Simulating droplet motion on virtual leaf surfaces


Autoria(s): Mayo, Lisa C.; McCue, Scott W.; Moroney, Timothy J.; Forster, W. Alison; Kempthorne, Daryl M.; Belward, John A.; Turner, Ian W.
Data(s)

01/05/2015

Resumo

A curvilinear thin film model is used to simulate the motion of droplets on a virtual leaf surface, with a view to better understand the retention of agricultural sprays on plants. The governing model, adapted from Roy et al. (2002 J. Fluid Mech. 454, 235–261) with the addition of a disjoining pressure term, describes the gravity- and curvature driven flow of a small droplet on a complex substrate: a cotton leaf reconstructed from digitized scan data. Coalescence is the key mechanism behind spray coating of foliage, and our simulations demonstrate that various experimentally observed coalescence behaviours can be reproduced qualitatively. By varying the contact angle over the domain, we also demonstrate that the presence of a chemical defect can act as an obstacle to the droplet’s path, causing break-up. In simulations on the virtual leaf, it is found that the movement of a typical spray size droplet is driven almost exclusively by substrate curvature gradients. It is not until droplet mass is sufficiently increased via coalescence that gravity becomes the dominating force.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/84212/

Publicador

The Royal Society Publishing

Relação

http://eprints.qut.edu.au/84212/1/57_RSOS_2_2015_Mayo.pdf

DOI:10.1098/rsos.140528

Mayo, Lisa C., McCue, Scott W., Moroney, Timothy J., Forster, W. Alison, Kempthorne, Daryl M., Belward, John A., & Turner, Ian W. (2015) Simulating droplet motion on virtual leaf surfaces. Royal Society Open Science, 2(5), p. 140528.

http://purl.org/au-research/grants/ARC/LP100200476

Direitos

Copyright 2015 The Authors

Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.

Fonte

ARC Centre of Excellence for Mathematical & Statistical Frontiers (ACEMS); Science & Engineering Faculty; Mathematical Sciences

Palavras-Chave #010207 Theoretical and Applied Mechanics #010302 Numerical Solution of Differential and Integral Equations #thin film flow #liquid drop #coalescence #curvilinear #alternating direction implicit methods
Tipo

Journal Article