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Continuous versus pulsating flow boiling. Experimental comparison, visualization, and statistical analysis

机译:连续与脉动流沸腾。 实验比较,可视化和统计分析

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摘要

This experimental study investigates an active method for flow boiling heat transfer enhancement by means of fluid flow pulsation. The hypothesis is that pulsations increase the flow boiling heat transfer by means of better bulk fluid mixing, increased wall wetting, and flow-regime destabilization. The fluid pulsations are introduced by a flow modulating expansion device and are compared with continuous flow by a stepper-motor expansion valve in terms of time-averaged heat transfer coefficient. The cycle time ranges from 1 to 9 s for the pulsations. The time-averaged heat transfer coefficients are reduced from transient measurements immediately downstream of the expansion valves at low vapor qualities. The results show that the pulsations improve the time-averaged heat transfer coefficient by 3.2% on average at low cycle time (1 to 2 s), whereas the pulsations may reduce the time-averaged heat transfer coefficient by as much as 8% at high heat flux (q = 35 kW/m(2)) and cycle time (8 s). The latter reduction is attributed to a significant dry-out that occurs when the flow modulating expansion valve is closed. Additionally, the effect of fluid flow pulsations is found to be statistically significant, disregarding the lowest heat flux measurements.
机译:该实验研究通过流体流动脉动研究了流沸热传递增强的活性方法。假设是通过更好的散装流体混合,增加的壁润湿和流量稳定化增加脉动增加流量沸腾热传递。流体脉动由流量调制膨胀装置引入,并在时间平均传热系数方面与步进电动机膨胀阀连续流动进行比较。循环时间为脉动的1至9秒。在低蒸气质量下,从膨胀阀的下游的瞬态测量减小了时间平均传热系数。结果表明,在低循环时间(1至2秒),脉动平均将时间平均传热系数提高了3.2%,而脉动可以将时间平均传热系数降低高达8%热通量(Q& = 35 kW / m(2))和循环时间(8 s)。后一种减少归因于在流量调制膨胀阀关闭时发生的显着干扰。另外,发现流体流动脉动的效果在统计上显着,忽略了最低的热通量测量。

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