论文标题

在蒸发多组分微螺旋体中通过隔离而不稳定瑞利 - 泰勒的不稳定

Rayleigh-Taylor instability by segregation in an evaporating multi-component microdroplet

论文作者

Li, Yaxing, Diddens, Christian, Segers, Tim, Wijshoff, Herman, Versluis, Michel, Lohse, Detlef

论文摘要

多组分液滴的蒸发与各种应用有关,但由于复杂的物理化学动力学而挑战研究。最近,Li(2018)报道了1,2-己二醇 - 水二元液滴中蒸发触发的隔离。在目前的工作中,我们在1,2-己二醇 - 水二元溶液中添加了0.5 wt%的硅油。这分钟有机硅油浓度大大改变了蒸发过程,因为它触发了从混合物中早期提取1,2-己二醇的早期提取。令人惊讶的是,我们观察到,在液滴蒸发过程中,从无柄液滴的边缘向顶点升起,1,2-己二二二醇形成羽状物的隔离。通过将液滴颠倒(即,通过研究吊坠液滴)取向,羽毛的缺失表明流动结构是由浮力诱导的,浮力驱动了雷利 - 泰勒不稳定(即,由密度差异差异和重力加速驱动)。从微培养基测量中,我们进一步证明了非易失性成分(1,2-己二二醇)的分离阻碍了接触线附近的蒸发,从而导致该区域的Marangoni流动抑制。因此,在长期尺度上,重力效应在流动结构中起着主要的作用,而不是马龙尼(Marangoni)流动。我们将蒸发率的测量与Popov(2005)的扩散模型与Raoult的定律和活动系数进行了比较。这种比较确实证实了硅油触发的非易失性1,2-己二醇的隔离显着延迟了蒸发。通过扩展扩散模型,在该模型中已经实施了隔离的影响,可以很好地描述蒸发。

The evaporation of multi-component droplets is relevant to various applications but challenging to study due to the complex physicochemical dynamics. Recently, Li (2018) reported evaporation-triggered segregation in 1,2-hexanediol-water binary droplets. In this present work, we added 0.5 wt% silicone oil into the 1,2-hexanediol-water binary solution. This minute silicone oil concentration dramatically modifies the evaporation process as it triggers an early extraction of the 1,2-hexanediol from the mixture. Surprisingly, we observe that the segregation of 1,2-hexanediol forms plumes, rising up from the rim of the sessile droplet towards the apex during the droplet evaporation. By orientating the droplet upside down, i.e., by studying a pendant droplet, the absence of the plumes indicates that the flow structure is induced by buoyancy, which drives a Rayleigh-Taylor instability (i.e., driven by density differences & gravitational acceleration). From micro-PIV measurement, we further prove that the segregation of the non-volatile component (1,2-hexanediol) hinders the evaporation near the contact line, which leads to a suppression of the Marangoni flow in this region. Hence, on long time scales, gravitational effects play the dominant role in the flow structure, rather than Marangoni flows. We compare the measurement of the evaporation rate with the diffusion model of Popov (2005), coupled with Raoult's law and the activity coefficient. This comparison indeed confirms that the silicone-oil-triggered segregation of the non-volatile 1,2-hexanediol significantly delays the evaporation. With an extended diffusion model, in which the influence of the segregation has been implemented, the evaporation can be well described.

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