Direct Numerical Simulation of Turbulent Flow Around a Rotating Circular Cylinder

Author:

Hwang Jong-Yeon1,Yang Kyung-Soo1,Bremhorst Klaus2

Affiliation:

1. Department of Mechanical Engineering, Inha University, Incheon, 402-020, Korea

2. Division of Mechanical Engineering, The University of Queensland, Brisbane Qld 4072, Australia

Abstract

Abstract Turbulent flow around a rotating circular cylinder has numerous applications including wall shear stress and mass-transfer measurement related to the corrosion studies. It is also of interest in the context of flow over convex surfaces where standard turbulence models perform poorly. The main purpose of this paper is to elucidate the basic turbulence mechanism around a rotating cylinder at low Reynolds numbers to provide a better understanding of flow fundamentals. Direct numerical simulation (DNS) has been performed in a reference frame rotating at constant angular velocity with the cylinder. The governing equations are discretized by using a finite-volume method. As for fully developed channel, pipe, and boundary layer flows, a laminar sublayer, buffer layer, and logarithmic outer region were observed. The level of mean velocity is lower in the buffer and outer regions but the logarithmic region still has a slope equal to the inverse of the von Karman constant. Instantaneous flow visualization revealed that the turbulence length scale typically decreases as the Reynolds number increases. Wavelet analysis provided some insight into the dependence of structural characteristics on wave number. The budget of the turbulent kinetic energy was computed and found to be similar to that in plane channel flow as well as in pipe and zero pressure gradient boundary layer flows. Coriolis effects show as an equivalent production for the azimuthal and radial velocity fluctuations leading to their ratio being lowered relative to similar nonrotating boundary layer flows.

Publisher

ASME International

Subject

Mechanical Engineering

Reference30 articles.

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3. Relationship Between the Structure of Disturbed Flow and Erosion-Corrosion;Nesic;Corrosion (Houston)

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