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Efficient Reliability-Based Design Optimization for Microelectromechanical Systems

机译:基于高效可靠性的微机电系统设计优化

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The miniaturization of microelectromechanical systems (MEMS) makes cheaper products (due to less chip size consumption) and new applications, e.g., in chip cards, possible. With further miniaturization, however, the influence of manufacturing variances increases: hence it is more and more important to consider them already in the design optimization phase. The widely used Monte Carlo (MC) simulation is not suitable for the implementation in optimization algorithms, as a large number of required samples result in long simulation times. Instead we apply the Sigma-Point approach which enables the accurate calculation of the output variances, even for nonlinear functions with only few sample calculations. In conjunction with a MEMS resonator model the Sigma-Point approach turns out to be four orders of magnitude faster than an equivalent MC calculation. Therefore, it is optimally suited for an efficient reliability-based design optimization (RBDO). Furthermore, the Sigma-Point approach is simple to implement and matrix notation enables fast calculation, even for large models. A versatile analysis of the interaction between optimized sensor design, yield requirements, and manufacturing tolerances is feasible with the suggested RBDO methodology.
机译:微机电系统(MEMS)的小型化使得更便宜的产品(由于更少的芯片尺寸消耗)和新的应用成为可能,例如在芯片卡中。但是,随着进一步的小型化,制造差异的影响增加:因此,在设计优化阶段已经考虑它们已经变得越来越重要。广泛使用的蒙特卡洛(MC)模拟不适合用于优化算法,因为大量所需的样本导致较长的模拟时间。取而代之的是,我们采用Sigma-Point方法,即使对于只有少量样本计算的非线性函数,也可以准确计算输出方差。结合MEMS谐振器模型,Sigma-Point方法比同等的MC计算要快四个数量级。因此,它最适合用于高效的基于可靠性的设计优化(RBDO)。此外,Sigma-Point方法易于实现,并且即使对于大型模型,矩阵符号也可以实现快速计算。使用建议的RBDO方法,可以对优化的传感器设计,良率要求和制造公差之间的相互作用进行多功能分析。

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