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Droplet actuation on various electrode shapes in electrowetting-based microfluidics

机译:基于电润湿的微流体中各种电极形状的液滴驱动

摘要

Electrowetting has been widely used in digital microfluidics as a reliable actuation method due to its considerable advantages such as the absence of heat generation, rapid switching response, flexibility, and low power consumption. Research on the improvement of this method has turned into one of the attractive fields in the design of fluid handling micro devices. This work presents a combined numerical and experimental study to investigate the effect of electrode shape in electrowetting-based microsystems. A new crescent-shaped electrode is proposed which provides a uniform actuation force at the contact line as well as overlap between the adjacent electrodes. The onset of actuation and droplet mobility on electrode arrays have been investigated. The numerical method is based on the Volume of Fluid technique to track the 3-D interface along with the Laplace equation solver to calculate the electric field in the domain. Furthermore, the dynamic behaviour of tri-phase contact line is modeled using the molecular-kinetic theory. Validation experiments were carried out to characterize the droplet actuation on various electrode shapes. The superior performance of the new electrode shape is demonstrated by comparing the droplet velocity and deformation, as well as contact angle distribution with those of a simple flat electrode. Using crescent electrode, the droplet actuation occurs with less deformation and higher velocities. The velocities obtained by using the crescent electrode are up to 4 times at the onset of the actuation and 2 times at the steady state motion of those on the flat electrode. The novel crescent shape can even actuate the droplets which are not placed on the electrode
机译:电润湿由于其显着的优点(例如,不产生热量,快速切换响应,灵活性和低功耗)而被广泛用作数字微流体技术中的一种可靠的致动方法。对这种方法的改进的研究已经成为流体处理微器件设计中的有吸引力的领域之一。这项工作提出了结合数值和实验研究,以研究电极形状在基于电润湿的微系统中的影响。提出了一种新的月牙形电极,其在接触线上提供均匀的致动力,并且在相邻电极之间重叠。已经研究了电极阵列上的启动和液滴迁移率的开始。数值方法是基于“流体体积”技术来跟踪3-D界面,以及拉普拉斯方程求解器来计算域中的电场。此外,使用分子动力学理论对三相接触线的动态行为进行建模。进行了验证实验以表征各种电极形状上的液滴驱动。通过比较液滴速度和变形以及与简单扁平电极的接触角分布,可以证明新电极形状的优越性能。使用新月形电极时,液滴驱动发生的变形较小且速度较高。通过使用新月形电极获得的速度在启动时高达4倍,在稳态运动中达到2倍,是在扁平电极上的速度。新的新月形甚至可以驱动未放置在电极上的液滴

著录项

  • 作者

    Rajabi Negar;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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