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arXiv · 2606.12570

Hydrodynamic Resistance on Oscillating Planar Interfacial Bodies

Abstract

We study the unsteady dynamics of floating planar bodies undergoing lateral oscillations along an air-water interface. Scaling arguments indicate that at high Womersley number and small oscillation amplitude the flow beneath the body can be approximated by an oscillatory Stokes boundary layer, yielding a leading-order description of the hydrodynamic resistance. Using magnetic actuation, we drive the interfacial bodies harmonically and measure the amplitude response and phase lag in steady state over a range of frequencies, masses, sizes, and shapes. This frequency-response framework enables direct extraction of effective added mass and damping coefficients, which we find to be consistent with oscillatory boundary-layer theory in the limit of small interfacial deformation. The transient behavior during startup is also shown to be accurately predicted by a history integral that captures the development of the oscillatory boundary layer beneath the body. This work also establishes a simple experimental platform for quantifying unsteady hydrodynamic forces at fluid interfaces.

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BibTeXRIS

Ian Ho, Ajay Harishankar Kumar, Daniel M. Harris. 2026-06-10. Hydrodynamic Resistance on Oscillating Planar Interfacial Bodies. https://arxiv.org/abs/2606.12570

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