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A zero-dimensional dryout heat flux model based on mechanistic interfacial friction models for two-phase flow regimes with channel flow in a packed bed

机译:一种基于机械界面摩擦模型的零维干热通量模型,用于两相流动状态与封装床的通道流动

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In this paper, two-phase drag models for a packed bed of uniform-size particles were suggested, and they were applied to the calculation of pressure drop and dryout heat flux. We provided physical basis for the two-phase flow regime model through the analysis of the interfacial friction (F-i). The suggested model provides flow patterns representing bubbly, slug, and channel flow and considering three criteria including d(2)F(i)/d alpha(2) = 0, F-i = maximum, and F-i = 0. The results obtained from the three criteria were drawn with several observation-based experimental ones to generate the flow regime map (void fraction vs. particle diameter). Through the current flow regime map, we clearly saw the existence of channel flow in a packed bed with particles smaller than around 3.5 mm. Then, mechanistic interfacial friction models were developed on basis of the current two-phase flow map of bubbly flow, slug flow, channel flow and annular flow. The suggested interfacial friction models were validated with top- and bottom-flooding air-water experiments and boiling experiments. We found out that the capability of pressure drop estimation by the current model were significantly improved for a bed with small particles. Finally, a zero-dimensional dryout heat flux (DHF) model was derived using the suggested interfacial friction models, and validated against DHF experimental data for beds with 1-D configuration. The rootmean-square error (RMSE) of the suggested DHF model was 35%, which was the smallest among the RMSEs of the previous DHF models. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在本文中,提出了用于堆叠均匀颗粒床的两相阻力模型,并应用于压降和干扰热通量的计算。我们通过分析界面摩擦(F-I)来为两相流动制度模型提供物理基础。所建议的模型提供了表示气泡,SLUG和通道流动的流动模式,并考虑三个标准,包括D(2)F(i)/ d alpha(2)= 0,Fi =最大值,并且= 0.从中获得的结果用几种基于观察结果的实验​​结果绘制三个标准,以产生流动制度图(空隙率与粒径)。通过当前的流动制度图,我们清楚地看到了封装床中的通道流存在,颗粒小于3.5毫米。然后,基于电流的起泡流动,块流,通道流和环形流动的电流两相流程图开发机械界面摩擦模型。建议的界面摩擦模型验证了顶部和底部泛滥的空气实验和沸腾实验。我们发现,对于具有小颗粒的床,目前模型的压降估计能力显着改善。最后,使用建议的界面摩擦模型来得出零维度干扰热通量(DHF)模型,并针对具有1-D配置的DHF实验数据验证。建议的DHF模型的rootmean-square error(RMSE)为35%,这是先前DHF模型的RMSE中最小的。 (c)2019 Elsevier Ltd.保留所有权利。

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