A fast membrane actuator in the current stabilization regime

I. Uvarov, A. E. Melenev, V. Svetovoy
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Abstract

Microfluidic systems such as labs-on-a-chip or drug delivery devices require a built-in actuator to drive pumps and valves. The electrochemical actuator is a promising option due to its compact size, low power consumption and high integration capability, but long time of gas termination makes this device rather slow. Recently, the actuator of a new type was demonstrated, which is based on the electrolysis of water performed by microsecond voltage pulses of alternating polarity (AP). It operates several orders of magnitude faster than the conventional DC actuator, but extreme operation conditions lead to the electrode degradation and rapid decrease of the performance. In this work, we demonstrate the long-term operation of the actuator without significant loss of the stroke. This result is achieved due to a new working regime, in which the time interval between series of AP pulses is filled with single polarity (SP) pulses, in contrast with the normal regime, where the SP pulses are not used. The new regime is realized by a specially developed pulse generator that tracks the current flowing through the electrodes and adjusts the amplitude of SP pulses to stabilize the current at a given level. We verify the current stabilization regime at the actuator with the oxidized Ti electrodes and compare it to the normal operation.
在当前稳定状态下的快速膜致动器
微流体系统,如芯片上的实验室或药物输送设备需要一个内置的执行器来驱动泵和阀门。电化学执行器具有体积小、功耗低、集成度高等优点,是一种很有前途的选择,但气体终止时间长,速度慢。最近,一种新型的执行器被证明是基于微秒交替极性电压脉冲对水进行电解的。它的工作速度比传统的直流执行器快几个数量级,但极端的工作条件会导致电极退化,性能迅速下降。在这项工作中,我们展示了执行器的长期运行而没有显着损失的行程。这一结果的实现是由于一种新的工作模式,在这种模式下,一系列AP脉冲之间的时间间隔被单极性(SP)脉冲填充,而在正常模式下,SP脉冲不被使用。新的状态是由一个专门开发的脉冲发生器实现的,它跟踪流过电极的电流,并调整SP脉冲的幅度,以将电流稳定在给定的水平。我们用氧化钛电极验证了致动器的电流稳定状态,并将其与正常操作进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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