Robust 3 + 1-D simulations of BDNK causal relativistic viscous hydrodynamics
ORAL · Invited
Abstract
Relativistic viscous hydrodynamics is the workhorse for modeling the quark–gluon plasma (QGP) created in high-energy heavy-ion collisions and could play an equally crucial role in understanding the hot, dense matter inside neutron stars and their mergers. I will present two independent mathematical formulations that enable stable and accurate simulations of the Bemfica–Disconzi–Noronha–Kovtun (BDNK) causal relativistic viscous-hydrodynamic theory in full 3 + 1 dimensions and on arbitrary spacetime backgrounds. Both schemes are hyperbolic, flux-conservative, and well-posed; one is a full first-order reduction with constraint-cleaning fields, while the other is a mixed-order formulation that forgoes cleaning and is both memory-efficient and markedly faster. After outlining the underlying ideas, the talk will concentrate on numerical evidence for robustness and reliability. We present convergence and shock-tube tests and reproduce two well-known semi-analytical solutions relevant to heavy-ion collisions, demonstrating that both codes converge and provide accurate results. We aim to develop a common, open codebase for studying both QGP dynamics and neutron-star mergers.
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Publication: Teerthal Patel, Henry V. Hirvonen, Fabio S. Bemfica, Marcelo M. Disconzi, Jorge Noronha and Jean-Francois Pauqet, "A robust, stable, convergent, flux-conservative, constraint-preserving, and well-posed algorithm for numerical simulations of first-order causal relativistic viscous hydrodynamics in 3 + 1 dimensions with arbitrary spacetime metric." (To be published)
Presenters
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Teerthal Patel
Vanderbilt University
Authors
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Teerthal Patel
Vanderbilt University
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Fábio S Bemfica
Universidade Federal do Rio Grande do Norte
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Jorge Noronha
University of Illinois at Urbana-Champaign
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Marcelo Mendes Disconzi
Vanderbilt University
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Jean-Francois Paquet
Vanderbilt University
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Henry Hirvonen
Vanderbilt University