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Design Characterization and Sensitivity Analysis of a Piezoelectric Ceramic/Metal Composite Transducer

机译:压电陶瓷/金属复合传感器的设计表征和灵敏度分析

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摘要

This article presents experimental characterization and numerical simulation techniques used to create large amplitude and high frequency surface waves with the help of a metal/ceramic composite transducer array. Four piezoelectric bimorph transducers are cascaded and operated in a nonlinear regime, creating broad band resonant vibrations. The used metallic plate itself resembles a movable wall which can align perfectly with an airfoil surface. A phase-shifted operation of the actuators results in local displacements that generate a surface wave in the boundary layer for an active turbulence control application. The primary focus of this article is actuator design and a systematic parameter variation experiment which helped optimize its nonlinear dynamics. Finite Element Model (FEM) simulations were performed for different design variants, with a primary focus in particular on the minimization of bending stress seen directly on the piezo elements while achieving the highest possible deflection of the vibrating metallic plate. Large output force and a small yield stress (leading to a relatively small output stoke) are characteristics intrinsic to the stiff piezo-ceramics. Optimized piezo thickness and its spatial distribution on the bending surface resulted in an efficient stress management within the bimorph design. Thus, our proposed resonant transduction array achieved surface vibrations with a maximum peak-to-peak amplitude of 500 μm in a frequency range around 1200 Hz.
机译:本文介绍了在金属/陶瓷复合换能器阵列的帮助下产生大振幅和高频表面波的实验表征和数值模拟技术。四个压电双压电晶片换能器级联并在非线性状态下运行,从而产生宽带共振。用过的金属板本身类似于可移动的壁,可以与机翼表面完美对齐。致动器的相移操作导致局部位移,该局部位移在边界层中生成表面波,用于主动湍流控制应用。本文的主要重点是执行器设计和系统的参数变化实验,有助于优化其非线性动力学。针对不同的设计变体进行了有限元模型(FEM)仿真,其主要重点是最小化直接在压电元件上看到的弯曲应力,同时实现了振动金属板的最大可能挠度。较大的输出力和较小的屈服应力(导致较小的输出行程)是刚性压电陶瓷的固有特性。优化的压电厚度及其在弯曲表面上的空间分布可在双压电晶片设计中实现有效的应力管理。因此,我们提出的共振换能阵列在1200 Hz左右的频率范围内实现了最大振幅为500μm的表面振动。

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