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A MECHANISTIC MODEL OF TWO-PHASE PRESSURE DROP IN MICROCHANNELS

机译:微通道中两相压降的力学模型

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A mechanistic model of two-phase pressure drop has been developed for microchannel flow. The primary flow regimes observed in microchannel two-phase flow regime maps were the inertial dominated regime (annular flow) and the surface tension dominated regime (slug or bubbly flow). Mechanistic models of pressure drop for each of these regimes are developed and compared to pressure drop in microchannel flows of four different refrigerants with widely varying fluid properties: R134, R410A, R290 (propane) and R717 (ammonia) of varying hydraulic diameters between 70 microns to 305 microns. The mechanistic model compares favourably to the experimental pressure drop data from microchannel flow measurements with an overall mean deviation of 18.1%. The model is also compared with refrigerant-oil flow of R134a and two different weights of POE oil, using fluid property correlations developed for those mixtures, with a mean deviation of 18.9%. While this accuracy is not stellar, the significance is that no empirical coefficients were needed to close the model.
机译:针对微通道流,建立了两相压降的机械模型。在微通道两相流态图中观察到的主要流态是惯性为主的态(环形流)和表面张力为主的态(团状或气泡流)。建立了每种情况下的压降机理模型,并将其与四种流体特性广泛变化的四种不同制冷剂(R134,R410A,R290(丙烷)和R717(氨))的水力直径在70微米之间变化的微通道流中的压降进行了比较。到305微米。力学模型与微通道流量测量的实验压降数据相比具有优势,总体平均偏差为18.1%。使用为这些混合物开发的流体特性相关性,将该模型与R134a的制冷剂油流量和两种不同重量的POE油进行了比较,平均偏差为18.9%。虽然这种准确性不是很出色,但重要的是,不需要经验系数就可以关闭模​​型。

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