Theodorou Nicolas T, Sourais Alexandros G, Papathanasiou Athanasios G
School of Chemical Engineering, National Technical University of Athens, 15780 Athens, Greece.
Materials (Basel). 2023 Nov 23;16(23):7284. doi: 10.3390/ma16237284.
The electrowetting-induced detachment of droplets from solid surfaces is important for numerous applications in the fields of heat transfer and fluid mechanics. The forced oscillations of droplets on solid surfaces and their ability to detach are studied. In this study, the process is efficiently simulated by implementing a powerful methodology developed by our team. Our results agree with experiments showing that optimal detachment, in terms of actuation energy, is achieved when the application of voltage is synchronized with the spreading time of the droplet. Under these conditions, the droplet oscillates with a period close to that of a mirrored Rayleigh droplet. The relationship between the droplet's oscillation period and its physical properties is examined. During voltage-droplet synchronization, the droplet's ability to detach depends mostly on its contact angle, its viscosity, and the applied voltage. An energy analysis is also conducted, revealing how energy is supplied to the droplet by electrowetting-induced detachment.
电润湿诱导液滴从固体表面脱离,这对于传热和流体力学领域的众多应用都很重要。研究了固体表面上液滴的强迫振荡及其脱离能力。在本研究中,通过实施我们团队开发的一种强大方法,对该过程进行了有效模拟。我们的结果与实验结果一致,表明在电压施加与液滴铺展时间同步时,就驱动能量而言可实现最佳脱离。在这些条件下,液滴以接近镜像瑞利液滴的周期振荡。研究了液滴振荡周期与其物理性质之间的关系。在电压 - 液滴同步期间,液滴的脱离能力主要取决于其接触角、粘度和施加的电压。还进行了能量分析,揭示了电润湿诱导脱离如何向液滴供应能量。