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在极低温度下壁限制量子湍流中的能量和角动量平衡。

Energy and angular momentum balance in wall-bounded quantum turbulence at very low temperatures.

机构信息

OV Lounasmaa Laboratory, Aalto University, Espoo FI-00076 AALTO, Finland.

出版信息

Nat Commun. 2013;4:1614. doi: 10.1038/ncomms2618.

Abstract

A superfluid in the absence of a viscous normal component should be the best realization of an ideal inviscid Euler fluid. As expressed by d'Alembert's famous paradox, an ideal fluid does not drag on bodies past which it flows, or in other words it does not exchange momentum with them. In addition, the flow of an ideal fluid does not dissipate kinetic energy. Here we study experimentally whether these properties apply to the flow of superfluid (3)He-B in a rotating cylinder at low temperatures. It is found that ideal behaviour is broken by quantum turbulence, which leads to substantial energy dissipation, as was also observed earlier. Remarkably, the angular momentum exchange between the superfluid and its container approaches nearly ideal behaviour, as the drag almost disappears in the zero-temperature limit. Here the mismatch between energy and angular momentum transfer results in a new physical situation, with severe implications on the flow dynamics.

摘要

在没有粘性正常分量的情况下,超流应该是理想无粘性欧拉流体的最佳体现。正如达朗贝尔著名悖论所表达的那样,理想流体不会拖曳流过它的物体,或者换句话说,它不会与它们交换动量。此外,理想流体的流动不会耗散动能。在这里,我们实验研究了这些性质是否适用于低温下旋转圆柱中超流(3)He-B 的流动。结果发现,量子湍流破坏了理想行为,导致了大量的能量耗散,这也在早些时候被观察到。值得注意的是,超流与其容器之间的角动量交换趋近于理想行为,因为在零温极限下,阻力几乎消失。在这里,能量和角动量传递之间的不匹配导致了一种新的物理情况,对流动动力学有严重的影响。

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