Optimal undulating swimming for a single fish-like body and for a pair of interacting swimmers
arXiv:1604.01065 · doi:10.1017/jfm.2016.845
Abstract
We establish through numerical simulation conditions for optimal undulatory propulsion for a single fish, and for a pair of hydrodynamically interacting fish, accounting for linear and angular recoil. We first employ systematic 2D simulations to identify conditions for minimal propulsive power of a self-propelled fish, and continue with targeted 3D simulations for a danio-like fish. We find that the Strouhal number, phase angle between heave and pitch at the trailing edge, and angle of attack are principal parameters. Angular recoil has significant impact on efficiency, while optimized body bending requires maximum bending amplitude upstream of the trailing edge. For 2D simulations, imposing a deformation based on measured displacement for carangiform swimming provides efficiency of 40%, which increases for an optimized profile to 57%; for a 3D fish, the corresponding increase is from 22% to 35%; all at Reynolds number 5000. Next, we turn to 2D simulation of two hydrodynamically interacting fish. We find that the upstream fish benefits energetically only for small distances. In contrast, the downstream fish can benefit at any position that allows interaction with the upstream wake, provided its body motion is timed appropriately with respect to the oncoming vortices. For an in-line configuration, one body length apart, the optimal efficiency of the downstream fish can increase to 66%; for an offset arrangement it can reach 81%. This proves that in groups of fish, energy savings can be achieved for downstream fish through interaction with oncoming vortices, even when the downstream fish lies directly inside the jet-like flow of an upstream fish.
Cited by in corpus (11)
- Flow Transitions and Mapping for Undulating Swimmers
- Lattices of hydrodynamically interacting flapping swimmers
- Reciprocal swimming at intermediate Reynolds number
- Vortex phase matching of a self-propelled model of fish with autonomous fin motion
- Near-Wake Dynamics of a Vertical-Axis Turbine
- Modeling the effect of hydrodynamic wakes in dynamical models of large-scale fish schools
- Hydrodynamically Beneficial School Configurations in Carangiform Swimmers: Insights from a Flow-Physics Informed Model
- Generalization of waving-plate theory to multiple interacting swimmers
- Efficient collective swimming by harnessing vortices through deep reinforcement learning
- How wavelength affects the hydrodynamic performance of two accelerating mirror-symmetric slender swimmers
- A systematic investigation into the effect of roughness on self-propelled swimming plates