arXiv Analytics

Sign in

arXiv:1309.2144 [physics.flu-dyn]AbstractReferencesReviewsResources

Optimal shapes of artificial bead-spring micro-carriers at low Reynolds numbers

Jayant Pande, Ana-Sunčana Smith

Published 2013-09-09, updated 2014-02-28Version 2

Bead-based micro-swimmers are promising systems for payload delivery on the micro-scale. However, the principles underlying their optimal design are not yet fully understood. Here we study a simple device consisting of three arbitrarily-shaped beads connected by two springs. We analytically determine the most favorable kinematic parameters for sinusoidal driving, and show how the swimmer changes from being a pusher to a puller. For cargo carrying ellipsoidal beads, we perform geometric optimization under the constraint of a constant total volume or surface area, with the aim of maximizing the device transport velocity and efficiency. Interestingly, we identify two major transport regimes, which arise from the competition between the elastic and the drag forces faced by the swimmer. We construct a phase diagram that indicates when the fastest swimming emerges because of minimized drag, and when due to heightened interactions among the beads.

Related articles: Most relevant | Search more
arXiv:2502.02814 [physics.flu-dyn] (Published 2025-02-05)
Sliding of a liquid spherical droplet in an external insoluble liquid at low Reynolds numbers
arXiv:1902.03556 [physics.flu-dyn] (Published 2019-02-10)
No net motion for oscillating near-spheres at low Reynolds numbers
arXiv:2409.13922 [physics.flu-dyn] (Published 2024-09-20)
Effects of Trailing Edge Thickness on NACA 4412 Airfoil Performance at Low Reynolds Numbers: A CFD Analysis