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Toward Optimal Design of Piezoelectric Transducers Based on Multifunctional and Smoothly Graded Hybrid Material Systems

机译:基于多功能平滑梯度混合材料系统的压电传感器的优化设计

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摘要

This work explores the design of piezoelectric transducers based on functional material gradation, here named functionally graded piezoelectric transducer (FGPT). Depending on the applications, FGPTs must achieve several goals, which are essentially related to the transducer resonance frequency, vibration modes, and excitation strength at specific resonance frequencies. Several approaches can be used to achieve these goals; however, this work focuses on finding the optimal material gradation of FGPTs by means of topology optimization. Three objective functions are proposed: (ⅰ) to obtain the FGPT optimal material gradation for maximizing specified resonance frequencies; (ⅱ) to design piezoelectric resonators, thus, the optimal material gradation is found for achieving desirable eigenvalues and eigenmodes; and (ⅲ) to find the optimal material distribution of FGPTs, which maximizes specified excitation strength. To track the desirable vibration mode, a mode-tracking method utilizing the 'modal assurance criterion' is applied. The continuous change of piezoelectric, dielectric, and elastic properties is achieved by using the graded finite element concept. The optimization algorithm is constructed based on sequential linear programming, and the concept of continuum approximation of material distribution. To illustrate the method, 2D FGPTs are designed for each objective function. In addition, the FGPT performance is compared with the non-FGPT one.
机译:这项工作探索了基于功能材料渐变的压电换能器的设计,这里称为功能渐变压电换能器(FGPT)。根据不同的应用,FGPT必须达到几个目标,这些目标基本上与换能器的共振频率,振动模式和特定共振频率下的激发强度有关。可以使用几种方法来实现这些目标。但是,这项工作的重点是通过拓扑优化找到FGPT的最佳材料等级。提出了三个目标函数:(ⅰ)获得FGPT最佳材料灰度,以最大化指定的共振频率; (ⅱ)设计压电谐振器,因此,找到了最佳的材料渐变以获得理想的特征值和本征模; (ⅲ)找到FGPT的最佳材料分布,从而使指定的激发强度最大化。为了跟踪理想的振动模式,应用了一种利用“模态保证标准”的模式跟踪方法。压电,介电和弹性性能的连续变化是通过使用渐变有限元概念实现的。该优化算法是基于顺序线性规划和材料分布的连续近似概念构造的。为了说明该方法,为每个目标函数设计了2D FGPT。此外,将FGPT性能与非FGPT性能进行了比较。

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