Large-eddy simulation and modeling of Taylor-Couette flow with an outer stationary cylinder
Wan Cheng, Dale I. Pullin, Ravi Samtaney

TL;DR
This paper develops and validates a wall-resolved LES and empirical model for turbulent Taylor-Couette flow with a stationary outer cylinder, revealing complex scaling laws and asymptotic behaviors at high Taylor numbers.
Contribution
The paper introduces a novel empirical model for turbulent Taylor-Couette flow that captures wall-layer dynamics and scaling laws, validated against experiments, DNS, and LES.
Findings
Nu scales as Ta^{1/2} divided by Lambert function squared.
Wall-layer thicknesses decrease slowly with increasing Ta.
Asymptotic state with constant angular momentum and thin wall layers.
Abstract
We present wall-resolved large-eddy simulations (LES) of the incompressible Navier-Stokes equations together with empirical modeling for {turbulent} Taylor-Couette {(TC)} flow where the inner cylinder is rotating with angular velocity and the outer cylinder is stationary. A simple empirical model of the turbulent, TC flow is developed consisting of near-wall, log-like turbulent wall layers separated by an annulus of constant angular momentum. The model is closed by a proposed scaling relation concerning the thickness of the wall layer on the inner cylinder. Model results include the Nusselt number (torque required to maintain the flow) and various measures of the wall-layer thickness as a function of both the Taylor {number} and . These agree reasonably with experimental measurements, direct numerical simulation (DNS) and the present LES over a range of both…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Geomagnetism and Paleomagnetism Studies · Solar and Space Plasma Dynamics
