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首页> 外文期刊>Physica, A. Statistical mechanics and its applications >Compressible turbulence: Multi-fractal scaling in the transition to the dissipative regime
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Compressible turbulence: Multi-fractal scaling in the transition to the dissipative regime

机译:可压缩湍流:向耗散状态过渡的多重分形标度

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摘要

Multi-fractal scaling in the transition to the dissipative regime for fully-developed compressible turbulence is considered. The multi-fractal power law scaling behavior breaks down for very small length scales thanks to viscous effects. However, the effect of compressibility is found to extend the single-scaling multi-fractal regime further into the dissipative range. In the ultimate compressibility limit, thanks to the shock waves which are the appropriate dissipative structures, the single-scaling regime is found to extend indeed all the way into the full viscous regime. This result appears to be consistent with the physical fact that vortices become more resilient and stretch stronger in a compressible fluid hence postponing viscous intervention. The consequent generation of enhanced velocity gradients in a compressible fluid appears to provide an underlying physical basis for the previous results indicating that fully-developed compressible turbulence is effectively more dissipative than its incompressible counterpart.
机译:考虑了向完全发展的可压缩湍流向耗散状态过渡的多重分形标度。由于粘性效应,对于很小的长度标度,多重分形幂律标度行为会分解。但是,发现可压缩性的影响将单标度的多重分形范围进一步扩展到了耗散范围。在极限可压缩性极限下,由于是适当的耗散结构的冲击波,单缩放比例机制的确一直延伸到整个粘性域。该结果似乎与物理事实一致,即在可压缩流体中涡旋变得更有弹性并且拉伸更强,因此推迟了粘性干预。在可压缩流体中随之产生的增强的速度梯度似乎为先前的结果提供了潜在的物理基础,从而表明充分发展的可压缩湍流比其不可压缩的湍流更有效地耗散了。

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