Ding Shan-Shan, Chong Kai Leong, Shi Jun-Qiang, Ding Guang-Yu, Lu Hao-Yuan, Xia Ke-Qing, Zhong Jin-Qiang
School of Physics Science and Engineering, Tongji University, Shanghai, 200092, China.
Department of Physics, The Chinese University of Hong Kong, Shatin, Hong Kong, China.
Nat Commun. 2021 Sep 22;12(1):5585. doi: 10.1038/s41467-021-25838-3.
When a fluid system is subject to strong rotation, centrifugal fluid motion is expected, i.e., denser (lighter) fluid moves outward (inward) from (toward) the axis of rotation. Here we demonstrate, both experimentally and numerically, the existence of an unexpected outward motion of warm and lighter vortices in rotating thermal convection. This anomalous vortex motion occurs under rapid rotations when the centrifugal buoyancy is sufficiently strong to induce a symmetry-breaking in the vorticity field, i.e., the vorticity of the cold anticyclones overrides that of the warm cyclones. We show that through hydrodynamic interactions the densely distributed vortices can self-aggregate into coherent clusters and exhibit collective motion in this flow regime. Interestingly, the correlation of the vortex velocity fluctuations within a cluster is scale-free, with the correlation length being proportional ( ≈ 30%) to the cluster length. Such long-range correlation leads to the counterintuitive collective outward motion of warm vortices. Our study brings insights into the vortex dynamics that are widely present in nature.
当流体系统受到强烈旋转作用时,预计会出现离心流体运动,即密度较大(较小)的流体从(向)旋转轴向外(内)移动。在此,我们通过实验和数值模拟证明,在旋转热对流中存在温暖且较轻的涡旋意外向外运动的现象。这种异常的涡旋运动发生在快速旋转时,此时离心浮力足够强,足以在涡度场中引发对称性破缺,即冷反气旋的涡度超过暖气旋的涡度。我们表明,通过流体动力学相互作用,密集分布的涡旋能够自聚集形成相干簇,并在这种流动状态下呈现集体运动。有趣的是,簇内涡旋速度涨落的相关性是无标度的,相关长度与簇长度成比例(约为30%)。这种长程相关性导致了暖涡旋违反直觉的集体向外运动。我们的研究为自然界中广泛存在的涡旋动力学提供了见解。