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Bubble spreading during the boiling crisis: modelling and experimenting in microgravity

机译:沸腾危机中的气泡扩散:微重力的建模和实验

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Boiling is a very efficient way to transfer heat from a heater to the liquid carrier. We discuss the boiling crisis, a transition between two regimes of boiling: nucleate and film boiling. The boiling crisis results in a sharp decrease in the heat transfer rate, which can cause a major accident in industrial heat exchangers. In this communication, we present a physical model of the boiling crisis based on the vapor recoil effect. Under the action of the vapor recoil the gas bubbles begin to spread over the heater thus forming a germ for the vapor film. The vapor recoil force not only causes its spreading, it also creates a strong adhesion to the heater that prevents the bubble departure, thus favoring the further spreading. Near the liquid-gas critical point, the bubble growth is very slow and allows the kinetics of the bubble spreading to be observed. Since the surface tension is very small in this regime, only microgravity conditions can preserve a convex bubble shape. In the experiments both in the Mir space station and in the magnetic levitation facility, we directly observed an increase of the apparent contact angle and spreading of the dry spot under the bubble. Numerical simulations of the thermally controlled bubble growth show this vapor recoil effect too thus confirming our model of the boiling crisis.
机译:沸腾是一种将热量从加热器传递到液体载体的非常有效的方法。我们讨论沸腾危机,这是两种沸腾方式之间的过渡:成核和薄膜沸腾。沸腾危机导致传热速率急剧下降,这可能在工业热交换器中造成重大事故。在此交流中,我们基于蒸气反冲效应提出了沸腾危机的物理模型。在蒸气反冲的作用下,气泡开始散布在加热器上,从而形成蒸气膜的细菌。蒸气反冲力不仅导致其扩散,而且还与加热器形成了牢固的附着力,从而防止了气泡的脱离,从而有利于进一步扩散。在液化气临界点附近,气泡的生长非常缓慢,可以观察到气泡扩散的动力学。由于在这种情况下表面张力非常小,因此只有微重力条件才能保持凸泡形状。在和平号空间站和磁悬浮设施中的实验中,我们直接观察到气泡下表观接触角的增加和干点的扩展。热控制气泡生长的数值模拟也显示出这种蒸气反冲效应,从而证实了我们的沸腾危机模型。

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