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Condensation Pressure Drop in Circular Microchannels

机译:圆形微通道中的冷凝压降

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This paper presents a multiple flow-regime model for pressure drop during the condensation of refrigerant R134a in horizontal microchannels. Two-phase pressure drops were measured in five circular channels ranging in hydraulic diameter from 0.5 mm to 4.91 mm. For each tube under consideration, pressure drop measurements were first taken over the entire range of qualities from 100% vapor to 100% liquid for jive different refrigerant mass fluxes between 150 kg/m~2-s and 750 kg/m~2-s. Results from the previous work by the authors on condensation flow mechanisms in microchannel geometries were used to assign the applicable flow regime to the data points. Pressure drop models for intermittent and annular flow reported earlier by the authors were modified and combined to develop a comprehensive model that addresses the entire progression of the condensation process from the vapor phase to the liquid phase. This combined model accurately predicts condensation pressure drops in the annular, disperse wave, mist, discrete wave, and intermittent flow regimes. Overlap and transition regions between the respective regimes are also addressed using an appropriate interpolation technique that results in relatively smooth transitions between the predicted pressure drops. The resulting model predicts 82% of the data within ±20%.
机译:本文提出了在水平微通道中制冷剂R134a冷凝过程中压降的多流态模型。在五个圆形通道中测量了两相压降,五个圆形通道的水力直径范围为0.5毫米至4.91毫米。对于所考虑的每个管子,首先在从100%蒸气到100%液体的整个质量范围内进行压降测量,以获取150 kg / m〜2-s和750 kg / m〜2-s之间不同的制冷剂质量通量。作者先前关于微通道几何结构中冷凝水流动机理的研究结果被用来为数据点分配适用的流动状态。作者先前报告的间歇性和环形流动的压降模型已经过修改和组合,以开发一个综合模型,该模型可解决冷凝过程从气相到液相的整个过程。该组合模型可准确预测环形,分散波,雾,离散波和间歇流动状态下的凝结压降。还使用适当的插值技术解决了各个状态之间的重叠和过渡区域,该插值技术可在预测的压降之间实现相对平稳的过渡。所得模型预测82%的数据在±20%以内。

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