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首页> 外文期刊>International Journal of Multiphase Flow >Numerical evaluation of the uncertainty of double-sensor conductivity probe for bubbly flow measurement
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Numerical evaluation of the uncertainty of double-sensor conductivity probe for bubbly flow measurement

机译:双传感器电导率探针不确定度的数值评价,用于泡流量测量

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摘要

The double-sensor conductivity probe is one of the most commonly used techniques for obtaining the local time-averaged parameters in bubbly flows. The uncertainty of this measurement technique has not been well understood in the past as it involves many different steps and influential factors in a typical measurement. To evaluate the overall uncertainty of the double-sensor probe, a practical Monte Carlo simulation model is developed in this work. The actual measurement process and bubble characteristics are closely simulated in the model. The factors considered include bubble aspect ratio and inclination angle, the test section geometry, probe location in the measuring plane, the restrictions of wall boundary on bubble distribution and velocity fluctuation, and the effect of the sampling time, among others. The simulation results reveal that the measurement uncertainty may be significant for ellipsoidal bubbles with a small aspect ratio. Bubble inclination angle could also affect the measurement accuracy considerably. The uncertainty increases near the wall as several assumptions for the measurement model cannot hold due to wall restrictions. The random error in the time-averaged data is obtained by computing the standard deviation of 100 repeated simulations. The results indicate that convergence rate depends on velocity fluctuation magnitude and measurement location. In summary, the uncertainty in the data obtained by the double-sensor conductivity probe is evaluated based on the actual bubble characteristics and the measurement parameters including the probe location. This way of evaluating measurement uncertainty is a step improvement over the conventional ballpark estimate which does not consider these factors actually involved in the measurement.
机译:双传感器电导率探针是用于在气泡流中获得局部时间平均参数的最常用的技术之一。过去,这种测量技术的不确定性在过去涉及许多不同的步骤和典型测量中的影响因素。为了评估双传感器探头的总不确定性,在这项工作中开发了一种实用的蒙特卡罗仿真模型。在模型中密切地模拟实际测量过程和气泡特性。所考虑的因素包括气泡纵横比和倾斜角,试验部分几何形状,测量平面中的探针位置,壁边界对气泡分布和速度波动的限制,以及采样时间的效果。模拟结果表明,测量不确定性对于具有小纵横比的椭圆气泡可能是显着的。气泡倾斜角也可能显着影响测量精度。由于墙壁限制,墙壁附近的不确定性随着测量模型的若干假设而增加。通过计算100重复仿真的标准偏差来获得时间平均数据中的随机误差。结果表明会聚速率取决于速度波动幅度和测量位置。总之,通过双传感器电导率探针获得的数据中的不确定性基于实际的气泡特性和包括探头位置的测量参数来评估。评估测量不确定性的这种方式是传统球场估计的阶梯改进,这不考虑实际涉及测量的这些因素。

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  • 作者

    D. Wang; Y. Liu; J.D. Talley;

  • 作者单位

    Nuclear Engineering Program Department of Mechanical Engineering Virginia Tech;

    Nuclear Engineering Program Department of Mechanical Engineering Virginia Tech;

    Bechtel Marine Propulsion Corporation Bettis Laboratory;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 多相流 ;
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