Flow-induced vibration of a flexible cantilever in tandem configuration
Shayan Heydari, Rajeev K Jaiman

TL;DR
This study explores the fluid-structure interaction of a flexible cantilever in tandem with a cylinder, revealing how tandem configuration influences oscillation behavior, vortex dynamics, and energy transfer across different flow regimes.
Contribution
It introduces a fully coupled 3D numerical model to analyze the dynamics of a flexible cantilever in tandem, highlighting the effects of upstream wake modification on oscillations and vortex shedding.
Findings
Tandem configuration affects wake structure and vortex formation.
Sustained oscillations depend on Reynolds number and reduced velocity.
Lock-in behavior occurs within specific velocity ranges.
Abstract
The present work investigates the fluid-structure interaction (FSI) of a flexible cylindrical cantilever in a tandem configuration. A fully coupled fluid-structure solver based on the three-dimensional incompressible Navier-Stokes equations and Euler-Bernoulli beam equation is employed to numerically examine the coupled dynamics of the cantilever. We assess the extent to which such a flexible structure could sustain oscillations in both subcritical and post-critical regimes of Reynolds number (). Spatio-temporal power transfer patterns, response amplitudes, and vorticity dynamics are quantified and compared between isolated and tandem configurations. Results of our analysis indicate that the cantilever in tandem configuration is prone to sustained oscillations dependent on and the reduced velocity parameter (). In the subcritical regime, the cantilever exhibits…
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Taxonomy
TopicsBiomimetic flight and propulsion mechanisms · Fluid Dynamics and Turbulent Flows · Lattice Boltzmann Simulation Studies
