Hydrodynamic pursuit by cognitive self-steering microswimmers

Fuente: arXiv
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Main Authors: Goh, Segun, Winkler, Roland G., Gompper, Gerhard
Format: Preprint
Published: 2023
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author Goh, Segun
Winkler, Roland G.
Gompper, Gerhard
author_facet Goh, Segun
Winkler, Roland G.
Gompper, Gerhard
contents The properties of biological microswimmers are to a large extent determined by fluid-mediated interactions, which govern their propulsion, perception of their surrounding, and the steering of their motion for feeding or in pursuit. Transferring similar functionalities to synthetic microswimmers poses major challenges, and the design of favorable steering and pursuit strategies is fundamental in such an endeavor. Here, we apply a squirmer model to investigate the pursuit of pursuer-target pairs with an implicit sensing mechanism and limited hydrodynamic steering abilities of the pursuer. Two hydrodynamic steering strategies are applied for the pursuer's propulsion direction by adaptation of its surface flow field, (i) reorientation toward the target with limited maneuverability, and (ii) alignment with the target's propulsion direction combined with speed adaptation. Depending on the nature of the microswimmer propulsion (puller, pusher) and the velocity-adaptation scheme, stable cooperatively moving states can be achieved, characterized by specific squirmer arrangements and controllable trajectories. Importantly, pursuer and target mutually affect their motion and trajectories.
format Preprint
id arxiv_https___arxiv_org_abs_2306_13359
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Hydrodynamic pursuit by cognitive self-steering microswimmers
Goh, Segun
Winkler, Roland G.
Gompper, Gerhard
Soft Condensed Matter
Biological Physics
The properties of biological microswimmers are to a large extent determined by fluid-mediated interactions, which govern their propulsion, perception of their surrounding, and the steering of their motion for feeding or in pursuit. Transferring similar functionalities to synthetic microswimmers poses major challenges, and the design of favorable steering and pursuit strategies is fundamental in such an endeavor. Here, we apply a squirmer model to investigate the pursuit of pursuer-target pairs with an implicit sensing mechanism and limited hydrodynamic steering abilities of the pursuer. Two hydrodynamic steering strategies are applied for the pursuer's propulsion direction by adaptation of its surface flow field, (i) reorientation toward the target with limited maneuverability, and (ii) alignment with the target's propulsion direction combined with speed adaptation. Depending on the nature of the microswimmer propulsion (puller, pusher) and the velocity-adaptation scheme, stable cooperatively moving states can be achieved, characterized by specific squirmer arrangements and controllable trajectories. Importantly, pursuer and target mutually affect their motion and trajectories.
title Hydrodynamic pursuit by cognitive self-steering microswimmers
topic Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2306.13359