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Numerical Investigation of Successively Nucleating Bubbles During Subcooled Flow Boiling of FC-72 in Microgravity

机译:FC-72在微匍匐中逐渐核解泡沫逐渐成核的数值研究

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For the present study numerical simulations of subcooled flow boiling of FC-72 in microgravity have been conducted to accompany boiling experiments performed in microgravity on the International Space Station (ISS). The numerical domain represents the geometry of the experimental test cell. For all simulations the open source framework OpenFOAM was employed, including extensions to the interFoam solver, which have been developed at the authors' institute. A reference case has been defined applying intermediate values from the experimental parameter range as system parameters. This case has been examined thoroughly with regards to hydrodynamic phenomena and heat transfer during multiple, successive bubble cycles. Based on this reference case, the system parameters flow velocity, input heat flux, pre-heating time, and subcooling of the liquid bulk have been varied, and the impact of these quantities on bubble growth and movement as well as heat transfer have been studied. It was found, that an increased flow rate as well as increased subcooling lead to smaller bubbles and increased time between subsequent nucleations. A high input heat flux, an increased pre-heating time, and a decreased subcooling lead to a rapid cycle of bubble nucleation and coalescence.
机译:对于本研究的研究,FC-72中的脱硫流沸腾的数值模拟,已经进行了在国际空间站(ISS)上的微匍匐中进行的沸腾实验。数值域表示实验测试单元的几何形状。对于所有模拟,采用开源框架OpenFoam,包括在作者研究所开发的国际局部求解器的扩展。已经定义了从实验参数范围作为系统参数的中间值的参考案例。在多个连续的气泡循环期间,已经对流体动力现象和传热进行了彻底检查了这种情况。基于该参考情况,系统参数流速,输入热通量,预热时间和液体体积的过冷却已经变化,研究了这些数量对气泡生长和运动以及传热的影响。发现,流速增加以及增加过冷导致较小的气泡和随后的核切割之间的时间增加。高输入热通量,增加的预热时间和降低的过冷导致泡沫成核和聚结的快速循环。

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