论文标题

量子流体中通用异常湍流扩散

Universal anomalous turbulent diffusion in quantum fluids

论文作者

Yui, Satoshi, Tang, Yuan, Guo, Wei, Kobayashi, Hiromichi, Tsubota, Makoto

论文摘要

在经典的粘性流体中,已知湍流涡流导致嵌入式颗粒的快速扩散。但是,在量化涡流的混乱缠结诱导的无粘性量子流体中,颗粒的分散是通过非经典机制(即它们与不断发展的量化涡流的结合)实现的。但是,关于涡流如何在湍流中弥漫和扩散的现有知识有限。在这里,我们报告了使用完整的Biot-Savart模拟在超氟氦4中随机涡流缠结中涡流缠结中涡流的明显扩散的系统数值研究。我们揭示了纯超氟中的涡旋在小时间表现出通用异常扩散(超扩散),该涡流在很大程度上转变为正常扩散。发现这种行为是由涡旋速度的一般缩放特性引起的,涡流速度应该存在于生物 - 萨瓦特法律控制涡流运动的所有量子流体中。我们在有限温度下的模拟也很好地再现了最近的实验观察结果。从这项研究中获得的知识可能构成了理解各种凝结物和宇宙量子流体中湍流转运和通用涡流动力学的基础。

In classical viscous fluids, turbulent eddies are known to be responsible for the rapid spreading of embedded particles. But in an inviscid quantum fluid where the turbulence is induced by a chaotic tangle of quantized vortices, dispersion of the particles is achieved via a non-classical mechanism, i.e., their binding to the evolving quantized vortices. However, there is limited existing knowledge on how the vortices diffuse and spread in turbulent quantum fluids. Here we report a systematic numerical study of the apparent diffusion of vortices in a random vortex tangle in superfluid helium-4 using full Biot-Savart simulation. We reveal that the vortices in pure superfluid exhibit a universal anomalous diffusion (superdiffusion) at small times, which transits to normal diffusion at large times. This behavior is found to be caused by a generic scaling property of the vortex velocity, which should exist in all quantum fluids where the Biot-Savart law governs the vortex motion. Our simulation at finite temperatures also nicely reproduces recent experimental observations. The knowledge obtained from this study may form the foundation for understanding turbulent transport and universal vortex dynamics in various condensed-matter and cosmic quantum fluids.

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