<div class="csl-bib-body">
<div class="csl-entry">Schenk, M., Giamagas, G., Roccon, A., Soldati, A., & Zonta, F. (2024). Computationally efficient and interface accurate dual-grid phase-field simulation of turbulent drop-laden flows. <i>JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME</i>. https://doi.org/10.34726/6679</div>
</div>
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dc.identifier.issn
0098-2202
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/198663
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dc.identifier.uri
https://doi.org/10.34726/6679
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dc.description.abstract
In this work, we develop a dual-grid approach for the direct numerical simulations (DNS) of tur- bulent multiphase flows in the framework of the phase-field method (PFM). With the dual-grid approach, the solution of the Navier-Stokes equations (flow-field) and of the Cahn-Hilliard equa- tion (phase-field) are performed on two different computational grids. In particular, a base grid - fine enough to resolve the flow down to the Kolmogorov scale - is used for the solution of the Navier-Stokes equations, while a refined grid - required to improve the description of small interfacial structures - is used for the solution of the Cahn-Hilliard equation (phase-field method). The proposed approach is validated, and its computational efficiency is evaluated considering the deformation of a drop in a two-dimensional shear flow. Analyzing the computational time and memory usage, we observe a reduction between ≃30% and ≃40% (with respect to the single-grid approach), depending on the grid refinement factor employed for the phase-field variable. The applicability of the approach to a realistic three-dimensional case is also discussed, by focusing on the breakage of a thin liquid sheet inside a turbulent channel flow. Indications on the grid resolution representing a good compromise between accuracy and computational efficiency in drop-laden turbulence are also provided.
en
dc.language.iso
en
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dc.publisher
ASME
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dc.relation.ispartof
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME
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dc.rights.uri
http://rightsstatements.org/vocab/InC/1.0/
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dc.subject
drops
en
dc.subject
phase-field method
en
dc.subject
dual grid
en
dc.title
Computationally efficient and interface accurate dual-grid phase-field simulation of turbulent drop-laden flows
en
dc.type
Article
en
dc.type
Artikel
de
dc.rights.license
Urheberrechtsschutz
de
dc.rights.license
In Copyright
en
dc.identifier.doi
10.34726/6679
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dc.rights.holder
Copyright (c) 2024 by ASME
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dc.type.category
Original Research Article
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tuw.journal.peerreviewed
true
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tuw.peerreviewed
true
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wb.publication.intCoWork
International Co-publication
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tuw.researchinfrastructure
Vienna Scientific Cluster
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tuw.researchTopic.id
C2
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tuw.researchTopic.name
Computational Fluid Dynamics
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tuw.researchTopic.value
100
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dcterms.isPartOf.title
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME
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tuw.publication.orgunit
E322 - Institut für Strömungsmechanik und Wärmeübertragung