Transmission Line Modeling of Inclined Compressible Fluid Flows

Author:

Omrani Ala E.1,Franchek Matthew A.2,Grigoriadis Karolos3

Affiliation:

1. Department of Mechanical Engineering, University of Houston, 4726 Calhoun Road, N285 Engineering Building 1, Houston, TX 77204 e-mail:

2. Professor Department of Mechanical Engineering, University of Houston, 4726 Calhoun Road, W214 Engineering Building 2, Houston, TX 77204 e-mail:

3. Professor Department of Mechanical Engineering, University of Houston, 4726 Calhoun Road, W212 Engineering Building 2, Houston, TX 77204 e-mail:

Abstract

Compressible fluid flow modeling for inclined lines is a challenging phenomenon due to the nonlinearity of the governing equations and the spatial–temporal dependency of the fluid density. In this paper, the transmission line analytical model is applied to the determination of inclined compressible fluid flow's dynamics. To establish this model, an exact transcendent solution is developed by solving the Navier–Stokes equation in the Laplace domain. A transfer function approximation, allowing the fluid flow transients determination, is recovered from the exact solution using residual calculations. The error resulting from the polynomial fraction approximation of the transfer functions is circumvented through frequency response corrections for the approximation to meet the exact function steady-state behavior. The effect of gravity and fluid compressibility on the fluid flow dynamics as well as the interplay between those two factors are illustrated through the pressure and flow rate's frequency and time responses.

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

Reference21 articles.

1. Ellul, I. R., 2010, “Dynamic Multiphase Simulation: The State of Play,” PSIG Annual Meeting, Bonita Springs, FL, May 11–14, Paper No. PSIG-1005.https://www.onepetro.org/conference-paper/PSIG-1005

2. Liquid Holdup Discretized Solution's Existence and Uniqueness Using a Simplified Averaged One-Dimensional Upward Two-Phase Flow Transient Model;ASME J. Dyn. Syst. Meas. Control,2016

3. Simplified Transient Solution and Simulation of Two-Phase Flow in Pipelines;Chem. Eng. Sci.,1989

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