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首页> 外文期刊>Journal of Electronic Materials >Design Optimization of PZT-Based Piezoelectric Cantilever Beam by Using Computational Experiments
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Design Optimization of PZT-Based Piezoelectric Cantilever Beam by Using Computational Experiments

机译:基于计算实验的基于PZT的压电悬臂梁设计优化

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Piezoelectric energy harvesting is gaining huge research interest since it provides high power density and has real-life applicability. However, investigative research for the mechanical-electrical coupling phenomenon remains challenging. Many researchers depend on physical experiments to choose devices with the best performance which meet design objectives through case analysis; this involves high design costs. This study aims to develop a practical model using computer simulations and to propose an optimized design for a lead zirconate titanate (PZT)-based piezoelectric cantilever beam which is widely used in energy harvesting. In this study, the commercial finite element (FE) software is used to predict the voltage generated from vibrations of the PZT-based piezoelectric cantilever beam. Because the initial FE model differs from physical experiments, the model is calibrated by multi-objective optimization to increase the accuracy of the predictions. We collect data from physical experiments using the cantilever beam and use these experimental results in the calibration process. Since dynamic analysis in the FE analysis of the piezoelectric cantilever beam with a dense step size is considerably time-consuming, a surrogate model is employed for efficient optimization. Through the design optimization of the PZT-based piezoelectric cantilever beam, a high-performance piezoelectric device was developed. The sensitivity of the variables at the optimum design is analyzed to suggest a further improved device.
机译:压电能量收集具有高功率密度并具有现实生活的适用性,因此引起了广泛的研究兴趣。但是,对机电耦合现象的研究仍具有挑战性。许多研究人员依靠物理实验来选择性能最佳,通过案例分析满足设计目标的设备。这涉及高昂的设计成本。这项研究的目的是使用计算机仿真来开发实用模型,并为基于锆钛酸铅(PZT)的压电悬臂梁提出一种优化设计,该压电悬臂梁广泛用于能量收集。在这项研究中,使用商业有限元(FE)软件来预测由基于PZT的压电悬臂梁的振动产生的电压。由于初始有限元模型与物理实验不同,因此通过多目标优化对模型进行校准,以提高预测的准确性。我们使用悬臂梁从物理实验中收集数据,并将这些实验结果用于校准过程。由于具有密集步长的压电悬臂梁的有限元分析中的动态分析非常耗时,因此采用替代模型进行有效的优化。通过基于PZT的压电悬臂梁的设计优化,开发了一种高性能压电器件。分析了最佳设计时变量的敏感性,以提出进一步改进的设备。

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