Universal scaling law for drag-to-thrust wake transition in flapping foils

Journal Article (2019)
Author(s)

N. S. Lagopoulos (University of Southampton)

Gabriel D. Weymouth (University of Southampton)

Bharathram Ganapathisubramani (University of Southampton)

Affiliation
External organisation
DOI related publication
https://doi.org/10.1017/jfm.2019.361
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Publication Year
2019
Language
English
Affiliation
External organisation
Volume number
872
Pages (from-to)
R1

Abstract

Reversed von Kármán streets are responsible for a velocity surplus in the wake of flapping foils, indicating the onset of thrust generation. However, the wake pattern cannot be predicted based solely on the flapping peak-to-peak amplitude and frequency because the transition also depends sensitively on other details of the kinematics. In this work we replace with the cycle-averaged swept trajectory of the foil chordline. Two-dimensional simulations are performed for pure heave, pure pitch and a variety of heave-to-pitch coupling. In a phase space of dimensionless we show that the drag-to-thrust wake transition of all tested modes occurs for a modified Strouhal. Physically, the product expresses the induced velocity of the foil and indicates that propulsive jets occur when this velocity exceeds. The new metric offers a unique insight into the thrust-producing strategies of biological swimmers and flyers alike, as it directly connects the wake development to the chosen kinematics, enabling a self-similar characterisation of flapping foil propulsion.

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