Investigation of the Influence of Elevated Pressure on Subcooled Boiling Flow—Model Evaluation Toward Generic Approach

Author:

Vahaji Sara1,Chi Pok Cheung Sherman1,Heng Yeoh Guan2,Tu Jiyuan3

Affiliation:

1. School of Aerospace, Mechanical and Manufacturing Engineering (SAMME), RMIT University, Melbourne, VIC 3083, Australia e-mail:

2. School of Mechanical and Manufacturing Engineering, University of New South Wales, ANSTO, Sydney, NSW 2052, Australia e-mail:

3. Professor School of Aerospace, Mechanical and Manufacturing Engineering (SAMME), RMIT University, Melbourne, VIC 3083, Australia e-mail:

Abstract

Modeling subcooled boiling flows in vertical channels has relied heavily on the utilization of empirical correlations for the active nucleation site density, bubble departure diameter, and bubble departure frequency. Following the development and application of mechanistic modeling at low pressures, the capability of the model to resolve flow conditions at elevated pressure up to 10 bar is thoroughly assessed and compared with selected empirical models. Predictions of the mechanistic and selected empirical models are validated against two experimental data at low to elevated pressures. The results demonstrate that the mechanistic model is capable of predicting the heat and mass transfer processes. In spite of some drawbacks of the currently adopted force balance model, the results still point to the great potential of the mechanistic model to predict a wide range of flow conditions in subcooled boiling flows.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference45 articles.

1. An Experimental Investigation of True Volumetric Vapor Content With Subcooled Boiling in Tubes;Therm. Eng.,1982

2. Experimental Investigation on Heat Transfer Characteristics of Smooth Tube With Downward Flow;Int. J. Heat Mass Transfer,2014

3. Interfacial Area Transport of Vertical Upward Steam-Water Two-Phase Flow in an Annular Channel at Elevated Pressures;Int. J. Heat Mass Transfer,2013

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