AbstractThis paper describes a computational study of the hydrodynamics of a ray-inspired underwater vehicle conducted concurrently with experimental measurements. High-resolution stereo-videos of the vehicle’s fin motions during steady swimming are obtained and used as a foundation for developing a high fidelity geometrical model of the oscillatory fin. A Cartesian grid based immersed boundary solver is used to examine the flow fields produced due to these complex artificial pectoral fin kinematics. Simulations are carried out at a smaller Reynolds number in order to examine the hydrodynamic performance and understand the resultant wake topology. Results show that the vehicle’s fins experience large spanwise inflexion of the distal part as...
Among all aquatic species, mantas and rays swim by flapping their pectoral fins; this motion is simi...
As a result of years of research on the comparative biomechanics and physiology of moving through wa...
The following paper presents the integration between the computational fluid dynamics (CFD) analysis...
AbstractThis paper describes a computational study of the hydrodynamics of a ray-inspired underwater...
In this paper, the propulsion performance of a bio-inspired underwater robot with a pair of ray-supp...
Experiments are reported on the hydrodynamic performance of a flexible fin. The fin replicates some ...
Numerical simulations are carried out to study the fluid dynamics of a complex-shaped low-aspect-rat...
Abstract—Fish are remarkable in their ability to maneuver and to control their body position. This a...
Among all aquatic species, mantas and rays swim by oscillating their pectoral fins; this motion is s...
The study of fish swimming is of great interest for engineers and researchers because the investigat...
This paper investigates the hydrodynamic characteristics of the rectilinear motion of a robotic fish...
Through computational fluid dynamics (CFD) simulations of a model manta ray body, the hydrodynamic r...
Mylobatoid rays have dorsoventrally flattened diamond-shaped bodies with expanded pectoral fins, and...
Copyright © 2020 ASME Ray-finned fish swim by flapping their fins, which are composed of bony rays c...
Among all aquatic species, mantas and rays swim by flapping their pectoral fins; this motion is simi...
As a result of years of research on the comparative biomechanics and physiology of moving through wa...
The following paper presents the integration between the computational fluid dynamics (CFD) analysis...
AbstractThis paper describes a computational study of the hydrodynamics of a ray-inspired underwater...
In this paper, the propulsion performance of a bio-inspired underwater robot with a pair of ray-supp...
Experiments are reported on the hydrodynamic performance of a flexible fin. The fin replicates some ...
Numerical simulations are carried out to study the fluid dynamics of a complex-shaped low-aspect-rat...
Abstract—Fish are remarkable in their ability to maneuver and to control their body position. This a...
Among all aquatic species, mantas and rays swim by oscillating their pectoral fins; this motion is s...
The study of fish swimming is of great interest for engineers and researchers because the investigat...
This paper investigates the hydrodynamic characteristics of the rectilinear motion of a robotic fish...
Through computational fluid dynamics (CFD) simulations of a model manta ray body, the hydrodynamic r...
Mylobatoid rays have dorsoventrally flattened diamond-shaped bodies with expanded pectoral fins, and...
Copyright © 2020 ASME Ray-finned fish swim by flapping their fins, which are composed of bony rays c...
Among all aquatic species, mantas and rays swim by flapping their pectoral fins; this motion is simi...
As a result of years of research on the comparative biomechanics and physiology of moving through wa...
The following paper presents the integration between the computational fluid dynamics (CFD) analysis...