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research article

A multiscale model for sediment impact erosion simulation using the finite volume particle method

Leguizamón, Sebastián
•
Jahanbakhsh, Ebrahim  
•
Maertens, Audrey
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2017
Wear

The erosion of a surface by a sediment-laden flow is an inherently multiscale phenomenon which includes physical interactions covering many orders of magnitude in both length and time scales. Conforming to the nature of the problem, we propose a novel multiscale model for simulating this complex process. On the one hand, a macroscale model encompassing the whole domain of interest solves the turbulent sediment transport problem. On the other hand, a microscale model simulates the sediment impacts against the surface. A sequential multiscale strategy is used to link the sub models, such that the microscale model provides closure to the macroscale model in terms of the calculated steady state erosion rate and restitution coefficients, therefore reproducing the original coupled problem. The proposed methodology is validated against experimental data for the slurry jet erosion of a copper plate at three impingement angles. Both the global erosion rate and the erosion depth profile are predicted with mean relative errors of 18% compared to the corresponding experimental values, achieving a significant improvement over correlation-based approaches.

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Type
research article
DOI
10.1016/j.wear.2017.10.002
Web of Science ID

WOS:000415885200022

Author(s)
Leguizamón, Sebastián
Jahanbakhsh, Ebrahim  
Maertens, Audrey
Alimirzazadeh, Siamak  
Avellan, François
Date Issued

2017

Published in
Wear
Volume

392–393

Start page

202

End page

212

Subjects

Solid particle erosion

•

Slurry erosion

•

Multiscale modeling

•

Finite volume particle method

•

Computational fluid dynamics

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMH  
Available on Infoscience
October 15, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/141379
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