Quantum hydrodynamics
Makoto Tsubota, Michikazu Kobayashi, Hiromitsu Takeuchi

TL;DR
This paper reviews recent advances in quantum hydrodynamics, focusing on quantized vortices and turbulence in superfluid helium and atomic BECs, highlighting experimental and theoretical progress in understanding quantum turbulence.
Contribution
The article provides a comprehensive review of recent theoretical, numerical, and experimental developments in quantum hydrodynamics and turbulence in superfluid helium and atomic BECs.
Findings
Advances in understanding quantum turbulence in superfluid helium and BECs.
Development of optical techniques for controlling and visualizing BECs.
Comparison between quantum turbulence and classical turbulence.
Abstract
Quantum hydrodynamics in superfluid helium and atomic Bose-Einstein condensates (BECs) has been recently one of the most important topics in low temperature physics. In these systems, a macroscopic wave function appears because of Bose-Einstein condensation, which creates quantized vortices. Turbulence consisting of quantized vortices is called quantum turbulence (QT). The study of quantized vortices and QT has increased in intensity for two reasons. The first is that recent studies of QT are considerably advanced over older studies, which were chiefly limited to thermal counterflow in 4He, which has no analogue with classical traditional turbulence, whereas new studies on QT are focused on a comparison between QT and classical turbulence. The second reason is the realization of atomic BECs in 1995, for which modern optical techniques enable the direct control and visualization of the…
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