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Scour Hole Influence on Turbulent Flow Field around Complex Bridge Piers

机译:冲刷孔对复杂桥墩绕流场的影响

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Experimental results of detailed flow measurements using an Acoustic-Doppler Velocimeter (ADV) around a complex bridge pier (CBP) are presented. The pier consists of a column, a pile cap (PC) and a 2x4 pile group. The time-averaged velocities, turbulence intensities, and Reynolds stresses are studied and presented at different horizontal and vertical planes. Streamlines obtained from the velocity fields are used to show the complexity of the flow around the pier. It is shown that the main feature of the flow responsible for the entrainment of the bed sediments is a contracted (pressurized) flow below the PC toward the piles. A deflected flow around the PC and a strong down-flow along its sides are observed and have been measured. It is shown that these flow patterns also cause sediment entrainment. Vortex flow behind the PC and amplification of turbulence intensity along its sides near the downstream region can be other reasons for the scour hole (SH) development. Turbulence intensities and Reynolds shear stresses are presented and discussed. A comparison is made between the flow field measured with the equilibrium SH and that measured on the fixed flat-bed. The results show that the flow field around the PC is considerably influenced by the development of the SH. The extent of the wake region at the rear of the PC is about 1.4 times larger for the fixed bed (FB) than for the scoured bed (SB). Moreover, the size of the core of high turbulent kinetic energy K, as well as the maximum values of K behind the column for the FB case is larger than that of the SB case. When a scour hole develops, the flow below the PC around the piles is considered to be the main cause of the scour. This is the first time that these observations about the flow and turbulence field around a complex bridge pier are reported and analyzed. In addition to improving the understanding of the flow structure, the present detailed measurements can also be used for benchmarking and verification of numerical models.
机译:给出了使用复杂的桥墩(CBP)周围的声学多普勒测速仪(ADV)进行详细流量测量的实验结果。墩由一列,一个桩帽(PC)和一个2x4桩组组成。研究了时均速度,湍流强度和雷诺应力,并在不同的水平和垂直平面上进行了介绍。从速度场获得的流线用于显示码头周围流的复杂性。结果表明,导致床层沉积物夹带的流动的主要特征是在PC下方朝向桩的收缩(加压)流动。观察并测量了PC周围的偏转流和沿PC侧面的强烈下流。结果表明,这些流态也会引起夹带泥沙。 PC后面的涡流和下游区域附近沿其湍流强度的增大可能是冲孔(SH)形成的其他原因。提出并讨论了湍流强度和雷诺剪切应力。比较用平衡SH测得的流场和在固定平板上测得的流场。结果表明,PC周围的流场受SH的发展影响很大。对于固定床(FB),PC后面的唤醒区范围大约是精练床(SB)的1.4倍。此外,对于FB情况,高湍动能K的堆芯尺寸以及柱后K的最大值大于SB情况。当形成冲刷孔时,桩下方PC下方的流动被认为是冲刷的主要原因。这是首次报告并分析了有关复杂桥墩周围流场和湍流场的这些观测结果。除了改善对流动结构的理解之外,当前的详细测量结果还可以用于对数值模型进行基准测试和验证。

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