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Stochastic Design Optimization of Microstructures with Utilization of a Linear Solver

机译:利用线性求解器对微结构进行随机设计优化

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Microstructure design can have a substantial effect on the performance of critical components in numerous aerospace applications. However, the stochastic nature of metallic microstructures leads to deviations in material properties from the design point, and alters the performance of these critical components. In this work, an inverse stochastic design approach is introduced such that the material is optimized while accounting for the inherent variations in the microstructure. The highlight is an analytical uncertainty quantification model via a Gaussian distribution to model propagation of microstructural uncertainties to the properties. Metallic microstructure is represented using a finite element discretized form of the orientation distribution function. A stochastic optimization approach is proposed that employs the analytical model for uncertainty quantification, to explore to maximize the yield strength of Galfenol microstructure in a compliant beam when constrained by uncertainties in the designed natural frequency of vibration. The results of the stochastic optimization approach are validated using Monte Carlo Simulation (MCS). We also show that multiple microstructure solutions can be identified using the null space of the linear systems involved in the optimization.
机译:在许多航空航天应用中,微结构设计可能会对关键组件的性能产生重大影响。但是,金属微结构的随机性导致材料特性从设计角度偏离,并改变了这些关键组件的性能。在这项工作中,引入了反向随机设计方法,以便在考虑微观结构的固有变化的同时优化材料。重点是通过高斯分布的分析不确定性量化模型,以对微观结构不确定性向特性的传播进行建模。金属的微观结构是使用方向分布函数的有限元离散形式表示的。提出了一种随机优化方法,该方法采用分析模型进行不确定性量化,以探索在受设计固有振动频率不确定性约束的情况下,最大化顺应性光束中Galfenol微结构的屈服强度。随机优化方法的结果使用蒙特卡洛模拟(MCS)进行了验证。我们还表明,可以使用优化中涉及的线性系统的零空间来确定多个微结构解决方案。

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