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Updated: Apr 3, 2026

Flapping Soft Fin Deformation Modeling using Planar Laser-Induced Fluorescence Imaging
Published on: April 28, 2022
Weakly nonlinear model with exact coefficients for the fluttering and spiraling motion of buoyancy-driven bodies
Joël Tchoufag1, David Fabre1, Jacques Magnaudet1,2
1Université de Toulouse, Institut de Mécanique des Fluides de Toulouse (IMFT)-Allée Camille Soula, 31400 Toulouse, France.
Abstract:
Gravity- or buoyancy-driven bodies moving in a slightly viscous fluid frequently follow fluttering or helical paths. Current models of such systems are largely empirical and fail to predict several of the key features of their evolution, especially close to the onset of path instability. Here, using a weakly nonlinear expansion of the full set of governing equations, we present a new generic reduced-order model based on a pair of amplitude equations with exact coefficients that drive the evolution of the first pair of unstable modes. We show that the predictions of this model for the style (e.g., fluttering or spiraling) and characteristics (e.g., frequency and maximum inclination angle) of path oscillations compare well with various recent data for both solid disks and air bubbles.
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