Aneela Zameer, Sidra Naz, Muhammad Asif Zahoor Raja
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引用次数: 0
摘要
多层压电传感器的设计优化旨在通过调整层厚度和每层压电材料的体积分数,将宽带传感器高效、实用地用于故障诊断、生物医学和水下应用。在此背景下,我们提出了一种并行微分进化(PDE)算法,以减轻多变量优化的复杂性并缩短计算时间,从而针对特定应用实现优化的宽带传感器。对于铌酸镁铅-钛酸铅(PMN PT)和 PZT5h 基压电材料,拟合函数基于前三次谐波的机械压力均匀性,以实现所需功能频率范围内的宽带。模拟使用一维模型(ODM)进行,而输入层厚度和活性材料的体积分数则使用 PDE 进行评估。仿真在并行计算平台上进行,利用三台不同的主机来减少计算时间。针对 PDE 提出的方法的结果在统计上以适配值的最小值、最大值、平均值和标准偏差的形式表示,在图形上以速度和时间的形式表示。可以看出,并行 DE 的执行时间随着内核数量的增加而减少。
Parallel differential evolution paradigm for multilayer electromechanical device optimization
Design optimization of multilayer piezoelectric transducers is intended for efficient and practical usage of wideband transducers for fault diagnosis, biomedical, and underwater applications through adjusting layer thicknesses and volume fraction of piezoelectric material in each layer. In this context, we propose a parallel differential evolution (PDE) algorithm to mitigate the complexities of multivariate optimization as well as the computation time to achieve an optimized wideband transducer for the particular application. For lead magnesium niobate-lead titanate (PMN PT)- and PZT5h-based piezoelectric materials, the fitness function is formulated based on uniformity of mechanical pressure at the first three harmonics to achieve wide bandwidth in the required functional frequency range. It is carried out using a one-dimensional model (ODM), while input layer thicknesses and volume fractions of active material are evaluated using PDE. The simulation is performed on a parallel computing platform utilizing three different host machines to reduce computational time. Results of the proposed methodology for PDE are statistically represented in the form of minimum, maximum, mean, and standard deviation of fitness value, while graphically represented in terms of speedup and time. It can be observed that the execution time for parallel DE decreases with the increasing number of cores.
期刊介绍:
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