- Letter
Hydrodynamic scaling of metachronal swimming
Phys. Rev. Fluids 9, L111101 – Published 4 November, 2024
DOI: https://doi.org/10.1103/PhysRevFluids.9.L111101
Abstract
Metachronal swimming consists of the sequential stroking of multiple appendages or cilia, resulting in a wave of appendage motion traveling along the body. Further, metachronal swimming spans the viscous to inertial regimes as it is used across seven orders of magnitude of Reynolds numbers , where , and , and are the characteristic swimming speed, body length, and fluid kinematic viscosity, respectively. Through analysis of morphological and kinematics data collected from the literature on a wide variety of metachronally swimming organisms, we examine how these factors affect swimming performance across . Further, we find a strong relationship among the kinematics parameters, swimming speed, and fluid viscosity. This power law relationship, , where is the Swimming number (: average angular appendage tip speed, : appendage tip excursion), is maintained for all flow regimes, explains why metachronal swimming is a successful locomotion mode at low Reynolds numbers, and may prove useful in designing bio-inspired robots. We also find that the Strouhal number , where is beat frequency, is relatively constant across a wide range of but suggest that better describes the underlying hydrodynamics of metachronal swimming.