论文标题
蒸发二进制微螺旋体中相位分离的生理化学流体动力学
Physiochemical hydrodynamics of the phase segregation in an evaporating binary microdroplet
论文作者
论文摘要
通过选择性蒸发触发的相分离可以在多组分系统中出现,从而导致复杂的生理流体动力学。最近,Li等人。 (Phys。Rev.Lett。,第120卷,2018年,224501卷)和Kim&Stone(J. Fluid Mech。,第850卷,2018年,2018年,第769-783页)报告了蒸发二进制液滴的隔离行为(即脱粒)。在这项工作中,通过实验和理论分析,我们研究了相分离发生后的流动动力学。例如,我们采用1,2-己二醇 - 水二元液滴系统。首先,我们通过实验揭示了蒸发过程的总体生理化学流体动力学,包括分离行为和接近底物的流动结构。通过量化径向流的演变,我们确定了蒸发过程的三个连续生命阶段。在第一阶段,观察到径向向外流。它是由Marangoni效应驱动的。在向II阶段的过渡时,径向流从接触线开始部分逆转。这种流量破坏了轴向对称性,并且非常受隔离本身驱动。最后,在第三阶段,随着蒸发逐渐停止,流量会衰减。在此阶段,种族隔离已经成长为整个液滴,流动再次受到Marangoni效应的控制。所得的Marangoni流动均匀地匀浆了整个液滴上围绕的挥发性水的分布。
Phase segregation triggered by selective evaporation can emerge in multicomponent systems, leading to complex physiochemical hydrodynamics. Recently, Li et al. (Phys. Rev. Lett., vol. 120, 2018, 224501) and Kim & Stone (J. Fluid Mech., vol. 850, 2018, pp. 769-783) reported a segregative behavior (i.e., demixing) in an evaporating binary droplet. In this work, by means of experiments and theoretical analysis, we investigate the flow dynamics after the occurrence of the phase segregation. As example, we take the 1,2-hexanediol-water binary droplet system. First, we experimentally reveal the overall physiochemical hydrodynamics of the evaporation process, including the segregative behavior and the resulting flow structure close to the substrate. By quantifying the evolution of the radial flow, we identify three successive life stages of the evaporation process. At Stage I, a radially outward flow is observed. It is driven by the Marangoni effect. At the transition to Stage II, the radial flow partially reverses, starting from the contact line. This flow breaks the axial symmetry and remarkably is driven by the segregation itself. Finally at Stage III, the flow decays as the evaporation gradually ceases. At this stage the segregation has grown to the entire droplet, and the flow is again controlled by the Marangoni effect. The resulting Marangoni flow homogenizes the distribution of the entrapped volatile water over the whole droplet.