English

Physics-informed laboratory estimation of Sargassum windage

Atmospheric and Oceanic Physics 2023-11-15 v1

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 (1α)v+αw(1-\alpha)\mathbf{v} + \alpha \mathbf w. The theory provides a closed formula for parameter α\alpha, referred to as \emph{windage}, depending on water-to-particle-density ratio or buoyancy (δ\delta). From a series of laboratory experiments in an air--water stream flume facility under controlled conditions, we estimate α\alpha 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 w\mathbf w to v\mathbf{v} chosen in an ad-hoc piecemeal manner. Using the formula provided by the Maxey--Riley theory, we estimate δ\delta ranging from 1.00 to 1.49. This is consistent with direct δ\delta measurements, ranging from 0.9 to 1.25, which provide support for our α\alpha 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}
}
R2 v1 2026-06-28T13:20:54.699Z