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Errors in Acoustic Doppier Profiler Velocity Measurements Caused by Flow Disturbance

机译:流动扰动引起的多普勒轮廓仪速度测量误差

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Acoustic Doppler current profilers (ADCPs) are commonly used to measure streamflow and water velocities in rivers and streams. This paper presents laboratory, field, and numerical model evidence of errors in ADCP measurements caused by flow disturbance. A state-of-the-art three-dimensional computational fluid dynamic model is validated with and used to complement field and laboratory observations of flow disturbance and its effect on measured velocities. Results show that near the instrument, flow velocities measured by the ADCP are neither the undisturbed stream velocity nor the velocity of the flow field around the ADCP. The velocities measured by the ADCP are biased low due to the downward flow near the upstream face of the ADCP and upward recovering flow in the path of downstream transducer, which violate the flow homogeneity assumption used to transform beam velocities into Cartesian velocity components. The magnitude of the bias is dependent on the deployment configuration, the diameter of the instrument, and the approach velocity, and was observed to range from more than 25% at 5 cm from the transducers to less than 1% at about 50 cm from the transducers for the scenarios simulated.
机译:声学多普勒电流剖面仪(ADCP)通常用于测量河流和溪流中的流量和水流速度。本文介绍了由流量扰动引起的ADCP测量误差的实验室,现场和数值模型证据。最新的三维计算流体动力学模型已经过验证,可用于补充现场和实验室对流动扰动及其对测得速度的影响的观察结果。结果表明,在仪器附近,ADCP测得的流速既不是原状流速度,也不是ADCP周围流场的速度。由于ADCP上游面附近的向下流动和下游换能器路径中的向上恢复流量,ADCP测得的速度偏低,这违背了将射束速度转换为笛卡尔速度分量的流动均匀性假设。偏差的大小取决于展开配置,仪器的直径和进近速度,并且观察到的范围从距换能器5 cm处大于25%到距离传感器50 cm处小于1%的范围内。用于模拟方案的换能器。

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