Physics-informed laboratory estimation of Sargassum windage
Abstract
A recent Maxey--Riley theory for \sarg raft motion, which models a raft as a network of elastically interacting finite-size, buoyant particles, predicts the carrying flow velocity to be given by the weighted sum of the water and air velocities . The theory provides a closed formula for parameter , referred to as \emph{windage}, depending on water-to-particle-density ratio or buoyancy (). From a series of laboratory experiments in an air--water stream flume facility under controlled conditions, we estimate ranging from 0.02 to 0.96\pct. On average, our windage estimates can be up to 9 times smaller than considered in conventional \emph{Sargassum} raft transport modeling, wherein it is customary to add a fraction of to chosen in an ad-hoc piecemeal manner. Using the formula provided by the Maxey--Riley theory, we estimate ranging from 1.00 to 1.49. This is consistent with direct measurements, ranging from 0.9 to 1.25, which provide support for our estimation.
Keywords
Cite
@article{arxiv.2311.08279,
title = {Physics-informed laboratory estimation of Sargassum windage},
author = {M. J. Olascoaga and F. J. Beron-Vera and R. T. Beyea and G. Bonner and M. Castellucci and G. J. Goni and C. Guigand and N. F. Putman},
journal= {arXiv preprint arXiv:2311.08279},
year = {2023}
}