The drag length is key to quantifying tree canopy drag
Abstract
The effects of trees on urban flows are often determined using computational fluid dynamics approaches which typically use a quadratic drag formulation based on the leaf-area density and a volumetric drag coefficient to model vegetation. In this paper, we develop an analytical model for the flow within a vegetation canopy and identify that the drag length is the key metric to describe the local tree drag characteristics. A detailed study of the literature suggests that the median observed in field experiments is m for trees and m for low vegetation (crops). A total of large-eddy simulations are conducted to obtain a closed form of the analytical model. The model allows determining and from wind-tunnel experiments that typically present the drag characteristics in terms of the classical drag coefficient and the aerodynamic porosity . We show that geometric scaling of is the appropriate scaling of trees in wind tunnels. Evaluation of for numerical simulations and wind-tunnel experiments (assuming geometric scaling ) in literature shows that the median in both these cases is about m, suggesting possible overestimation of vegetative drag.
Keywords
Cite
@article{arxiv.2411.01570,
title = {The drag length is key to quantifying tree canopy drag},
author = {Dipanjan Majumdar and Giulio Vita and Rubina Ramponi and Nina Glover and Maarten van Reeuwijk},
journal= {arXiv preprint arXiv:2411.01570},
year = {2024}
}