Characterising Dynamic Instability in High Water-Cut Oil-Water Flows Using High-Resolution Microwave Sensor Signals

Weixin Liu, N. Jin, Yunfeng Han, Jing Ma
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引用次数: 4

Abstract

Abstract In the present study, multi-scale entropy algorithm was used to characterise the complex flow phenomena of turbulent droplets in high water-cut oil-water two-phase flow. First, we compared multi-scale weighted permutation entropy (MWPE), multi-scale approximate entropy (MAE), multi-scale sample entropy (MSE) and multi-scale complexity measure (MCM) for typical nonlinear systems. The results show that MWPE presents satisfied variability with scale and anti-noise ability. Accordingly, we conducted an experiment of vertical upward oil-water two-phase flow with high water-cut and collected the signals of a high-resolution microwave resonant sensor, based on which two indexes, the entropy rate and mean value of MWPE, were extracted. Besides, the effects of total flow rate and water-cut on these two indexes were analysed. Our researches show that MWPE is an effective method to uncover the dynamic instability of oil-water two-phase flow with high water-cut.
利用高分辨率微波传感器信号表征高含水油水流动动态不稳定性
摘要本研究采用多尺度熵算法对高含水油水两相流中湍流液滴的复杂流动现象进行表征。首先,我们比较了典型非线性系统的多尺度加权排列熵(MWPE)、多尺度近似熵(MAE)、多尺度样本熵(MSE)和多尺度复杂性测度(MCM)。结果表明,MWPE具有良好的尺度变异性和抗噪能力。为此,我们进行了垂直向上高含水油水两相流实验,采集了高分辨率微波谐振传感器的信号,并在此基础上提取了熵率和MWPE均值两个指标。此外,还分析了总流量和含水率对这两个指标的影响。研究表明,MWPE是揭示高含水油水两相流动态不稳定性的有效方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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