English

Counter-flow Induced Decoupling in Super-Fluid Turbulence

Other Condensed Matter 2016-02-03 v2

Abstract

In mechanically driven superfluid turbulence the mean velocities of the normal- and superfluid components are known to coincide: Un=Us\mathbf U_{\text{n}} =\mathbf U_{\text{s}}. Numerous laboratory, numerical and analytical studies showed that under these conditions the mutual friction between the normal- and superfluid velocity components couples also their fluctuations: un(r,t)us(r,t)\mathbf u'_{\text{n}}(\mathbf r,t) \approx \mathbf u'_{\text{s}}(\mathbf r,t) almost at all scales. In this paper we show that this is not the case in thermally driven superfluid turbulence; here the counterflow velocity UnsUnUs0\mathbf U_{\text{ns}}\equiv \mathbf U_{\text{n}} -\mathbf U_{\text{s}}\ne 0. We suggest a simple analytic model for the cross correlation function un(r,t)us(r,t)\left\langle \mathbf u'_{\text{n}}(\mathbf r,t) \cdot \mathbf u'_{\text{s}}(\mathbf r',t)\right \rangle and its dependence on UnsU_{\text{ns}}. We demonstrate that un(r,t)\mathbf u'_{\text{n}}(\mathbf r,t) and us(r,t) \mathbf u'_{\text{s}}(\mathbf r,t) are decoupled almost in the entire range of separations rr|\mathbf r-\mathbf r'| between the energy containing scale and intervortex distance.

Keywords

Cite

@article{arxiv.1509.03566,
  title  = {Counter-flow Induced Decoupling in Super-Fluid Turbulence},
  author = {Dmytro Khomenko and Victor S. L'vov and Anna Pomyalov and Itamar Procaccia},
  journal= {arXiv preprint arXiv:1509.03566},
  year   = {2016}
}
R2 v1 2026-06-22T10:54:43.855Z