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Thermal Modulation and Instability of Newtonian Liquid Microjets

机译:牛顿液体微射精的热调制与不稳定性

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Liquid microjets are inherently unstable and can be broken into droplets by various means including modulation of pressure, velocity, and/or fluid properties. In this presentation, we discuss the controlled breakup of viscous microjets via thermal modulation of surface tension. Such modulation has been implemented using CMOS/MEMS technology by integrating resistive heating elements around each orifice of a manifold as depicted in Fig. 1. When the heating elements are electrically pulsed, the thermal energy they produce penetrates the surface of the microjet, and is carried downstream to produce a spatial variation of surface tension along the length of the jet, which ultimately causes breakup and drop formation (Figs. 1 and 2). Using this process, microfluidic devices have been fabricated with thousands of individually modulated microjets that can produce steady steams of picoliter-sized droplets at kilohertz frequency rates. In this presentation we review methods for analyzing such devices.
机译:液体微目型本质上是不稳定的,并且可以通过各种方式分解成液滴,包括调制压力,速度和/或流体性质。在本文中,我们讨论了通过表面张力的热调制来讨论粘性微进程的受控分解。通过CMOS / MEMS技术通过在歧管的每个孔围绕歧管的电阻加热元件整合如图1所示的电阻加热元件来实现这种调制。当加热元件电脉冲时,它们产生的热能渗透微目型的表面,并且是下游沿着射流的长度产生表面张力的空间变化,这最终导致破碎和滴形成(图1和2)。使用该过程,已经用数千个单独调制的微进程制成了微流体装置,可以以千赫兹频率速率产生Picoliter尺寸的液滴的稳定蒸汽。在本演示文献中,我们审查了分析这些设备的方法。

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