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首页> 外文期刊>IEICE Transactions on Electronics >Driving Voltage Analysis For Fast Response Of Waveguide Optical Switch Based On Movement Of Liquid Droplet Driven By Electrostatic Force
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Driving Voltage Analysis For Fast Response Of Waveguide Optical Switch Based On Movement Of Liquid Droplet Driven By Electrostatic Force

机译:基于静电力驱动液滴运动的光波导快速响应驱动电压分析

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摘要

The electrostatic force required for the driving of liquid droplet injected in a microchannei was studied to obtain the guiding principle to reduce the driving voltage of waveguide optical switch based on the movement of droplet. We analytically calculated the relation between the threshold voltage and velocity of droplet and the surface roughness of microchannei, and clarified some unconfirmed parameters by comparing experimental results and aeromechanical analysis. The driving of droplet in a microchannei was best analyzed using the Hagen-Poiseuille flow theory, taking into account the movement of both ends of the droplet. When the droplet is driven by some external force, a threshold of the external force occurs in the starting of movement, and hysteresis occurs in the contact angle of the droplet to the side wall of the microchannei. The hysteresis of contact angle is caused by the roughness of side wall. In our experiment, the threshold voltage ranged from 200 to 350 V and the switching time from 34 to 36 ms. The velocity of droplet was evaluated to be 0.3-0.4 mm/s from these experimental results. On the other hand, the measured angle distribution of side wall roughness ranged from 30 to 110 degrees, and the threshold voltage was evaluated to be 100-320 V, showing a good agreement with experimental results. The reduction of threshold voltage can be realized by smoothing the side wall roughness of microchannei. The switching time of 10 ms, which is required for the optical stream switch, can be obtained by shortening the horizontal spot size down to 1.5μm.
机译:研究了驱动微通道中注入的液滴所需的静电力,以得出基于液滴运动降低波导光开关驱动电压的指导原理。我们通过分析实验结果和空气力学分析,计算了阈值电压和液滴速度与微通道表面粗糙度之间的关系,并澄清了一些不确定的参数。考虑到液滴两端的运动,最好使用Hagen-Poiseuille流动理论来分析微通道中的液滴驱动。当液滴由某种外力驱动时,在运动开始时出现外力的阈值,并且在液滴与微通道侧壁的接触角中出现滞后。接触角的迟滞是由侧壁的粗糙度引起的。在我们的实验中,阈值电压范围为200至350 V,开关时间为34至36 ms。从这些实验结果估计液滴的速度为0.3-0.4mm / s。另一方面,测得的侧壁粗糙度的角度分布范围为30至110度,并且阈值电压被评估为100-320V,显示出与实验结果良好的一致性。通过平滑微通道的侧壁粗糙度可以实现阈值电压的降低。通过将水平光点尺寸减小到1.5μm,可以获得光流切换所需的10 ms切换时间。

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