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A note on the propagation of quantized vortex rings through a quantum turbulence tangle:energy transport or energy dissipation?

机译:关于量子涡流通过量子湍流缠结的传播的注释:能量传输还是能量耗散?

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摘要

We investigate quantum vortex ring dynamics at scales smaller than the inter-vortex spacing in quantum turbulence. Through geometrical arguments and high-resolution numerical simulations, we examine the validity of simple estimates for the mean free path and the structure of vortex rings post-reconnection. We find that a large proportion of vortex rings remain coherent objects where approximately 75% of their energy is preserved. This leads us to consider the effectiveness of energy transport in turbulent tangles. Moreover, we show that in low density tangles, appropriate for the ultra-quantum regime, ring emission cannot be ruled out as an important mechanism for energy dissipation. However at higher vortex line densities, typically associated with the quasi-classical regime, loop emission is expected to make a negligible contribution to energy dissipation, even allowing for the fact that our work shows rings can survive multiple reconnection events. Hence the Kelvin wave cascade seems the most plausible mechanism leading to energy dissipation
机译:我们研究量子涡环动力学的尺度小于量子湍流中的涡旋间距。通过几何论证和高分辨率数值模拟,我们检验了平均自由程和重环后涡环结构的简单估计的有效性。我们发现,大部分涡流环仍是相干的物体,其中约有75%的能量得以保留。这使我们考虑了湍流缠结中能量传输的有效性。此外,我们表明,在适合超量子态的低密度缠结中,不能排除环发射作为能量耗散的重要机制。但是,在较高的涡流线密度(通常与准经典状态相关)下,即使考虑到我们的工作表明环可以承受多次重连事件,环的发射对能量耗散的贡献可忽略不计。因此,开尔文波级联似乎是导致能量耗散的最合理的机制

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