用含涡旋动力学的光滑粒子流体力学数值求解双流体模型模拟旋转液氦-4的涡旋晶格再现

Satori Tsuzuki
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引用次数: 8

摘要

我们最近的研究表明,液氦-4在圆柱体中旋转的代表性现象可以通过使用光滑粒子流体力学(SPH)求解双流体模型来模拟,在重新制定粘度以保持旋转角动量之后。具体而言,我们在之前的SPH模拟中观察到多个平行涡的出现及其刚体旋转。所报道的方案基于一个经典近似,该近似假设了两个组分的流体作用力及其相互作用,期望作为现有近似的粗粒度模型,将微观模型和Navier-Stokes方程结合起来。本文在前人研究的基础上,提出了一种改进的SPH方案,该方案明确地将涡动力学纳入SPH中,再现了以往研究无法实现的涡格。因此,我们的改进方案通过将马格努斯力和涡旋之间的相互作用力引入到重新表述的双流体模型中来再现涡旋晶格。旋涡的旋转和刚体的旋转也被观察到。模型参数优化后的涡数与Feynman规则有一定的一致性。值得注意的是,从科学的角度来看,这样的涡格是由经典力学近似再现的。我们希望我们的模型能够帮助研究低温物理学的物理学家找到一种新的方法来研究这个已经吸引了80多年关注的奇怪现象。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reproduction of vortex lattices in the simulations of rotating liquid helium-4 by numerically solving the two-fluid model using smoothed-particle hydrodynamics incorporating vortex dynamics
Our recent study has shown that the representative phenomena of liquid helium-4 rotating in a cylinder could be simulated by solving the two-fluid model using smoothed-particle hydrodynamics (SPH) after reformulating the viscosity to conserve the rotational angular momentum. Specifically, the emergence of multiple parallel vortices and their rigid-body rotations were observed in our previous SPH simulations. The reported scheme is based on a classical approximation that assumes the fluid forces of both components and their interactions, with the expectation of functioning as a coarse-grained model of existing approximations that couple a microscopic model and the Navier-Stokes equation. Based on previous studies, this paper proposes an improved SPH scheme that explicitly incorporates vortex dynamics into SPH to reproduce vortex lattices, which was not possible in previous studies. Consequently, our improved scheme was observed to reproduce vortex lattices by introducing the Magnus force and the interaction forces among vortices into the reformulated two-fluid model. The spinnings of the vortices and rigid-body rotations were also observed. The number of vortices showed a certain agreement with Feynman's rule after the model parameter was optimized. Notably, from a scientific point of view, such vortex lattices are reproduced by the classical-mechanical approximation. We hope that our model will help physicists studying low-temperature physics find a new way of approaching this bizarre phenomenon that has attracted attention for more than 80 years.
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