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首页> 外文期刊>IEEE Transactions on Instrumentation and Measurement >Gas–Liquid Flow Pattern Analysis Based on Graph Connectivity and Graph-Variate Dynamic Connectivity of ERT
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Gas–Liquid Flow Pattern Analysis Based on Graph Connectivity and Graph-Variate Dynamic Connectivity of ERT

机译:基于ERT的图连通性和图变量动态连通性的气液流型分析

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摘要

Two-phase flow is widely encountered in process engineering and related scientific research. Understanding flow patterns and their transitions is important to discover the fluid mechanics of two-phase flow. In order to investigate the complexity of horizontal gas-water two-phase flow and accurately identify the flow pattern, a 16-electrode electrical resistance tomography was used to collect the spatial distribution of phase fraction. The experimental data are compressed and treated as a 16-D time series corresponding to the average response of the phase distribution in the field of each exciting electrode, which can be studied with graph-based techniques. Three connectivity metrics-correlation, coherence, and the phase-lag index are extracted from the multivariate time series, which correspond to the amplitude, power, and phase-based connectivity among signals, respectively. Together, these connectivity metrics make a comprehensive description of the characteristics of each flow pattern and reveal the transition process of flow patterns. The dynamic characteristics of typical flow patterns are then analyzed using the method of graph-variate signal analysis named graph-variate dynamic connectivity.
机译:两相流在过程工程和相关科学研究中广泛遇到。了解流型及其过渡对于发现两相流的流体力学很重要。为了研究水平气-水两相流的复杂性并准确识别流型,采用16电极电阻层析成像技术收集相分数的空间分布。实验数据被压缩并视为16D时间序列,对应于每个激励电极场中相位分布的平均响应,可以使用基于图形的技术进行研究。从多元时间序列中提取了三个连通性度量:相关性,相干性和相位滞后指数,它们分别对应于信号之间的幅度,功率和基于相位的连通性。这些连通性指标一起对每种流模式的特征进行了全面描述,并揭示了流模式的过渡过程。然后,使用称为图变量动态连通性的图变量信号分析方法来分析典型流型的动态特性。

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