DocumentCode
824028
Title
Trends in biorobotic autonomous undersea vehicles
Author
Bandyopadhyay, Promode R.
Author_Institution
Office of Naval Res., Arlington, VA, USA
Volume
30
Issue
1
fYear
2005
Firstpage
109
Lastpage
139
Abstract
The emergence of biorobotic autonomous undersea vehicle (AUV) as a focus for discipline-integrated research in the context of underwater propulsion and maneuvering is considered within the confines of the Biorobotics Program in the Office of Naval Research. The significant advances in three disciplines, namely the biology-inspired high-lift unsteady hydrodynamics, artificial muscle technology and neuroscience-based control, are discussed in an effort to integrate them into viable products. The understanding of the mechanisms of delayed stall, molecular design of artificial muscles and the neural approaches to the actuation of control surfaces is reviewed in the context of devices based on the pectoral fins of fish, while remaining focused on their integrated implementation in biorobotic AUVs. A mechanistic understanding of the balance between cruising and maneuvering in swimming animals and undersea vehicles is given. All aquatic platforms, in both nature and engineering, except during short duration burst speeds that are observed in a few species, appear to lie within the condition where their natural period of oscillation equals the time taken by them to travel the distance of their own lengths. Progress in the development of small underwater experimental biorobotic vehicles is considered where the three aforementioned disciplines are integrated into one novel maneuvering device or propulsor. The potential in maneuvering and silencing is discussed.
Keywords
mobile robots; oceanographic equipment; propulsion; remotely operated vehicles; underwater vehicles; artificial muscle technology; biorobotic autonomous undersea vehicles; control surfaces; fish biology; high-lift unsteady hydrodynamics; internal Froude number; molecular design; neuroscience-based control; pectoral fins; swimming animals; underwater maneuvering; underwater propulsion; Automotive engineering; Biological control systems; Delay; Hydrodynamics; Marine animals; Mobile robots; Muscles; Propulsion; Remotely operated vehicles; Underwater vehicles; Artificial muscles; autonomous undersea vehicles (AUVs); biorobotics; fish biology; high-lift; hydrodynamics; internal Froude number; maneuvering; neuroscience-based control; pectoral fins; polymers;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/JOE.2005.843748
Filename
1435581
Link To Document