Harnessing Electrical Power from Vortex-Induced Vibration of a Circular Cylinder
Atul Kumar Soti, Mark C. Thompson, John Sheridan, Rajneesh Bhardwaj

TL;DR
This study numerically investigates electrical power generation from vortex-induced vibrations of a cylinder with an integrated electromagnetic generator, analyzing optimal damping and coil parameters at laminar flow conditions.
Contribution
It introduces a novel electromagnetic energy harvesting system based on VIV and quantifies how coil and damping parameters influence power output.
Findings
Maximum power occurs at an optimal damping constant xi_opt.
Larger coil dimensions increase xi_opt and system robustness.
Power output increases with Reynolds number within laminar flow.
Abstract
The generation of electrical power from Vortex-Induced Vibration (VIV) of a cylinder is investigated numerically. The cylinder is free to oscillate in the direction transverse to the incoming flow. The cylinder is attached to a magnet that can move along the axis of a coil made from conducting wire. The magnet and the coil together constitute a basic electrical generator. When the cylinder undergoes VIV, the motion of the magnet creates a voltage across the coil, which is connected to a resistive load. By Lenz's law, induced current in the coil applies a retarding force to the magnet. Effectively, the electrical generator applies a damping force on the cylinder with a spatially varying damping coefficient. For the initial investigation reported here, the Reynolds number is restricted to Re < 200, so that the flow is laminar and two-dimensional (2D). The incompressible 2D Navier-Stokes…
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