电热微执行器的不确定鲁棒设计

B. Safaie, M. Shamshirsaz, M. Bahrami
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引用次数: 3

摘要

微机电系统的微加工,如其他制造工艺,具有固有的变化,导致不确定的尺寸和材料性能。不确定性分析下的优化方法可以降低微器件对这些不确定性的敏感性,从而创建更稳健的设计,从而提高可靠性和良率。本文采用不确定度、灵敏度分析和鲁棒优化的方法,分析了微致动器尺寸和材料性能的不确定性对微致动器尖端偏转的影响。这些不确定性包括冷臂和热臂的厚度、长度和宽度、间隙、杨氏模量和热膨胀系数的变化。通过Box-Behnken设计和蒙特卡罗仿真建立二阶元模型,实现了一种简单高效的不确定性分析方法。此外,还利用直接蒙特卡罗模拟方法研究了不确定性的影响。结果表明,这些不确定度分析方法得到的叶尖挠度标准差非常接近。通过与文献实验结果的对比,验证了模拟结果的正确性。该分析是在多个输入电压下进行的,以估计偏转曲线周围的不确定带。实验数据在仿真结果得到的95%置信范围内。灵敏度分析结果表明,热膨胀系数和微致动器间隙不确定性对微致动器性能影响较大。最后,利用鲁棒优化方法实现微致动器的优化设计。所提出的鲁棒微致动器对不确定性的敏感性较低。为此,采用遗传算法和非支配排序遗传算法两种方法对微执行器进行鲁棒设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust design under uncertainties of electro-thermal microactuator
Micromachining of micro electromechanical systems such as other fabrication processes has inherent variation that leads to uncertain dimensional and material properties. Methods for optimization under uncertainty analysis can be used to reduce micro device sensitivity to these uncertainties in order to create a more robust design, thereby increasing reliability and yield. In this paper, approaches for uncertainty and sensitivity analysis, and robust optimization of an electro-thermal micro actuator are applied to account the influence of dimensional and material property uncertainties on micro actuator tip deflection. These uncertainties include variation of thickness, length and width of cold and hot arms, gap, Young modulus and thermal expansion coefficient. A simple and efficient uncertainty analysis method is performed by creating second-order metamodel through Box-Behnken design and Monte Carlo simulation. Also, the influence of uncertainties has been examined using direct Monte Carlo Simulation method. The results show that the standard deviations of tip deflection generated by these uncertainty analysis methods are very close. Simulation results of tip deflection have been validated by a comparison with experimental results in literature. The analysis is performed at multiple input voltages to estimate uncertainty bands around the deflection curve. Experimental data fall within 95% confidence boundary obtained by simulation results. Also, the sensitivity analysis results demonstrate that micro actuator performance has been affected more by thermal expansion coefficient and micro actuator gap uncertainties. Finally, approaches for robust optimization to achieve the optimal designs for micro actuator are used. The proposed robust micro actuators are less sensitive to uncertainties. For this goal, two methods including Genetic Algorithm and Non-dominated Sorting Genetic Algorithm are employed to find the robust designs for micro actuator.
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