Hydrodynamics of C-Start Escape Responses of Fish as Studied with Simple Physical Models.

Integr Comp Biol

*Mechanical and Aerospace Engineering, Princeton University, Princeton, NJ 08544, USA; School of Mechanical Engineering and Automation, Beihang University, Beijing, China 100191; Museum of Comparative Zoology, Harvard University, Cambridge, MA 02138, USA

Published: October 2015

AI Article Synopsis

  • The c-start escape response is a crucial behavior in fishes, characterized by specific kinematic stages and unique hydrodynamic patterns; however, research on the hydrodynamics during these escape responses has been limited.
  • Bluegill sunfish generate three distinct vortex rings during their escape, a phenomenon that has now been observed in stickleback and mosquitofish as well.
  • Experiments using flexible plastic panels of varying stiffness demonstrated that the medium-stiffness panel produced kinematics and hydrodynamic patterns akin to those observed in live fish, showcasing the potential of simple models to mimic fish locomotion.

Article Abstract

One of the most-studied unsteady locomotor behaviors exhibited by fishes is the c-start escape response. Although the kinematics of these responses have been studied extensively and two well-defined kinematic stages have been documented, only a few studies have focused on hydrodynamic patterns generated by fishes executing escape behaviors. Previous work has shown that escape responses by bluegill sunfish generate three distinct vortex rings, each with central orthogonal jet flows, and here we extend this conclusion to two other species: stickleback and mosquitofish. Jet #1 is formed by the tail during Stage 1, and moves in the same direction as Stage-2 movement of the fish, thereby reducing final escape-velocity but also rotating the fish. Jet #2, in contrast, moves approximately opposite to the final direction of the fish's motion and contains the bulk of the total fluid-momentum powering the escape response. Jet #3 forms during Stage 2 in the mid-body region and moves in a direction approximately perpendicular to jets 1 and 2, across the direction of movement of the body. In this study, we used a mechanical controller to impulsively move passively flexible plastic panels of three different stiffnesses in heave, pitch, and heave + pitch motions to study the effects of stiffness on unsteady hydrodynamics of escape. We were able to produce kinematics very similar to those of fish c-starts and also to reproduce the 3-jet hydrodynamic pattern of the c-start using a panel of medium flexural stiffness and the combined heave + pitch motion. This medium-stiffness panel matched the measured stiffness of the near-tail region of fish bodies. This motion also produced positive power when the panel straightened during stage 2 of the escape response. More flexible and stiffer panels resulted in non-biological kinematics and patterns of flow for all motions. The use of simple flexible models with a mechanical controller and program of fish-like motion is a promising approach for studying unsteady behaviors of fish which can be difficult to manipulate experimentally in live animals.

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Source
http://dx.doi.org/10.1093/icb/icv016DOI Listing

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