English

Dynamics of Superflow by Mesoscopic Condensate

Other Condensed Matter 2010-05-12 v1 Statistical Mechanics

Abstract

The shear viscosity η\eta of a quantum liquid in the vicinity of TλT_{\lambda} is examined. In liquid helium 4 above TλT_{\lambda} (Tλ<T<3.7KT_{\lambda}<T<3.7K), under a strong effect of Bose statistics, the coherent many-body wave function grows to an intermediate size between a macroscopic level and a microscopic one. These wave functions are qualitatively different from thermal fluctuation, and manifest themselves in the gradual decrease in shear viscosity above TλT_{\lambda}. To formulate this phenomenon, we combine the correlation function with fluid dynamics. Applying the Kramers-Kronig relation to the generalized Poiseuille's formula for capillary flow, we perform a perturbation calculation of the reciprocal 1/η1/\eta with respect to the particle interaction, and examine how the growth of coherent wave functions gradually decreases shear viscosity. Comparing with the experimentally determined η(T)\eta (T), ρ^s(T)/ρ\hat {\rho\cdot}_s(T)/\rho\cdot of such a mesoscopic condensate is estimated to reach 10510^{-5} just above TλT_{\lambda}. We examine the effect of condensate size on the stability of such a superflow, and touch upon the superflow in porous media.

Keywords

Cite

@article{arxiv.1004.4043,
  title  = {Dynamics of Superflow by Mesoscopic Condensate},
  author = {Shun-ichiro Koh},
  journal= {arXiv preprint arXiv:1004.4043},
  year   = {2010}
}

Comments

11 pages, 6 figures

R2 v1 2026-06-21T15:13:49.027Z