Meander dynamics: A nonlinear model without curvature restrictions for flow in open-channel bends

被引:91
|
作者
Blanckaert, K. [1 ,2 ,3 ]
de Vriend, H. J. [2 ]
机构
[1] Ecole Polytech Fed Lausanne, LCH ENAC, CH-1015 Lausanne, Switzerland
[2] Delft Univ Technol, Dept Civil Engn & Geosci, Delft, Netherlands
[3] Chinese Acad Sci, Ctr Ecoenvironm Sci, State Key Lab Urban & Reg Ecol, Beijing, Peoples R China
基金
瑞士国家科学基金会;
关键词
SEDIMENT TRANSPORT; SECONDARY FLOW; BED TOPOGRAPHY; RIVER MEANDERS; REDISTRIBUTION; DEFORMATION; SIMULATION; BANK;
D O I
10.1029/2009JF001301
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Despite the rapid evolution of computational power, simulation of meander dynamics by means of reduced and computationally less expensive models remains practically relevant for investigation of large-scale and long-term processes, probabilistic predictions, or rapid assessments. Existing meander models are invariantly based on the assumptions of mild curvature and slow curvature variations and fail to explain processes in the high-curvature range. This article proposes a nonlinear model for meander hydrodynamics without curvature restrictions. It provides the distribution of the main flow, the magnitude of the secondary flow, the direction of the bed shear stress, and the curvature-induced additional energy losses. It encompasses existing mild curvature models, remains valid for straight flow, and agrees satisfactorily with experimental data from laboratory experiments under conditions that are more demanding than sharp natural river bends. The proposed model reveals the mechanisms that drive the velocity redistribution in meander bends and their dependence on the river's roughness C-f, the flow depth H, the radius of curvature R, the width B, and bathymetric variations. It identifies Cf-1H/R as the major control parameter for meander hydrodynamics in general and the relative curvature R/B for sharp curvature effects. Both parameters are small in mildly curved bends but O(1) in sharply curved bends, resulting in significant differences in the flow dynamics. Streamwise curvature variations are negligible in mildly curved bends, but they are the major mechanisms for velocity redistribution in sharp bends. Nonlinear feedback between the main and secondary flow also plays a dominant role in sharp bends: it increases energy losses and reduces the secondary flow, the transverse bed slope, and the velocity redistribution.
引用
收藏
页数:22
相关论文
共 50 条
  • [21] Interaction between curvature-driven width oscillations and channel curvature in evolving meander bends
    Monegaglia, F.
    Tubino, M.
    Zolezzi, G.
    [J]. JOURNAL OF FLUID MECHANICS, 2019, 876 : 985 - 1017
  • [22] Hydrodynamic model for complex flow in open-channel networks
    Zhu, De-Jun
    Chen, Yong-Can
    Wang, Zhi-Yong
    Liu, Zhao-Wei
    [J]. Shuikexue Jinzhan/Advances in Water Science, 2011, 22 (02): : 203 - 207
  • [23] An analytical model for gas absorption in open-channel flow
    Stevanovic, VD
    [J]. INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 1997, 24 (08) : 1187 - 1194
  • [24] DEPTH-AVERAGED OPEN-CHANNEL FLOW MODEL
    MOLLS, T
    CHAUDHRY, MH
    [J]. JOURNAL OF HYDRAULIC ENGINEERING-ASCE, 1995, 121 (06): : 453 - 465
  • [25] Open-channel flow model approximation for controller design
    Schuurmans, J.
    Bosgra, O.H.
    Brouwer, R.
    [J]. Applied Mathematical Modelling, 1995, 19 (09): : 525 - 530
  • [26] Investigation of free-surface dynamics in an open-channel flow
    Yoshimura, Hideto
    Fujita, Ichiro
    [J]. JOURNAL OF HYDRAULIC RESEARCH, 2020, 58 (02) : 231 - 247
  • [27] Flow in open-channel embayments
    Mizumura, K
    Yamasaka, M
    [J]. JOURNAL OF HYDRAULIC ENGINEERING-ASCE, 2002, 128 (12): : 1098 - 1101
  • [28] Grit Removal from Wastewater Using Secondary Currents in Open-Channel Flow around Bends
    Patel, Titiksh
    Gill, Laurence
    Faram, Michael G.
    [J]. JOURNAL OF ENVIRONMENTAL ENGINEERING, 2011, 137 (11) : 1026 - 1039
  • [29] Turbulence structure in a very sharp thermally stratified open-channel meander
    Duy Nguyen
    Kirkpatrick, Michael P.
    Williamson, N.
    Armfield, S. W.
    Lin, W.
    [J]. PHYSICS OF FLUIDS, 2022, 34 (03)
  • [30] OPEN-CHANNEL FLOW MODEL APPROXIMATION FOR CONTROLLER-DESIGN
    SCHUURMANS, J
    BOSGRA, OH
    BROUWER, R
    [J]. APPLIED MATHEMATICAL MODELLING, 1995, 19 (09) : 525 - 530