A Physical Model for Predicting Annular Film Flow Droplet Entrainment in Heat Transfer Systems

M. J. Holowach, L. Hochreiter, F. Cheung
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引用次数: 0

Abstract

The ability to accurately predict droplet entrainment in annular two-phase flow is required to effectively calculate the interfacial mass, momentum, and energy transfer, which characterizes nuclear reactor safety, system design, analysis, and performance. Most annular flow entrainment models in the open literature are formulated in terms of dimensionless groups, which do not directly account for interfacial instabilities. However, many researchers agree that there is a clear presence of interfacial instability phenomena having a direct impact on droplet entrainment. The present study proposes a model for droplet entrainment, based on the underlying physics of droplet entrainment from co-current upward annular film flow that is characteristic to Light Water Reactor (LWR) safety analysis. The model is developed based on force balance and a stability analysis that can be implemented into a transient three-field (continuous liquid, droplet, and vapor) two-phase heat transfer and fluid flow analysis computer code.Copyright © 2002 by ASME
预测传热系统中环形膜流液滴夹带的物理模型
准确预测环空两相流中液滴携带的能力是有效计算界面质量、动量和能量传递的必要条件,这是核反应堆安全、系统设计、分析和性能的特征。在公开文献中,大多数环空流携带模型都是根据无量纲群来制定的,这并不能直接解释界面的不稳定性。然而,许多研究人员一致认为,界面不稳定现象的明显存在对液滴夹带有直接影响。本研究提出了一种液滴夹带模型,该模型基于轻水反应堆(LWR)安全分析所特有的共流向上环形膜流液滴夹带的基本物理特性。该模型建立在力平衡和稳定性分析的基础上,可以实现瞬态三场(连续液体、液滴和蒸汽)两相传热和流体流动分析的计算机代码。ASME版权所有©2002
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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