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水力发电学报 ›› 2018, Vol. 37 ›› Issue (8): 55-63.doi: 10.11660/slfdxb.20180806

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河道斜交桥墩壅水特性数值模拟研究

  

  • 出版日期:2018-08-25 发布日期:2018-08-25

Numerical investigation on backwater characteristics of oblique river crossing bridge piers

  • Online:2018-08-25 Published:2018-08-25

摘要: 跨河桥梁因桥墩阻水引起上游河道壅水,影响泄洪;目前桥涵水文学对于桥梁-河道正交情况的壅水计算已形成大量实用成果,河道斜交的桥梁水流结构更为复杂,已有理论和经验公式对斜向因素影响规律总结不足。建立模拟桥墩壅水的二维水流数学模型,实验验证后,数值模拟研究了斜向布置桥墩绕流水动力结构和壅水特性,分析总结了桥墩阻水比10% ~ 40%时,最大壅水高度、桥墩绕流流场结构随桥墩尺寸、斜交角度、来流流速的变化规律;模拟结果表明,在顺流向阻水比一定时,最大壅水高度随桥墩斜向角度呈先增大后减小趋势,斜交还将引起河流水流流向偏转,造成两岸流速分布的显著不对称分布。研究成果为河道斜交桥梁壅水预测和护岸工程设计提供了科学依据。

Abstract: A river crossing bridge may induce backwater owing to the flow resistance generated by its piers, which may consequently affect river flood discharging. In the field of bridge and culvert hydrology, a large body of previous studies concerns backwater calculations for the bridges orthogonal to river channel, but still lacking are the theories or empirical formulas applicable to oblique river crossing bridges that involve complicated flow structures beyond their applicability. This study develops a mathematical model for the two-dimensional depth-integrated flows to simulate bridge backwater, and verifies it through a flume experiment. Based on numerical simulations, hydrodynamics and characteristics of the backwater in river channels with oblique crossing bridges are examined, focusing on analysis of the maximum backwater height varying with bridge pier size, crossing angle, and inflow velocity in the cases of flow blockage factor in a range of 10% - 40%. Simulation results show that at a fixed blockage factor, the maximum backwater height increases and then decreases with the increasing oblique angle. Oblique crossing may induce a deflection of the river flow, leading to significant asymmetry of the velocity distribution.

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