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A Ghost Fluid/Level Set Method for boiling flows and liquid evaporation: Application to the Leidenfrost effect

机译:用于沸腾流动和液体蒸发的幽灵流体/水平设定方法:应用于莱顿弗罗斯特效应

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The development of numerical methods for the direct numerical simulation of two-phase flows with phase change, in the framework of interface capturing or interface tracking methods, is the main topic of this study. We propose a novel numerical method, which allows dealing with both evaporation and boiling at the interface between a liquid and a gas. Indeed, in some specific situations involving very heterogeneous thermodynamic conditions at the interface, the distinction between boiling and evaporation is not always possible. For instance, it can occur for a Leidenfrost droplet; a water drop levitating above a hot plate whose temperature is much higher than the boiling temperature. In this case, boiling occurs in the film of saturated vapor which is entrapped between the bottom of the drop and the plate, whereas the top of the water droplet evaporates in contact of ambient air. The situation can also be ambiguous for a superheated droplet or at the contact line between a liquid and a hot wall whose temperature is higher than the saturation temperature of the liquid. In these situations, the interface temperature can locally reach the saturation temperature (boiling point), for instance near a contact line, and be cooler in other places. Thus, boiling and evaporation can occur simultaneously on different regions of the same liquid interface or occur successively at different times of the history of an evaporating droplet. Standard numerical methods are not able to perform computations in these transient regimes, therefore, we propose in this paper a novel numerical method to achieve this challenging task. Finally, we present several accuracy validations against theoretical solutions and experimental results to strengthen the relevance of this new method. (C) 2016 Elsevier Inc. All rights reserved.
机译:在界面捕获或界面跟踪方法的框架内,开发用于对具有相变的两相流进行直接数值模拟的数值方法是本研究的主题。我们提出了一种新颖的数值方法,该方法可以处理液体和气体之间的界面处的蒸发和沸腾。实际上,在某些界面处涉及非常不均匀的热力学条件的特定情况下,沸腾和蒸发之间的区别并不总是可能的。例如,它可能发生在莱顿弗罗斯特液滴上。悬浮在温度远高于沸腾温度的加热板上的水滴。在这种情况下,沸腾发生在夹在液滴底部和板之间的饱和蒸气膜中,而水滴的顶部在与环境空气接触时蒸发。对于过热的液滴或在液体与温度高于液体饱和温度的热壁之间的接触线处,情况也可能是模棱两可的。在这些情况下,界面温度可以局部达到饱和温度(沸点),例如在接触线附近,而在其他地方则较低。因此,沸腾和蒸发可以同时发生在同一液体界面的不同区域上,或者可以连续发生在蒸发液滴形成过程的不同时间。标准数值方法无法在这些瞬态状态下执行计算,因此,我们在本文中提出了一种新颖的数值方法来实现这一具有挑战性的任务。最后,我们提出了一些针对理论解和实验结果的准确性验证,以加强这种新方法的相关性。 (C)2016 Elsevier Inc.保留所有权利。

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