首页> 外文期刊>JALA: Journal of the Association for Laboratory Automation >Real-Time Remote Control of Artificial Cilia Actuation Using Fingertip Drawing for Efficient Micromixing
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Real-Time Remote Control of Artificial Cilia Actuation Using Fingertip Drawing for Efficient Micromixing

机译:指尖绘制的人工纤毛驱动实时远程控制,实现高效微混合

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摘要

Low-efficiency diffusion mechanism poses a significant barrier to the enhancement of micromixing efficiency in microfluidics. Actuating artificial cilia to increase the contact area of two flow streams during micromixing provides a promising alternative to enhance the mixing performance. Real-time adjustment of beating behavior in artificial cilia is necessary to accommodate various biological/chemical reagents with different hydrodynamic properties that are processed in a single microfluidic platform during micromixing. Equipping the microfluidic device with a self-troubleshooting feature for the end user, such as a bubble removal function during the process of multiple chemical solution injections, is also essential for robust micromixing. To meet these requirements, we initiated a new beating control concept by controlling the beating behavior of the artificial cilia through remote and simultaneous actuation of human fingertip drawing. A series of micromixing test cases under extreme flow conditions (Re < 10(-3)) was conducted in the designed micromixer with high mixing performance. Satisfactory micromixing efficiency was achieved even with a rapid beating trajectory of the artificial cilia actuated through the fingertip motion of end users. The analytical paradigm and results allow end users to troubleshoot technical difficulties encountered during micromixing operations.
机译:低效率扩散机制对微流体中微混合效率的提高构成了重大障碍。在微混合期间致动人造纤毛以增加两个流的接触面积提供了增强混合性能的有希望的选择。实时调整人造纤毛中的跳动行为是必要的,以适应具有不同流体动力学特性的各种生物/化学试剂,这些试剂在微混合过程中在单个微流体平台中进行处理。为最终用户配备具有自我故障排除功能的微流体设备,例如在多次化学溶液注入过程中去除气泡的功能,对于稳固的微混合也是必不可少的。为了满足这些要求,我们通过远程和同时启动人类指尖图来控制人造纤毛的跳动行为,从而启动了一种新的跳动控制概念。在设计的具有高混合性能的微混合器中进行了一系列极端流动条件(Re <10(-3))下的微混合测试案例。即使通过最终用户的指尖动作来驱动人造纤毛的快速跳动轨迹,也能达到令人满意的微混合效率。分析范式和结果使最终用户可以解决微混合操作中遇到的技术难题。

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