Inertia-driven propulsion of asymmetric spinner-dimers at moderate Reynolds numbers

Fuente: arXiv
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Main Authors: Shen, Zaiyi, Fu, Dongfang, Lintuvuori, Juho
Format: Preprint
Published: 2025
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author Shen, Zaiyi
Fu, Dongfang
Lintuvuori, Juho
author_facet Shen, Zaiyi
Fu, Dongfang
Lintuvuori, Juho
contents We investigate the translational motion of rotating colloidal systems at moderate Reynolds numbers (Re), focusing on particle dimers in snowman-like configurations under three scenarios: (i) two co-rotating spheres driven by an external field, (ii) two counter-rotating spheres driven by an internal torque as a swimmer, and (iii) a single rotating spinner with a passive sphere for cargo delivery, using hydrodynamic simulations. In all the three cases, the particles are bound together hydrodynamically, and the purely rotational motion of the spinners produces a net propulsion of the dimers along the axis of rotation due to a symmetry breaking. We demonstrate tunable dynamics, where the propulsion direction of the co-rotating dimer can be reversed by tuning the aspect ratio and Reynolds number, as well as cargo transport where a dimer consisting of a single spinner and a passive cargo particle can have a sustained locomotion due to broken head-to-tail symmetry of the overall flow fields. These findings highlight the critical role of inertia in creating locomotion from rotational motion and offer new avenues for controlling and optimizing translational motion in colloidal assemblies through rotational degrees of freedom.
format Preprint
id arxiv_https___arxiv_org_abs_2506_02851
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Inertia-driven propulsion of asymmetric spinner-dimers at moderate Reynolds numbers
Shen, Zaiyi
Fu, Dongfang
Lintuvuori, Juho
Soft Condensed Matter
Fluid Dynamics
We investigate the translational motion of rotating colloidal systems at moderate Reynolds numbers (Re), focusing on particle dimers in snowman-like configurations under three scenarios: (i) two co-rotating spheres driven by an external field, (ii) two counter-rotating spheres driven by an internal torque as a swimmer, and (iii) a single rotating spinner with a passive sphere for cargo delivery, using hydrodynamic simulations. In all the three cases, the particles are bound together hydrodynamically, and the purely rotational motion of the spinners produces a net propulsion of the dimers along the axis of rotation due to a symmetry breaking. We demonstrate tunable dynamics, where the propulsion direction of the co-rotating dimer can be reversed by tuning the aspect ratio and Reynolds number, as well as cargo transport where a dimer consisting of a single spinner and a passive cargo particle can have a sustained locomotion due to broken head-to-tail symmetry of the overall flow fields. These findings highlight the critical role of inertia in creating locomotion from rotational motion and offer new avenues for controlling and optimizing translational motion in colloidal assemblies through rotational degrees of freedom.
title Inertia-driven propulsion of asymmetric spinner-dimers at moderate Reynolds numbers
topic Soft Condensed Matter
Fluid Dynamics
url https://arxiv.org/abs/2506.02851