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Complex network analysis of phase dynamics underlying oil-water two-phase flows

机译:阶段动力学底层水两相流动的复杂网络分析

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Characterizing the complicated flow behaviors arising from high water cut and low velocity oil-water flows is an important problem of significant challenge. We design a high-speed cycle motivation conductance sensor and carry out experiments for measuring the local flow information from different oil-in-water flow patterns. We first use multivariate time-frequency analysis to probe the typical features of three flow patterns from the perspective of energy and frequency. Then we infer complex networks from multi-channel measurements in terms of phase lag index, aiming to uncovering the phase dynamics governing the transition and evolution of different oil-in-water flow patterns. In particular, we employ spectral radius and weighted clustering coefficient entropy to characterize the derived unweighted and weighted networks and the results indicate that our approach yields quantitative insights into the phase dynamics underlying the high water cut and low velocity oil-water flows.
机译:表征高水平和低速油水流动引起的复杂的流动性是重大挑战的重要问题。我们设计了高速循环动机电导传感器,并进行实验,用于测量来自不同的油流动模式的局部流量信息。我们首先使用多元时间频率分析来探测能量和频率的角度来探测三种流动模式的典型特征。然后,我们在相滞指标方面从多通道测量中推断复杂网络,旨在揭示控制不同油流动模式的过渡和演化的相动力。特别地,我们采用光谱半径和加权聚类系数熵,以表征导出的未加权和加权网络,结果表明我们的方法能够对高水切口和低速油流水下面的相动力产生定量见解。

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