Jorge Cortés
Professor
Cymer Corporation Endowed Chair
Robust coordinated rendezvous of depth-actuated drifters in ocean internal waves
M. Ouimet, J. Cortés
Automatica 69 (2016), 265-274
Abstract
This paper considers a team of spatially distributed
drifters that move underwater under the influence of
an ocean internal wave. The overall objective is
for the drifters to use the known depth-dependent
ocean flowfield to coordinately rendezvous
underwater and then return to the surface as a
cluster for easy retrieval. From the structure of
the internal wave, the ocean flowfield is
time-varying and spatially dependent on depth and
position along the wave propagation direction. The
drifters can control their depth by changing their
buoyancy and are otherwise subject to the horizontal
flowfield at their given depth. We consider two
different drifter dynamical models: a first-order
Lagrangian model, useful when the drifter's mass is
sufficiently small, and a second-order linear model,
where the drag force caused by the water accelerates
the drifter. We design provably correct distributed
algorithms that rely on the drifters
opportunistically changing their depth so that the
ocean flowfield takes them in a desirable direction
to perform coordinated motion. Under the proposed
algorithms, the drifters converge asymptotically to
the same depth and position along the wave
propagation direction. We also investigate the
algorithms' robustness against errors in actuation,
estimation of the wave parameters, or state
measurements. Various simulations illustrate our
results.
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Mechanical and Aerospace Engineering,
University of California, San Diego
9500 Gilman Dr,
La Jolla, California, 92093-0411
Ph: 1-858-822-7930
Fax: 1-858-822-3107
cortes at ucsd.edu
Skype id:
jorgilliyo