<div class="csl-bib-body">
<div class="csl-entry">Lugina, F. P., Uchida, T., & Blanckaert, K. (2025). Three-dimensional flow structures modelling based on a depth-integrated method in a sharply curved open channel over topography. In H. Nisar, S. Sethupathi, P. Y. Ling, T. K. Tat, N. binti A. Aziz, & K. W. M. Chu (Eds.), <i>5th International Symposium on Green and Sustainable Technology : (ISGST 2024)</i>. https://doi.org/10.1051/e3sconf/202560301014</div>
</div>
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/221956
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dc.description.abstract
In this study, we introduce the bottom velocity calculation (BVC) technique, a depth-integrated approach for modeling three-dimensional flow systems in the two-dimensional (2D) river management model framework. The method has been expanded to a general coordinate system and its applicability to flow in bends and meanders for the applications to rivers. The method was validated to a laboratory experiment conducted in a sharply curved channel over topography. The pattern of water surface elevation and vertical velocity distribution can be replicated by the BVC method's models, which also show strong qualitative agreement with the experimental dataset and 3D model. The benefit of using the BVC technique instead of the 2D model is verified; the 2D model is unable to replicate the profile since it does not take into account three-dimensional flow structures. As seen above, the BVC method is helpful in evaluating the river environment because it can account for the complicated material transports caused by three-dimensional flows in the meandering sections of the river channel.
en
dc.language.iso
en
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dc.relation.ispartofseries
E3S Web of Conferences
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dc.subject
curved flow
en
dc.subject
flow structures
en
dc.subject
topography
en
dc.title
Three-dimensional flow structures modelling based on a depth-integrated method in a sharply curved open channel over topography
en
dc.type
Inproceedings
en
dc.type
Konferenzbeitrag
de
dc.contributor.affiliation
Hiroshima University, Japan
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dc.contributor.affiliation
Hiroshima University, Japan
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dc.type.category
Full-Paper Contribution
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tuw.booktitle
5th International Symposium on Green and Sustainable Technology : (ISGST 2024)
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tuw.container.volume
603
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tuw.peerreviewed
true
-
tuw.researchTopic.id
C2
-
tuw.researchTopic.id
C6
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tuw.researchTopic.name
Computational Fluid Dynamics
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tuw.researchTopic.name
Modeling and Simulation
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tuw.researchTopic.value
50
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tuw.researchTopic.value
50
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tuw.publication.orgunit
E222-01 - Forschungsbereich Wasserbau und Umwelthydraulik
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tuw.publisher.doi
10.1051/e3sconf/202560301014
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dc.description.numberOfPages
7
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tuw.author.orcid
0009-0005-1256-4852
-
tuw.author.orcid
0000-0003-3130-1175
-
tuw.author.orcid
0000-0002-6630-3683
-
tuw.event.name
5th International Symposium on Green and Sustainable Technology 2024
en
tuw.event.startdate
14-10-2024
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tuw.event.enddate
15-10-2024
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tuw.event.online
On Site
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tuw.event.type
Event for scientific audience
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tuw.event.place
Kuala Lumpur
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tuw.event.country
MY
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tuw.event.presenter
Lugina, Fikry Purwa
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wb.sciencebranch
Bauingenieurwesen
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wb.sciencebranch
Umwelttechnik
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wb.sciencebranch
Hydrologie
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wb.sciencebranch.oefos
2011
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wb.sciencebranch.oefos
2071
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wb.sciencebranch.oefos
1053
-
wb.sciencebranch.value
30
-
wb.sciencebranch.value
20
-
wb.sciencebranch.value
50
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item.openairetype
conference paper
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item.openairecristype
http://purl.org/coar/resource_type/c_5794
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item.cerifentitytype
Publications
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item.languageiso639-1
en
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item.grantfulltext
restricted
-
item.fulltext
no Fulltext
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crisitem.author.dept
Hiroshima University, Japan
-
crisitem.author.dept
Hiroshima University, Japan
-
crisitem.author.dept
E222-01 - Forschungsbereich Wasserbau
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crisitem.author.orcid
0000-0003-3130-1175
-
crisitem.author.orcid
0000-0002-6630-3683
-
crisitem.author.parentorg
E222 - Institut für Wasserbau und Ingenieurhydrologie