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Numerical Stress Investigation for Piezoelectric Elements with a Circular Cross Section and Interdigitated Electrodes

机译:具有圆形横截面和叉指电极的压电元件的数值应力研究

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The scientific community has put significant effort into the development and optimization of sensors and actuators manufactured as piezoelectric composites with interdigitated electrodes (IDEs), well known as active fiber composite (AFC) and macro fiber composite (MFC). The advantages of these elements are their higher actuation performance and flexibility as compared to monolithic piezoceramic (PZT) elements. In general, their mechanical properties are calculated based on the classical lamination theory and the uniform field model (UFM). These two theories are well suited for predicting the stiffness and piezoelectric strain constants of the AFC or MFC. Although there are a variety of numerical investigations related to their electromechanical properties, there are no appropriate tools for accessing the stresses within these piezoelectric elements (including the inhomogeneous electric field conditions as well as the change in material properties). Explanations are given for this situation indicating the problems in investigating these types of piezoelectric elements with respect to stress states. In this work a finite element modeling approach is presented, which shows the influence of the IDE on the mechanical properties of PZT fibers. Experimental evidence is presented, which affirms the location of critical stress predicted in this model and explains the reported cracking in AFC in past research.
机译:科学界已投入大量精力来开发和优化传感器和执行器,这些传感器和执行器被制成具有叉指电极(IDE)的压电复合材料,即活性纤维复合材料(AFC)和大纤维复合材料(MFC)。这些元件的优点是与单片压电陶瓷(PZT)元件相比,具有更高的致动性能和灵活性。通常,它们的机械性能是根据经典的层压理论和均匀场模型(UFM)计算的。这两种理论非常适合预测AFC或MFC的刚度和压电应变常数。尽管有许多与其机电性能有关的数值研究,但没有合适的工具可访问这些压电元件内的应力(包括非均匀电场条件以及材料特性的变化)。针对这种情况给出了解释,指出了研究这些类型的压电元件有关应力状态的问题。在这项工作中,提出了一种有限元建模方法,该方法显示了IDE对PZT纤维机械性能的影响。提出了实验证据,证实了该模型中预测的临界应力的位置,并解释了过去研究中报道的AFC破裂。

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