A covariant action principle for dissipative fluid dynamics: From formalism to fundamental physics
arXiv:1306.3345 · doi:10.1088/0264-9381/32/7/075008
Abstract
We present a new variational framework for dissipative general relativistic fluid dynamics. The model extends the convective variational principle for multi-fluid systems to account for a range of dissipation channels. The key ingredients in the construction are i) the use of a lower dimensional matter space for each fluid component, and ii) an extended functional dependence for the associated volume forms. In an effort to make the concepts clear, the formalism is developed in steps with the model example of matter coupled to heat considered at each level. Thus we discuss a model for heat flow, derive the relativistic Navier-Stokes equations and discuss why the individual dissipative stress tensors need not be spacetime symmetric. We argue that the new formalism, which notably does not involve an expansion away from an assumed equilibrium state, provides a conceptual breakthrough in this area of research and provide an ambitious list of directions in which one may want to extend it in the future. This involves an exciting set of problems, relating to both applications and foundational issues.
21 pages RevTex, 3 pdf figures, matches the published version. arXiv admin note: text overlap with arXiv:1107.1005 by other authors
References in corpus (19)
- Collective flow and viscosity in relativistic heavy-ion collisions
- Gravity & Hydrodynamics: Lectures on the fluid-gravity correspondence
- Holographic model of superfluidity
- Neutron Star Asteroseismology. Axial Crust Oscillations in the Cowling Approximation
- The quantum mechanics of perfect fluids
- Relativistic Dynamics of Non-ideal Fluids: Viscous and heat-conducting fluids I. General Aspects and 3+1 Formulation for Nuclear Collisions
- Entropy density of spacetime and the Navier-Stokes fluid dynamics of null surfaces
- Relativistic Dynamics of Non-ideal Fluids: Viscous and heat-conducting fluids II. Transport properties and microscopic description of relativistic nuclear matter
- Dissipation in the effective field theory for hydrodynamics: First order effects
- Non-dissipative hydrodynamics: Effective actions versus entropy current
- Thermal Dynamics in General Relativity
- Complete relativistic second-order dissipative hydrodynamics from the entropy principle
- Relativistic mechanics of neutron superfluid in (magneto) elastic star crust
- Axial quasi-normal modes of neutron stars: Accounting for the superfluid in the crust
- Formulating Viscous Hydrodynamics for Large Velocity Gradients
- Hamiltonian analysis of the double null 2+2 decomposition of General Relativity expressed in terms of self-dual bivectors
- Hamiltonian analysis of the double null 2+2 decomposition of Ashtekar variables
- Causal Relativistic Fluid Dynamics
- Relativistic Viscous Hydrodynamics for Multi-Component Systems with Multiple Conserved Currents
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- Relativistic fluid dynamics: physics for many different scales
- Linear response theory of relativistic hydrodynamics with spin
- Global Anomalies, Discrete Symmetries, and Hydrodynamic Effective Actions
- Superradiance in stars
- Bulk viscosity in relativistic fluids: from thermodynamics to hydrodynamics
- General-relativistic hydrodynamics of non-perfect fluids: 3+1 conservative formulation and application to viscous black-hole accretion
- Beyond ideal magnetohydrodynamics: From fibration to 3+1 foliation
- Modeling general-relativistic plasmas with collisionless moments and dissipative two-fluid magnetohydrodynamics
- Unified Extended Irreversible Thermodynamics and the stability of relativistic theories for dissipation
- Multifluid Modelling of Relativistic Radiation Hydrodynamics
- A new continuum model for general relativistic viscous heat-conducting media
- Dissipative relativistic magnetohydrodynamics of a multicomponent mixture and its application to neutron stars
- The dynamics of neutron star crusts: Lagrangian perturbation theory for a relativistic superfluid-elastic system
- A variational approach to resistive relativistic plasmas
- Variational principle for theories with dissipation from analytic continuation
- Beyond ideal magnetohydrodynamics: Resistive, reactive and relativistic plasmas
- Quantised vortices and mutual friction in relativistic superfluids
- Local temperature in general relativity
- Linearizing a Non-linear Formulation for General Relativistic Dissipative Fluids
- Heat conduction in general relativity
- Temperature upper bound of an ideal gas
- Steady heat conduction in general relativity
- Extending Israel and Stewart hydrodynamics to relativistic superfluids via Carter's multifluid approach