A Generalized Reduced-Order Dynamic Model for Two-Phase Flow in Pipes

Author:

Chaari Majdi1,Fekih Afef1,Seibi Abdennour C.2,Ben Hmida Jalel3

Affiliation:

1. Department of Electrical and Computer Engineering, University of Louisiana at Lafayette, P.O. Box 43890, Lafayette, LA 70504-3890 e-mail:

2. Mem. ASME Department of Petroleum Engineering, University of Louisiana at Lafayette, P.O. Box 44690, Lafayette, LA 70504 e-mail:

3. Mem. ASME Department of Mechanical Engineering, University of Louisiana at Lafayette, P.O. Box 43678, Lafayette, LA 70504 e-mail:

Abstract

Real-time monitoring of pressure and flow in multiphase flow applications is a critical problem given its economic and safety impacts. Using physics-based models has long been computationally expensive due to the spatial–temporal dependency of the variables and the nonlinear nature of the governing equations. This paper proposes a new reduced-order modeling approach for transient gas–liquid flow in pipes. In the proposed approach, artificial neural networks (ANNs) are considered to predict holdup and pressure drop at steady-state from which properties of the two-phase mixture are derived. The dynamic response of the mixture is then estimated using a dissipative distributed-parameter model. The proposed approach encompasses all pipe inclination angles and flow conditions, does not require a spatial discretization of the pipe, and is numerically stable. To validate our model, we compared its dynamic response to that of OLGA©, the leading multiphase flow dynamic simulator. The obtained results showed a good agreement between both models under different pipe inclinations and various levels of gas volume fractions (GVF). In addition, the proposed model reduced the computational time by four- to sixfolds compared to OLGA©. The above attribute makes it ideal for real-time monitoring and fluid flow control applications.

Publisher

ASME International

Subject

Mechanical Engineering

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5. Modisette, L., and Whaley, R. S., 1983, “Transient Two-Phase Flow,” PSIG Annual Meeting, Detroit, MI, Oct. 27–28, pp. 27–28.https://www.onepetro.org/conference-paper/PSIG-8302

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