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From fluttering to drifting: Inertialess sedimentation of an achiral particle

Christian Vaquero-Stainer1,2, Tymoteusz Miara2, Anne Juel2, Matthias Heil3, and Draga Pihler-Puzović2

Phys. Rev. Fluids 11, 034102 – Published 10 March, 2026

DOI: https://doi.org/10.1103/scj8-6lpf

Abstract

There has been much recent interest in the chiral motion of achiral particles that sediment in a viscous fluid in a regime where inertial effects can be neglected. This occurs in a broad range of applications such as those involving biological objects like algae, ultrathin graphene flakes, or colloidal suspensions. It is known that particles with two planes of symmetry can be categorized as “settlers,” “drifters,” or “flutterers,” where the latter sediment along chiral trajectories despite their achiral shapes. Previous work investigated the sedimentation of circular disks bent into a U-shape and identified them as “flutterers.” In this work we analyze the change in behavior of such particles when we break one of their symmetries by pinching the disks isometrically along their axis, a shape change that can arise during the sedimentation of thin elastic sheets. The “fluttering” behavior is found to be robust to such shape changes, with the trajectories now evolving toward helical paths. However, the behavior changes when the degree of pinching becomes too strong, at which point the particles become “drifters” which sediment steadily without rotation. We establish criteria for the transition between the two types of behavior and confirm our predictions in experiments. Finally, we discuss the implications of our observations for the dispersion of dilute suspensions made of such particles.

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