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Temporal Evolution of Clear-Water Local Scour at Aligned and Skewed Complex Bridge Piers

机译:对齐和倾斜的复杂桥墩清水局部冲刷的时间演变

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Scour at bridge piers is time-dependent. In this paper, temporal evolution of clear-water scour at complex bridge piers is studied experimentally. The pier model has a typical form comprising three components, namely a rectangular column, a rectangular pile-cap, and a group of vertical piles underneath. Various relative pile-cap positions and skew angles (alpha) from 0 degrees to 45 degrees were used to investigate their influence on scour evolution. New functions are proposed to fit temporal data and determine the equilibrium scour depth with better accuracy. The results show that the locations for scour initiation and the maximum scour depth may be different, and their relationship varies with pile-cap position and pier skew angle. Highly skewed piers tend to overcome the influence of width ratio of column to pile-cap (Dc/Dpc) on scour evolution, as the column itself becomes dominant. The sensitivity of scour evolution to pier skew angle decreases with higher pile-cap position, especially when it is entirely above the original bed. Four scour development stages were identified for complex piers, including initiation, stagnation, a developing stage, and equilibrium, with each stage being highly dependent on the degree of exposure of each of the pier components. The description of each development stage for different situations is given. The equilibrium time scale t* and the equilibrium scour depth dse for complex piers have similar dependence on flow shallowness ratio (y0/De) and sediment coarseness ratio (De/d50), as per the equation proposed by an authors' previous study (Yang et al. 2018). A new equation is proposed to correct the percentage rate of scour development. The correction is especially useful for aligned complex piers, for which the rate of scour time development may be much lower than that for single-column piers. In general, we recommend using the modified Sheppard-Melville method and the corrected time-scale equation in this paper to predict clear-water equilibrium scour depth and scour evolution at complex bridge piers.
机译:桥墩处的冲刷与时间有关。本文对复杂桥墩清水冲刷的时空演化进行了实验研究。墩模型的典型形式包括三个部分,即一个矩形柱,一个矩形桩帽以及下面的一组垂直桩。使用各种相对的桩帽位置和从0度到45度的倾斜角(α)来研究它们对冲刷演变的影响。提出了新的函数来拟合时间数据并以更高的精度确定平衡冲刷深度。结果表明,冲刷起始位置和最大冲刷深度可能有所不同,它们的关系随桩帽位置和墩偏角的变化而变化。高度倾斜的墩台倾向于克服柱与桩帽的宽度比(Dc / Dpc)对冲刷演化的影响,因为柱本身就占主导地位。当桩帽位置较高时,冲刷演化对墩偏角的敏感性会降低,尤其是当其完全位于原始床身上方时。确定了复杂墩墩的四个冲刷发育阶段,包括起爆阶段,停滞阶段,发展阶段和平衡阶段,每个阶段高度依赖于每个墩墩组件的暴露程度。给出了针对不同情况的每个开发阶段的描述。根据作者先前研究提出的方程(杨),复杂墩墩的平衡时间尺度t *和平衡冲刷深度dse对流浅度比(y0 / De)和沉积物粗度比(De / d50)具有相似的依赖性。等(2018)。提出了一个新的方程式来校正冲刷发展的百分比。该校正对于对齐的复杂墩特别有用,因为冲床的冲刷时间可能比单柱墩的冲刷时间要低得多。通常,我们建议使用改进的Sheppard-Melville方法和校正后的时标方程来预测复杂桥墩的清水平衡冲刷深度和冲刷演化。

著录项

  • 来源
    《Journal of Hydraulic Engineering》 |2020年第4期|04020026.1-04020026.15|共15页
  • 作者

  • 作者单位

    Univ Auckland Dept Civil & Environm Engn Private Bag 92019 Auckland 1142 New Zealand;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 05:18:16

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