Passive hydrodynamic synchronization of two-dimensional swimming cells
arXiv:1009.2102 · doi:10.1063/1.3532954
Abstract
Spermatozoa flagella are known to synchronize when swimming in close proximity. We use a model consisting of two-dimensional sheets propagating transverse waves of displacement to demonstrate that fluid forces lead to such synchronization passively. Using two distinct asymptotic descriptions (small amplitude and long wavelength), we derive the synchronizing dynamics analytically for ar- bitrarily shaped waveforms in Newtonian fluids, and show that phase locking will always occur for sufficiently asymmetric shapes. We characterize the effect of the geometry of the waveforms and the separation between the swimmers on the synchronizing dynamics, the final stable conformations, and the energy dissipated by the cells. For two closely-swimming cells, synchronization always oc- curs at the in-phase or opposite-phase conformation, depending solely on the geometry of the cells. In contrast, the work done by the swimmers is always minimized at the in-phase conformation. As the swimmers get further apart, additional fixed points arise at intermediate values of the relative phase. In addition, computations for large-amplitude waves using the boundary integral method reveal that the two asymptotic limits capture all the relevant physics of the problem. Our results provide a theoretical framework to address other hydrodynamic interactions phenomena relevant to populations of self-propelled organisms.
29 pages, 12 figures
References in corpus (4)
Cited by in corpus (9)
- Physics of Microswimmers - Single Particle Motion and Collective Behavior
- Synchronization of flexible sheets
- A note on the reciprocal theorem for the swimming of simple bodies
- The pairwise hydrodynamic interactions of synchronized spermatozoa
- Energetics of synchronisation for model flagella and cilia
- Interaction Between Two Closely-Spaced Waving Slender Elastic Cylinders Immersed in a Viscous Fluid
- Competing effects of inertia, sheet elasticity, and fluid viscoelasticity on the synchronization of two actuated sheets
- Elastohydrodynamic synchronization of rotating bacterial flagella
- Pairwise and collective behavior between model swimmers at intermediate Reynolds numbers