Studies on Driftwood Motions around Obstacles by Laboratory and Nnumerical Experiments

From the engineering point of view, prediction of driftwood motions around hydraulic obstacles in rivers is important. We carried out laboratory experiments to understand the driftwood behaviour around grid like obstacles and found out that there are two different patterns of the capturing process o...

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Main Authors: Kimura Ichiro, Kitazono Kazuya
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:E3S Web of Conferences
Online Access:https://doi.org/10.1051/e3sconf/20184002032
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spelling doaj-295fe4d7ea82498c8f2f30f436d826d42021-03-02T09:52:13ZengEDP SciencesE3S Web of Conferences2267-12422018-01-01400203210.1051/e3sconf/20184002032e3sconf_riverflow2018_02032Studies on Driftwood Motions around Obstacles by Laboratory and Nnumerical ExperimentsKimura IchiroKitazono KazuyaFrom the engineering point of view, prediction of driftwood motions around hydraulic obstacles in rivers is important. We carried out laboratory experiments to understand the driftwood behaviour around grid like obstacles and found out that there are two different patterns of the capturing process of driftwood: 2D (two-dimension) type and 3D (threedimensional) type. We proposed the governing parameter "Driftwood Richardson Number" for classifying the types of the driftwood capture. A numerical model to simulate driftwood motions based on the coupling of a Euler type three-dimensional flow model and a Lagrange type twodimensional driftwood model (3D-2D model) is proposed to analyse the driftwood behaviour around obstacles. The numerical model could predict well the flowing pattern of driftwood affected by the secondary current of the first kind in a meandering open channel. The numerical results with obstacles showed that the present 3D-2D type model is applicable only if the driftwood Richardson number is larger than 10, in which the driftwood capturing takes place in the 2D type.https://doi.org/10.1051/e3sconf/20184002032
collection DOAJ
language English
format Article
sources DOAJ
author Kimura Ichiro
Kitazono Kazuya
spellingShingle Kimura Ichiro
Kitazono Kazuya
Studies on Driftwood Motions around Obstacles by Laboratory and Nnumerical Experiments
E3S Web of Conferences
author_facet Kimura Ichiro
Kitazono Kazuya
author_sort Kimura Ichiro
title Studies on Driftwood Motions around Obstacles by Laboratory and Nnumerical Experiments
title_short Studies on Driftwood Motions around Obstacles by Laboratory and Nnumerical Experiments
title_full Studies on Driftwood Motions around Obstacles by Laboratory and Nnumerical Experiments
title_fullStr Studies on Driftwood Motions around Obstacles by Laboratory and Nnumerical Experiments
title_full_unstemmed Studies on Driftwood Motions around Obstacles by Laboratory and Nnumerical Experiments
title_sort studies on driftwood motions around obstacles by laboratory and nnumerical experiments
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2018-01-01
description From the engineering point of view, prediction of driftwood motions around hydraulic obstacles in rivers is important. We carried out laboratory experiments to understand the driftwood behaviour around grid like obstacles and found out that there are two different patterns of the capturing process of driftwood: 2D (two-dimension) type and 3D (threedimensional) type. We proposed the governing parameter "Driftwood Richardson Number" for classifying the types of the driftwood capture. A numerical model to simulate driftwood motions based on the coupling of a Euler type three-dimensional flow model and a Lagrange type twodimensional driftwood model (3D-2D model) is proposed to analyse the driftwood behaviour around obstacles. The numerical model could predict well the flowing pattern of driftwood affected by the secondary current of the first kind in a meandering open channel. The numerical results with obstacles showed that the present 3D-2D type model is applicable only if the driftwood Richardson number is larger than 10, in which the driftwood capturing takes place in the 2D type.
url https://doi.org/10.1051/e3sconf/20184002032
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AT kitazonokazuya studiesondriftwoodmotionsaroundobstaclesbylaboratoryandnnumericalexperiments
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