Prediction of friction pressure drop for low pressure two-phase flows on the basis of approximate analytical models


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Wide use of natural circulation loops operating at low redused pressures generates the real need to develop reliable methods for predicting flow regimes and friction pressure drop for two-phase flows in this region of parameters. Although water–air flows at close-to-atmospheric pressures are the most widely studied subject in the field of two-phase hydrodynamics, the problem of reliably calculating friction pressure drop can hardly be regarded to have been fully solved. The specific volumes of liquid differ very much from those of steam (gas) under such conditions, due to which even a small change in flow quality may cause the flow pattern to alter very significantly. Frequently made attempts to use some or another universal approach to calculating friction pressure drop in a wide range of steam quality values do not seem to be justified and yield predicted values that are poorly consistent with experimentally measured data. The article analyzes the existing methods used to calculate friction pressure drop for two-phase flows at low pressures by comparing their results with the experimentally obtained data. The advisability of elaborating calculation procedures for determining the friction pressure drop and void fraction for two-phase flows taking their pattern (flow regime) into account is demonstrated. It is shown that, for flows characterized by low reduced pressures, satisfactory results are obtained from using a homogeneous model for quasi-homogeneous flows, whereas satisfactory results are obtained from using an annular flow model for flows characterized by high values of void fraction. Recommendations for making a shift from one model to another in carrying out engineering calculations are formulated and tested. By using the modified annular flow model, it is possible to obtain reliable predictions for not only the pressure gradient but also for the liquid film thickness; the consideration of droplet entrainment and deposition phenomena allows reasonable corrections to be introduced into calculations. To the best of the authors' knowledge, it is for the first time that the entrainment of droplets from the film surface is taken into consideration in the dispersed–annular flow model.

作者简介

N. Zubov

National Research University Moscow Power Engineering Institute (NRU MPEI)

编辑信件的主要联系方式.
Email: nikita_zubov@mail.ru
俄罗斯联邦, Moscow, 111250

O. Kaban’kov

National Research University Moscow Power Engineering Institute (NRU MPEI)

Email: nikita_zubov@mail.ru
俄罗斯联邦, Moscow, 111250

V. Yagov

National Research University Moscow Power Engineering Institute (NRU MPEI)

Email: nikita_zubov@mail.ru
俄罗斯联邦, Moscow, 111250

L. Sukomel

National Research University Moscow Power Engineering Institute (NRU MPEI)

Email: nikita_zubov@mail.ru
俄罗斯联邦, Moscow, 111250

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