Numerical simulation of universal morphogenesis of fluid interface deformations driven by radiation pressure

We report on numerical simulation of fluid interface deformations induced by either acoustic or optical radiation pressure. This is done by solving simultaneously the scalar wave propagation equation and the two-phase flow equations using the boundary element method. Using dimensional analysis, we s...

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Bibliographic Details
Published inPhysical review. E Vol. 106; no. 6-2; p. 065104
Main Authors Chesneau, Hugo, Chraïbi, Hamza, Bertin, Nicolas, Petit, Julien, Delville, Jean-Pierre, Brasselet, Etienne, Wunenburger, Régis
Format Journal Article
LanguageEnglish
Published United States 01.12.2022
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Summary:We report on numerical simulation of fluid interface deformations induced by either acoustic or optical radiation pressure. This is done by solving simultaneously the scalar wave propagation equation and the two-phase flow equations using the boundary element method. Using dimensional analysis, we show that interface deformation morphogenesis is universal, i.e., depends on the same dimensionless parameters in acoustics and electromagnetics. We numerically investigate a few selected phenomena-in particular the shape of large deformations and the slenderness transition and its hysteresis-and compare with existing and novel experimental observations. Qualitative agreement between the numerical simulations and experiments is found when the mutual interaction between wave propagation and wave-induced deformations is taken into account. Our results demonstrate the leading role of the radiation pressure in morphogenesis of fluid interface deformations and the importance of the propagation-deformation interplay.
ISSN:2470-0053
DOI:10.1103/PhysRevE.106.065104