Interfacial Area Transport Equation and Implementation Into Two-Fluid Model

Author:

Ishii Mamoru1,Kim Seungjin2,Sun Xiaodong3,Hibiki Takashi1

Affiliation:

1. School of Nuclear Engineering, Purdue University, 400 Central Drive, West Lafayette, IN 47907-2017

2. Department of Mechanical and Nuclear Engineering, Pennsylvania State University, 230 Reber Building, University Park, PA 16802

3. Department of Mechanical Engineering, Ohio State University, 201 West 19th Avenue, Columbus, OH 43210

Abstract

A dynamic treatment of interfacial area concentration has been studied over the last decade by employing the interfacial area transport equation. When coupled with the two-fluid model, the interfacial area transport equation replaces the flow regime dependent correlations for interfacial area concentration and eliminates potential artificial bifurcation or numerical oscillations stemming from these static correlations. An extensive database has been established to evaluate the model under various two-phase flow conditions. These include adiabatic and heated conditions, vertical and horizontal flow orientations, round, rectangular, annulus, and 8×8 rod-bundle channel geometries, and normal-gravity and reduced-gravity conditions. Currently, a two-group interfacial area transport equation is available and applicable to comprehensive two-phase flow conditions spanning from bubbly to churn-turbulent flow regimes. A framework to couple the two-group interfacial area transport equation with the modified two-fluid model is established in view of multiphase computational fluid dynamics code applications as well as reactor system analysis code applications. The present study reviews the current state-of-the-art in the development of the interfacial area transport equation, available experimental databases, and the analytical methods to incorporate the interfacial area transport equation into the two-fluid model.

Publisher

ASME International

Subject

Fluid Flow and Transfer Processes,General Engineering,Condensed Matter Physics,General Materials Science

Reference46 articles.

1. Average Volumetric Concentration in Two-Phase Flow Systems;Zuber;ASME J. Heat Transfer

2. Mortensen, G. A. , 1995, “Long-Term Plan for NRC Thermal-Hydraulic Code Development,” Report to U.S. NRC Under Contract No. DE-AC07-94ID13223.

3. Thermal-Hydraulic Modeling Needs for Passive Reactors;Kelly

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