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首页> 外文期刊>Experimental Thermal and Fluid Science: International Journal of Experimental Heat Transfer, Thermodynamics, and Fluid Mechanics >Microbubble emission boiling in scbcooled pool boiling and the role of Marangoni convection in its formation
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Microbubble emission boiling in scbcooled pool boiling and the role of Marangoni convection in its formation

机译:scbcooled池沸腾中的微气泡排放沸腾及其在对流过程中Marangoni对流的作用

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An experimental apparatus was designed and fabricated to visually investigate microbubble emission boiling (MEB) phenomena characterized by its extremely high heat dissipation capacity and potential application in the field of thermal engineering. The heating element was a cone copper block with an upper cylindrical section of 10mm in diameter. A high-speed video camera (Photron: Fastcam SA5) was employed for recording the scenario of MEB. Visualized results show that both the subcooling and noncondensable gas have significant effects on MEB. Remarkable MEB could be observed when the liquid subcooling exceeds 25K, with a maximum heat flux about 9MW/m~2 at the subcooling of 60K. In order to explore the mechanism of MEB, numerical simulations were carried out to obtain the velocity field near a single vapor film on the same heating surface to that in the experiments with the software of "FLUENT". Simulation results indicates that there exists Marangoni convection around the film under subcooled condition, which is influenced significantly by subcooling as well as thermal properties of the liquid. Strong Marangoni convection around the vapor film and the condensation at interface would induce interfacial waves, likely resulting in the collapse of the film in the case of high subcooling. As a result, it is reasonable to conclude that Marangoni convection is probably one of the key factors triggering the occurrence of MEB.
机译:设计和制造了一种实验设备,以目视研究微气泡发射沸腾(MEB)现象,其特征是其极高的散热能力和在热工程领域的潜在应用。加热元件是圆锥形的铜块,其上圆柱部分的直径为10mm。高速摄像机(Photron:Fastcam SA5)用于记录MEB的情况。可视化结果表明,过冷和不可冷凝气体均对MEB产生重大影响。当液体过冷度超过25K时,可以观察到明显的MEB,在60K过冷度时,最大热通量约为9MW / m〜2。为了探索MEB的机理,使用“ FLUENT”软件进行了数值模拟以获得与实验中相同的加热表面上的单个蒸气膜附近的速度场。仿真结果表明,在过冷条件下,薄膜周围存在Marangoni对流,这受过冷和液体的热性能的影响很大。蒸气膜周围强烈的Marangoni对流以及界面处的冷凝会引起界面波,在高度过冷的情况下,可能导致膜破裂。因此,可以合理地得出结论,Marangoni对流可能是引发MEB发生的关键因素之一。

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