Flow-pattern identification and nonlinear dynamics of gas-liquid two-phase flow in complex networks

Zhongke Gao and Ningde Jin
Phys. Rev. E 79, 066303 – Published 4 June 2009

Abstract

The identification of flow pattern is a basic and important issue in multiphase systems. Because of the complexity of phase interaction in gas-liquid two-phase flow, it is difficult to discern its flow pattern objectively. In this paper, we make a systematic study on the vertical upward gas-liquid two-phase flow using complex network. Three unique network construction methods are proposed to build three types of networks, i.e., flow pattern complex network (FPCN), fluid dynamic complex network (FDCN), and fluid structure complex network (FSCN). Through detecting the community structure of FPCN by the community-detection algorithm based on K-mean clustering, useful and interesting results are found which can be used for identifying five vertical upward gas-liquid two-phase flow patterns. To investigate the dynamic characteristics of gas-liquid two-phase flow, we construct 50 FDCNs under different flow conditions, and find that the power-law exponent and the network information entropy, which are sensitive to the flow pattern transition, can both characterize the nonlinear dynamics of gas-liquid two-phase flow. Furthermore, we construct FSCN and demonstrate how network statistic can be used to reveal the fluid structure of gas-liquid two-phase flow. In this paper, from a different perspective, we not only introduce complex network theory to the study of gas-liquid two-phase flow but also indicate that complex network may be a powerful tool for exploring nonlinear time series in practice.

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  • Received 22 November 2008

DOI:https://doi.org/10.1103/PhysRevE.79.066303

©2009 American Physical Society

Authors & Affiliations

Zhongke Gao and Ningde Jin*

  • School of Electrical Engineering and Automation, Tianjin University, Tianjin 300072, People’s Republic of China

  • *Corresponding author; ndjin@tju.edu.cn

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Issue

Vol. 79, Iss. 6 — June 2009

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