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Critical heat fluxes for subcooled flow boiling in optimised microchannels

机译:优化微通道中的临界热量沸腾的临界热量沸腾

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摘要

Critical heat fluxes (departure from nucleate boiling, DNB) for optimised rectangular microchannels were computed by carrying out simulations using computational fluid dynamics (CFD, ANSYS) non-equilibrium boiling model (the model is an extension of heat flux partitioning model for modelling up to departure from nucleate boiling) for subcooled flow boiling, at velocity ranges of 1.0-1.5 and 1.5-2.0 m/s and heat fluxes of 300 to 500 W/cm~2. The flow was highly subcooled at inlet temperature of 25°C using deionised water as the cooling fluid and aluminium as the heat sink material. The results showed that the microchannels can be operated beyond the heat fluxes that they were optimised, up to their critical heat fluxes before the onset of departure from nucleate boiling or CHF. The numerical code for heat flux partitioning model (RPI) was validated by the available experimental data and the agreement showed the capability of the model to predict accurately subcooled flow boiling in microchannels.
机译:通过使用计算流体动力学(CFD,ANSYS)非平衡沸腾模型进行模拟来计算优化矩形微通道的临界热通量(偏离核心沸腾,DNB)(模型是用于建模的热通量分配模型的延伸脱离核心沸腾)对于速度沸腾,速度范围为1.0-1.5和1.5-2.0 m / s,热通量为300至500 w / cm〜2。使用去离子水作为冷却流体和铝作为散热材料,将流动高度过冷25℃。结果表明,微通道可以超出它们被优化的热通量,直至核心沸腾或烯核开始前的临界热量。通过可用的实验数据验证了热通量分区模型(RPI)的数值代码,协议显示了模型的能力,以预测微通道中精确过冷流量沸腾。

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