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Experimental characterization of extreme events of inertial dissipation in a turbulent swirling flow

机译:湍流回旋中惯性耗散极限事件的实验表征

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摘要

The three-dimensional incompressible Navier–Stokes equations, which describe the motion of many fluids, are the cornerstones of many physical and engineering sciences. However, it is still unclear whether they are mathematically well posed, that is, whether their solutions remain regular over time or develop singularities. Even though it was shown that singularities, if exist, could only be rare events, they may induce additional energy dissipation by inertial means. Here, using measurements at the dissipative scale of an axisymmetric turbulent flow, we report estimates of such inertial energy dissipation and identify local events of extreme values. We characterize the topology of these extreme events and identify several main types. Most of them appear as fronts separating regions of distinct velocities, whereas events corresponding to focusing spirals, jets and cusps are also found. Our results highlight the non-triviality of turbulent flows at sub-Kolmogorov scales as possible footprints of singularities of the Navier–Stokes equation.
机译:三维不可压缩的Navier-Stokes方程,描述了许多流体的运动,是许多物理和工程科学的基石。但是,仍不清楚它们在数学上是否正确,也就是说,它们的解是否随时间推移保持规则或具有奇异性。即使已证明奇点(如果存在)仅是罕见事件,但它们可能会通过惯性方式引起额外的能量耗散。在这里,使用轴对称湍流的耗散尺度下的测量值,我们报告了这种惯性能量耗散的估计值,并确定了极值的局部事件。我们描述了这些极端事件的拓扑结构,并确定了几种主要类型。它们中的大多数表现为将不同速度区域分开的前沿,而也发现了与聚焦螺旋,喷流和尖端有关的事件。我们的研究结果强调了在纳尔莫哥罗夫尺度下湍流的非平凡性是Navier–Stokes方程奇点的可能足迹。

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