The ability of animals to propel themselves efficiently through a fluid medium is ecologically advantageous. Flexible components that influence vortex interactions are widespread among animal propulsors. However the mechanisms by which vortices are enhanced and appropriately positioned for thrust generation are still poorly understood. Here, we describe how kinematic propulsor movements of a jellyfish can enhance and reposition a vortex ring that allows the recapture of wake energy for secondary thrust generation and efficient locomotion. We use high-speed video and digital particle image velocimetry (DPIV) to resolve kinematics simultaneously with fluid structures. These results provide new insight into how animals can manipulate fluid str...
It is generally accepted that animal–fluid interactions have shaped the evolution of animals that sw...
Gelatinous zooplankton populations are well known for their ability to take over perturbed ecosystem...
Gelatinous zooplankton exhibit a wide range of propulsive swimming modes. One of the most energetica...
The ability of animals to propel themselves efficiently through a fluid medium is ecologically advan...
It has been well documented that animals (and machines) swimming or flying near a solid boundary get...
Manoeuvrability is critical to the success of many species. Selective forces acting over millions of...
Jellyfish have provided insight into important components of animal propulsion, such as suction thru...
Flow patterns generated by medusan swimmers such as jellyfish are known to differ according the morp...
We present a combination of both qualitative flow visualizations of jellyfish in their natural marin...
Fast-swimming hydromedusan jellyfish possess a characteristic funnel-shaped velum at the exit of the...
We present simulations of the vortex dynamics associated with the self-propelled motion of jellyfish...
© The Author(s), 2019. This article is distributed under the terms of the Creative Commons Attributi...
Jellyfish are a successful and diverse class of animals that swim via jet propulsion, with swimming ...
It is generally accepted that animal–fluid interactions have shaped the evolution of animals that sw...
Gelatinous zooplankton populations are well known for their ability to take over perturbed ecosystem...
Gelatinous zooplankton exhibit a wide range of propulsive swimming modes. One of the most energetica...
The ability of animals to propel themselves efficiently through a fluid medium is ecologically advan...
It has been well documented that animals (and machines) swimming or flying near a solid boundary get...
Manoeuvrability is critical to the success of many species. Selective forces acting over millions of...
Jellyfish have provided insight into important components of animal propulsion, such as suction thru...
Flow patterns generated by medusan swimmers such as jellyfish are known to differ according the morp...
We present a combination of both qualitative flow visualizations of jellyfish in their natural marin...
Fast-swimming hydromedusan jellyfish possess a characteristic funnel-shaped velum at the exit of the...
We present simulations of the vortex dynamics associated with the self-propelled motion of jellyfish...
© The Author(s), 2019. This article is distributed under the terms of the Creative Commons Attributi...
Jellyfish are a successful and diverse class of animals that swim via jet propulsion, with swimming ...
It is generally accepted that animal–fluid interactions have shaped the evolution of animals that sw...
Gelatinous zooplankton populations are well known for their ability to take over perturbed ecosystem...
Gelatinous zooplankton exhibit a wide range of propulsive swimming modes. One of the most energetica...