基于仿真的移动流体输送用静电驱动微致动器设计

M. Seidl, M. Gehring, U. Krumbein, G. Schrag
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引用次数: 0

摘要

用于现场医疗和环境监测的新兴芯片实验室技术带来了对新型微型执行器设计的需求,专门用于节能流体输送,支持轻量级和移动系统的发展。在这项工作中,我们提出了一种用于移动应用的新型集成微流体执行器的基于仿真的设计。该设计与标准半导体制造工艺兼容,以便以低成本批量生产。专用的全能量耦合有限元模型(FEM)支持和加速了该装置的开发。有限元模型除了考虑机电相互关系外,还考虑了流固相互作用,因此再现了响应电输入信号的完整设备行为。最后,我们讨论了几个设计参数,与选定的标准值相比,显示出改进的空间,正如FEM模拟所确定的那样。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation-Based Design of an Electrostatically Driven Micro-Actuator for Fluid Transport in Mobile Applications
The emerging lab-on-chip technology for in-situ medical use and environmental surveillance brought with it the demand for new, micro-scale actuator designs specialized in energy-efficient fluid transport, supporting the development of lightweight and mobile systems. In this work, we present the simulation-based design of a novel, integrated micro-fluidic actuator intended for mobile applications. The design is laid-out to be compatible with standard semiconductor manufacturing processes in order to enable mass-production at low cost per unit. The development of the device is supported and accelerated by a dedicated fully energy-coupled finite element model (FEM). The FE model takes into account the fluid-solid interaction in addition to the electro-mechanical interrelations, therefore reproducing the full device behavior in reaction to electrical input signals. In the end, we discuss several design parameters exhibiting space for improvement compared to the chosen standard values, as identified by the FEM simulations.
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