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    Flow Structure around Bridge Piers of Varying Geometrical Complexity

    Source: Journal of Hydraulic Engineering:;2013:;Volume ( 139 ):;issue: 008
    Author:
    Wen-Yi Chang
    ,
    George Constantinescu
    ,
    Ho-Cheng Lien
    ,
    Whey-Fone Tsai
    ,
    Jihn-Sung Lai
    ,
    Chin-Hsiung Loh
    DOI: 10.1061/(ASCE)HY.1943-7900.0000742
    Publisher: American Society of Civil Engineers
    Abstract: Piers with back-to-back stems or columns and piers for which part of the foundation becomes exposed as a result of the development of scour over large periods of time or because of severe flood events are fairly common at bridge waterways. The present paper uses eddy-resolving numerical simulations to study flow and turbulence structure at piers of complex shape and/or with multiple components. In particular, the study considers cases with one and two back-to-back pier columns for which the section of the main column is neither circular nor rectangular. In addition to a design case for which the foundation of each pier column is submerged, the study analyzes a case when scour exposes part of the foundation of the main column. The results show that the shape and size of the pier column have a significant effect on the spatial and temporal distributions of the bed friction velocity induced by the horseshoe vortex system. The large-scale shedding behind the main column greatly influences flow structure and increases bed friction velocity around the downstream column for piers with two back-to-back columns that are aligned with the incoming flow direction. The present study shows that the presence of large-scale unsteady coherent structures in the vicinity of the bed around piers of complex shapes results in very complex distributions of the bed friction velocity and in large-scale temporal oscillations of the bed friction velocity. The results of eddy-resolving simulations strongly suggest the need to account for the effect of these large-scale oscillations around the mean value when bed friction velocity distributions are used to estimate the flux of entrained sediment in movable bed simulations that do not resolve the large-scale turbulent flow structures.
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      Flow Structure around Bridge Piers of Varying Geometrical Complexity

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    contributor authorWen-Yi Chang
    contributor authorGeorge Constantinescu
    contributor authorHo-Cheng Lien
    contributor authorWhey-Fone Tsai
    contributor authorJihn-Sung Lai
    contributor authorChin-Hsiung Loh
    date accessioned2017-05-08T21:51:46Z
    date available2017-05-08T21:51:46Z
    date copyrightAugust 2013
    date issued2013
    identifier other%28asce%29hy%2E1943-7900%2E0000772.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/64609
    description abstractPiers with back-to-back stems or columns and piers for which part of the foundation becomes exposed as a result of the development of scour over large periods of time or because of severe flood events are fairly common at bridge waterways. The present paper uses eddy-resolving numerical simulations to study flow and turbulence structure at piers of complex shape and/or with multiple components. In particular, the study considers cases with one and two back-to-back pier columns for which the section of the main column is neither circular nor rectangular. In addition to a design case for which the foundation of each pier column is submerged, the study analyzes a case when scour exposes part of the foundation of the main column. The results show that the shape and size of the pier column have a significant effect on the spatial and temporal distributions of the bed friction velocity induced by the horseshoe vortex system. The large-scale shedding behind the main column greatly influences flow structure and increases bed friction velocity around the downstream column for piers with two back-to-back columns that are aligned with the incoming flow direction. The present study shows that the presence of large-scale unsteady coherent structures in the vicinity of the bed around piers of complex shapes results in very complex distributions of the bed friction velocity and in large-scale temporal oscillations of the bed friction velocity. The results of eddy-resolving simulations strongly suggest the need to account for the effect of these large-scale oscillations around the mean value when bed friction velocity distributions are used to estimate the flux of entrained sediment in movable bed simulations that do not resolve the large-scale turbulent flow structures.
    publisherAmerican Society of Civil Engineers
    titleFlow Structure around Bridge Piers of Varying Geometrical Complexity
    typeJournal Paper
    journal volume139
    journal issue8
    journal titleJournal of Hydraulic Engineering
    identifier doi10.1061/(ASCE)HY.1943-7900.0000742
    treeJournal of Hydraulic Engineering:;2013:;Volume ( 139 ):;issue: 008
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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