High Reynolds number decay of turbulent Taylor-Couette flow

ORAL

Abstract

We study the decay of high-Reynolds number turbulence in a Taylor-Couette facility for pure inner cylinder rotation. The rotation of the inner cylinder ($\mathrm{Re}_i=2 \times 10^6$) is suddenly decelerated as fast as possible, thus removing the energy input within seconds. Local velocity measurements show that the decay in this wall-bounded inhomogeneous flow is faster than observed for homogeneous isotropic turbulent flows, due to the strong viscous drag applied by the inner and outer cylinder surfaces. We found that the decay over time can be described with the differential equation $\dot{\mathrm{Re}}(t)=c_f(\mathrm{Re})\mathrm{Re}^2$, where the effects of the walls are included through the friction coefficient. A self-similar behavior of the azimuthal velocity is found: its normalized velocity profile as a function of the radius collapses over time during the decay process.

Authors

  • Ruben A. Verschoof

    Physics of Fluids - University of Twente

  • Sander G. Huisman

    Physics of Fluids - University of Twente

  • Roeland van der Veen

    Physics of Fluids - University of Twente, University of Twente

  • Chao Sun

    Physics of Fluids - University of Twente, Univ of Twente, University of Twente, University of Twente - Netherlands; Tsinghua University - China

  • Detlef Lohse

    Physics of Fluids - University of Twente, Univ of Twente, Physics of Fluids, University of Twente, P.O. Box 217, 7500 AE, Enschede, The Netherlands, Department of Physics, Mesa+ Institute, and J. M. Burgers Centre for Fluid Dynamics, University of Twente, 7500 AE Enschede, The Netherlands, Physics of Fluids Group, Faculty of Science and Technology, University of Twente, The Netherlands, University of Twente - Netherlands, University of Twente