We propose a new theory of second-order viscous relativistic hydrodynamics which does not impose any frame conditions on the choice of the hydrodynamic variables. It differs from Mueller-Israel-Stewart theory by including additional transient degrees of freedom, and its first-order truncation reduces to Bemfica-Disconzi-Noronha-Kovtun theory. Conditions for causality and stability are explicitly given in the conformal regime. As an illustrative example, we consider Bjorken flow solutions to our equations and identify variables which make a hydrodynamic attractor manifest.Comment: 10 pages, 1 figure, version accepted for publication in Physical Review Letter
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We show that the recently formulated causal and stable first-order hydrodynamics has the same dynami...
We derive equations of motion for dissipative spin hydrodynamics from kinetic theory up to first ord...
Motivated by the physics of the quark-gluon plasma created in heavy-ion collision experiments, we us...
We compute the dispersion relations for scalar, vector and tensor modes of a viscous relativistic fl...
I consider a simple set of equations that govern the expansion of boost-invariant plasmas of massles...
We derive a first-order, stable and causal, relativistic hydrodynamic theory from the microscopic ki...
We consider the relativistic hydrodynamics of non-perfect fluids with the goal of determining a form...
We show how causal relativistic Navier-Stokes equations arise from the relativistic Boltzmann equati...
Motivated by the physics of the quark-gluon plasma created in heavy-ion collision experiments, we us...
Causality is necessary for retarded Green's functions to remain retarded in all inertial frames in r...
The recently proposed connection between the Lorentz invariance of stability and the speed of signal...
We present the first conservative finite volume numerical scheme for the causal, stable relativistic...
In this thesis we study second-order relativistic hydrodynamics particularly in the context of quant...
We study the causality and stability of the relativistic hydrodynamics when the spin degree of freed...
We construct stable and causal effective field theories (EFTs) for describing statistical fluctuatio...
We show that the recently formulated causal and stable first-order hydrodynamics has the same dynami...
We derive equations of motion for dissipative spin hydrodynamics from kinetic theory up to first ord...