On the structure and dynamics of secondary flows over multi-column roughness in channel flow
A. S. Sathe, W. Anderson, M. Calaf, M. G. Giometto

TL;DR
This study uses large-eddy simulations to explore how the arrangement of multi-column surface roughness influences secondary flow structures and their chaotic, time-dependent behavior in channel flows.
Contribution
It introduces a systematic investigation of multi-column roughness effects on secondary flows, highlighting the role of geometric parameters like spanwise gap in flow polarity and dynamics.
Findings
Spanwise gap controls secondary flow polarity.
Secondary flows exhibit chaotic, non-periodic temporal behavior.
Vertical momentum transport varies intrinsically with secondary flow dynamics.
Abstract
Secondary flows induced by spanwise heterogeneous surface roughness play a crucial role in determining engineering-relevant metrics such as surface drag, convective heat transfer, and the transport of airborne scalars. While much of the existing literature has focused on idealized configurations with regularly spaced roughness elements, real-world surfaces often feature irregularities, clustering, and topographic complexity for which the secondary flow response remains poorly understood. Motivated by this gap, we investigate multi-column roughness configurations that serve as a regularized analog of roughness clustering. Using large-eddy simulations, we systematically examine secondary flows across a controlled set of configurations in which cluster density and local arrangement are varied in an idealized manner, and observe that these variations give rise to distinct secondary flow…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Particle Dynamics in Fluid Flows · Plasma and Flow Control in Aerodynamics
