On the fluid-structure interaction of a flexible cantilever cylinder at low Reynolds numbers
S. Heydari, N. A. Patankar, M. J. Z. Hartmann, R. K. Jaiman

TL;DR
This study numerically investigates the fluid-structure interaction of a flexible cantilever cylinder at low Reynolds numbers, revealing conditions for sustained vibrations and wake stability, with implications for flow sensors.
Contribution
It introduces a fully-coupled 3D simulation approach to analyze low-Reynolds-number VIV in flexible cylinders, highlighting new wake instability phenomena.
Findings
Flexible cylinders can undergo large-amplitude vibrations at low Re.
Lock-in phenomena depend on Re and mass ratio.
Wake stability can be lost at Re as low as 22.
Abstract
We present a numerical study to investigate the fluid-structure interaction of a flexible circular cantilever cylinder in a uniform cross-flow. We employ a fully-coupled fluid-structure solver based on the three-dimensional Navier-Stokes equations and the Euler-Bernoulli beam theory. We examine the dynamics of the cylinder for a wide range of reduced velocities (), mass ratios (), and Reynolds numbers (). Of particular interest is to explore the possibility of flow-induced vibrations in a slender cantilever cylinder of aspect ratio at laminar subcritical regime (i.e., no periodic vortex shedding). We assess the extent to which such a flexible cylindrical beam can sustain flow-induced vibrations and characterize the contribution of the beam's flexibility to the stability of the wake at low . We show that when certain conditions are satisfied, the flexible…
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Taxonomy
TopicsFluid Dynamics and Vibration Analysis · Fluid Dynamics and Turbulent Flows · Wind and Air Flow Studies
