Multi-Scale Morphological Analysis of Conductance Signals in Vertical Upward Gas–Liquid Two-Phase Flow

Author:

Lian Enyang1,Ren Yingyu1,Han Yunfeng1,Liu Weixin1,Jin Ningde1,Zhao Junying2

Affiliation:

1. School of Electrical Engineering and Automation, Tianjin University, Tianjin 300072, China

2. Electronic Technology Department, Tianjin Vocational College of Electronics and Information Technology, Tianjin 300350, China

Abstract

Abstract The multi-scale analysis is an important method for detecting nonlinear systems. In this study, we carry out experiments and measure the fluctuation signals from a rotating electric field conductance sensor with eight electrodes. We first use a recurrence plot to recognise flow patterns in vertical upward gas–liquid two-phase pipe flow from measured signals. Then we apply a multi-scale morphological analysis based on the first-order difference scatter plot to investigate the signals captured from the vertical upward gas–liquid two-phase flow loop test. We find that the invariant scaling exponent extracted from the multi-scale first-order difference scatter plot with the bisector of the second-fourth quadrant as the reference line is sensitive to the inhomogeneous distribution characteristics of the flow structure, and the variation trend of the exponent is helpful to understand the process of breakup and coalescence of the gas phase. In addition, we explore the dynamic mechanism influencing the inhomogeneous distribution of the gas phase in terms of adaptive optimal kernel time–frequency representation. The research indicates that the system energy is a factor influencing the distribution of the gas phase and the multi-scale morphological analysis based on the first-order difference scatter plot is an effective method for indicating the inhomogeneous distribution of the gas phase in gas–liquid two-phase flow.

Publisher

Walter de Gruyter GmbH

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy,Mathematical Physics

Reference43 articles.

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2. G. Hetsroni, Handbook of Multiphase Systems, Hemisphere, New York 1982.

3. C. T. Crowe, Multiphase Flow Handbook, CRC Press, New York 2006.

4. G. B. Wallis, One-Dimensional Two-Phase Flow, McGraw-Hill Book Company, New York 1969.

5. D. Barnea, O. Shoham, and Y. Taitel, Int. J. Multiphase Flow 6, 387 (1980).

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