Journal of High Energy Physics (Sep 2017)

Effective field theory of dissipative fluids

  • Michael Crossley,
  • Paolo Glorioso,
  • Hong Liu

DOI
https://doi.org/10.1007/jhep09(2017)095
Journal volume & issue
Vol. 2017, no. 9
pp. 1 – 82

Abstract

Read online

Abstract We develop an effective field theory for dissipative fluids which governs the dynamics of long-lived gapless modes associated with conserved quantities. The resulting theory gives a path integral formulation of fluctuating hydrodynamics which systematically incorporates nonlinear interactions of noises. The dynamical variables are mappings between a “fluid spacetime” and the physical spacetime and an essential aspect of our formulation is to identify the appropriate symmetries in the fluid spacetime. The theory applies to nonlinear disturbances around a general density matrix. For a thermal density matrix, we require an additional Z 2 symmetry, to which we refer as the local KMS condition. This leads to the standard constraints of hydrodynamics, as well as a nonlinear generalization of the Onsager relations. It also leads to an emergent supersymmetry in the classical statistical regime, and a higher derivative deformation of supersymmetry in the full quantum regime.

Keywords