Predicting wave glider speed from environmental measurements


Autoria(s): Smith, Ryan N.; Das, Jnaneshwar; Hine, Graham; Anderson, Will; Sukhatme, Gaurav S.
Data(s)

01/06/2011

Resumo

In the ocean science community, researchers have begun employing novel sensor platforms as integral pieces in oceanographic data collection, which have significantly advanced the study and prediction of complex and dynamic ocean phenomena. These innovative tools are able to provide scientists with data at unprecedented spatiotemporal resolutions. This paper focuses on the newly developed Wave Glider platform from Liquid Robotics. This vehicle produces forward motion by harvesting abundant natural energy from ocean waves, and provides a persistent ocean presence for detailed ocean observation. This study is targeted at determining a kinematic model for offline planning that provides an accurate estimation of the vehicle speed for a desired heading and set of environmental parameters. Given the significant wave height, ocean surface and subsurface currents, wind speed and direction, we present the formulation of a system identification to provide the vehicle’s speed over a range of possible directions.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/44102/

Publicador

IEEE

Relação

http://eprints.qut.edu.au/44102/1/PID1974803.pdf

http://www.oceans11mtsieeekona.org/

Smith, Ryan N. , Das, Jnaneshwar, Hine, Graham, Anderson, Will, & Sukhatme, Gaurav S. (2011) Predicting wave glider speed from environmental measurements. In Proceedings of MTS/IEEE Oceans 2011, IEEE, Hilton Waikoloa Village, Kona, Hawai‘i. (In Press)

Direitos

Copyright 2011 [please consult the authors]

Fonte

Faculty of Built Environment and Engineering; School of Engineering Systems

Palavras-Chave #080101 Adaptive Agents and Intelligent Robotics #080109 Pattern Recognition and Data Mining #091104 Ship and Platform Hydrodynamics #091106 Special Vehicles #170203 Knowledge Representation and Machine Learning #oceanographic data collection #spatiotemporal #Wave Glider platform #Liquid Robotics
Tipo

Conference Paper