English

Hydrodynamic damping in trapped Bose gases

Condensed Matter 2007-05-23 v4

Abstract

Griffin, Wu and Stringari have derived the hydrodynamic equations of a trapped dilute Bose gas above the Bose-Einstein transition temperature. We give the extension which includes hydrodynamic damping, following the classic work of Uehling and Uhlenbeck based on the Chapman-Enskog procedure. Our final result is a closed equation for the velocity fluctuations δv\delta v which includes the hydrodynamic damping due to the shear viscosity η\eta and the thermal conductivity κ\kappa. Following Kavoulakis, Pethick and Smith, we introduce a spatial cutoff in our linearized equations when the density is so low that the hydrodynamic description breaks down. Explicit expressions are given for η\eta and κ\kappa, which are position-dependent through dependence on the local fugacity when one includes the effect of quantum degeneracy of the trapped gas. We also discuss a trapped Bose-condensed gas, generalizing the work of Zaremba, Griffin and Nikuni to include hydrodynamic damping due to the (non-condensate) normal fluid.

Keywords

Cite

@article{arxiv.cond-mat/9711036,
  title  = {Hydrodynamic damping in trapped Bose gases},
  author = {T. Nikuni and A. Griffin},
  journal= {arXiv preprint arXiv:cond-mat/9711036},
  year   = {2007}
}

Comments

21 pages, revtex, 2 postscript figures. Section IV has been revised. The damping we find is in agreement with the approach used by Kavoulakis, Pethick and Smith (cond-mat/9710130). Submitted to J. Low Temp. Phys

R2 v1 2026-07-22T12:00:33.233Z