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Shanshan Ding

PDRA

Sub department

  • Atmospheric, Oceanic and Planetary Physics
shanshan.ding@physics.ox.ac.uk
Atmospheric Physics Clarendon Laboratory, room 209E
  • About
  • Publications

Vortices as Brownian particles in turbulent flows.

Science advances 6:34 (2020) eaaz1110

Authors:

Kai Leong Chong, Jun-Qiang Shi, Guang-Yu Ding, Shan-Shan Ding, Hao-Yuan Lu, Jin-Qiang Zhong, Ke-Qing Xia

Abstract:

Brownian motion of particles in fluid is the most common form of collective behavior in physical and biological systems. Here, we demonstrate through both experiment and numerical simulation that the movement of vortices in a rotating turbulent convective flow resembles that of inertial Brownian particles, i.e., they initially move ballistically and then diffusively after certain critical time. Moreover, the transition from ballistic to diffusive behaviors is direct, as predicted by Langevin, without first going through the hydrodynamic memory regime. The transitional timescale and the diffusivity of the vortices can be collapsed excellently onto a master curve for all explored parameters. In the spatial domain, however, the vortices exhibit organized structures, as if they are performing tethered random motion. Our results imply that the convective vortices have inertia-induced memory such that their short-term movement can be predicted and their motion can be well described in the framework of Brownian motions.
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Fine vortex structure and flow transition to the geostrophic regime in rotating Rayleigh-Bénard convection

Physical Review Fluids American Physical Society (APS) 5:1 (2020) 011501

Authors:

Jun-Qiang Shi, Hao-Yuan Lu, Shan-Shan Ding, Jin-Qiang Zhong
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Temperature fluctuations relevant to thermal-plume dynamics in turbulent rotating Rayleigh-Bénard convection

Physical Review Fluids American Physical Society (APS) 4:2 (2019) 023501

Authors:

Shan-Shan Ding, Hui-Min Li, Wen-Dan Yan, Jin-Qiang Zhong
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