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  4. On the suspension and deposition within turbidity currents
 
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On the suspension and deposition within turbidity currents

Journal
Journal of Fluid Mechanics
Journal Volume
1003
Start Page
A1
ISSN
0022-1120
1469-7645
Date Issued
2025-01-10
Author(s)
Yao-Hung Tsai
YI-JU CHOU  
DOI
10.1017/jfm.2024.1174
URI
https://www.scopus.com/record/display.uri?eid=2-s2.0-85215409701&origin=resultslist
https://scholars.lib.ntu.edu.tw/handle/123456789/726005
Abstract
Numerical simulations are conducted to investigate particle suspension and deposition within turbidity currents. Utilizing Lagrangian particle tracking and a discrete element model, our numerical approach enables a detailed examination of autosuspension, deposition and bulk behaviours of turbidity current. We specifically focus on flow regimes where particle settling and buoyancy-induced hydrodynamics play equally important roles. Our discussion is divided into three parts. Firstly, we examine the main body of the current formed by suspended particles, revealing a temporal evolution consisting of initial slumping, propagation and dissipation stages. Our particle calculation allows for the tracking of autosuspended particles, enabling a deeper understanding of the connection between autosuspension and current propagation through energy budget analysis. In the second part, we delve into particle deposition, highlighting transverse and longitudinal variations. Transverse variations arise from lobe-and-cleft (LC) flow features, while longitudinal variations result from vortex detachment, particularly notable with large-sized particles. We observe that as particle size increases, leading to a particle Stokes number greater than 0.1, rapid particle settling suppresses the LC flow structure, resulting in wider lobes at the deposition height. Lastly, we propose a new scaling law for the propagation speed and current length. Our simulation results demonstrate close agreement with this new scaling law, providing valuable insights into turbidity current dynamics.
Subjects
gravity currents
particle/fluid flow
sediment transport
SDGs

[SDGs]SDG13

Publisher
Cambridge University Press (CUP)
Type
journal article

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