-body methods for relativistic cosmology,” Class. Quant. Grav. 31
2014
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D. B. Thomas, M. Bruni, and D. Wands, “The fully non-linear post-Friedmann frame-dragging vector potential: Magnitude and time evolution from N-body simulations,” Mon. Not. Roy. Astron. Soc. 452
2015
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I. Milillo, D. Bertacca, M. Bruni, and A. Maselli, “Missing link: A nonlinear post-Friedmann framework for small and large scales,” Phys. Rev. D92
2015
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V. Cardoso, L. Gualtieri, C. Herdeiro, and U. Sperhake, “Exploring New Physics Frontiers Through Numerical Relativity,” Living Rev. Relativity 18
2015
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C. Fidler, C. Rampf, T. Tram, R. Crittenden, K. Koyama, and D. Wands, “General relativistic corrections to N N -body simulations and the Zel’dovich approximation,” Phys. Rev. D92
2015
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J. Adamek, D. Daverio, R. Durrer, and M. Kunz, “General relativity and cosmic structure formation,” Nature Phys. 12
2016
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J. T. Giblin, J. B. Mertens, and G. D. Starkman, “Departures from the Friedmann-Lemaitre-Robertston-Walker Cosmological Model in an Inhomogeneous Universe: A Numerical Examination,” Phys. Rev. Lett. 116
2016
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J. B. Mertens, J. T. Giblin, and G. D. Starkman, “Integration of inhomogeneous cosmological spacetimes in the BSSN formalism,” Phys. Rev. D93
2016
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