Boothroyd, Richard J
ORCID: 0000-0001-9742-4229, Hardy, Richard J, Warburton, Jeff and Marjoribanks, Timothy I
(2016)
The importance of accurately representing submerged vegetation morphology in the numerical prediction of complex river flow
EARTH SURFACE PROCESSES AND LANDFORMS, 41 (4).
pp. 567-576.
ISSN 0197-9337, 1096-9837
|
PDF
Boothroyd_et_al_2016.pdf - Author Accepted Manuscript Download (622kB) | Preview |
Abstract
This paper reports a novel method for the incorporation of complex plant morphologies into a computational fluid dynamics (CFD) model, allowing the numerical prediction of flows around individual plants. The morphological complexity, which comprises the vertical and lateral distribution of individual branches and leaves is captured through terrestrial laser scanning (TLS) and is maintained in the numerical prediction of flow fields. This is achieved where the post-processed, voxelized plant representation is incorporated into a CFD scheme through a mass flux scaling algorithm (MFSA). Flow around Prunus laurocerasus has been modelled under foliated and defoliated states following the removal of leaves. The complex plant morphologies are shown to produce spatially heterogeneous downstream velocity fields, with velocity profiles that deviate significantly from the idealized inflected shape. Rapid transition between the high velocity free stream zone and the zone of reduced velocity in the plant wake indicate shearing of flow, with the point of reattachment extending up to seven plant lengths downstream. The presence of leaves significantly modifies the flow field response, with development of a second, more pronounced wake structure around the dense foliage. This approach provides a full flow numerical description of the pressure field, enabling the vegetative drag force to be quantified. For the example given here, drag force is an order of magnitude greater for the foliated state. The methodology outlined here demonstrates the importance of accurately representing complex plant morphology in hydraulic models, and allows drag forces and coefficients to be calculated for specific plant species.
| Item Type: | Article |
|---|---|
| Uncontrolled Keywords: | CFD, channel vegetation, terrestrial laser scanning, drag coefficient |
| Divisions: | Faculty of Science & Engineering > School of Environmental Sciences |
| Depositing User: | Symplectic Admin |
| Date Deposited: | 07 Aug 2023 07:36 |
| Last Modified: | 16 Jun 2026 15:40 |
| DOI: | 10.1002/esp.3871 |
| Related Websites: | |
| URI: | https://livrepository.liverpool.ac.uk/id/eprint/3172055 |
| Disclaimer: | The University of Liverpool is not responsible for content contained on other websites from links within repository metadata. Please contact us if you notice anything that appears incorrect or inappropriate. |
Altmetric
Altmetric