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Flexoelectric effect on the bending and vibration responses of functionally graded piezoelectric nanobeams based on general modified strain gradient theory

机译:基于通用改进的应变梯度理论的挠电效应对功能梯度压电纳米梁弯曲和振动响应的影响

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摘要

Flexoelectric effect has been defined as the coupling between strain gradient and electric polarization, however, how to harvest remarkable polarization energy induced by flexoelectric effect is the key problem. The present work is to study the flexoelectric effect in functionally graded composite nanostructure with a volume fraction distribution function. And a more general modified strain gradient theory is used to reformulate the constitutive equations and a more scientific evaluation system is introduced to measure the electric polarization density field for static bending and free vibration behaviors of functionally graded piezoelectric nanobeams. Meanwhile, we put forward a new and simple volume fraction distribution function with two-parameters and the physical surface position for such nanobeams in which the material properties vary in the thickness direction is determined. Numerical results indicate that flexoelectric effect can observably influence the electromechanical response in functionally graded piezoelectric nanobeam at nanometer scale and the pertinent physical insights are also discussed. And the emerging functionally graded materials are significant and may help to resolve tantalizing application of flexoelectric effect on practical engineering.
机译:柔性电效应已被定义为应变梯度与电极化之间的耦合,然而,如何获取由柔性电效应引起的显着极化能是关键问题。目前的工作是研究具有体积分数分布函数的功能梯度复合纳米结构的柔电效应。并使用更通用的修正应变梯度理论来重新构造本构方程,并引入更科学的评估系统来测量功能梯度压电纳米束的静态弯曲和自由振动行为的极化强度场。同时,我们提出了一个新的,简单的具有两个参数的体积分数分布函数,并确定了这种纳米束的物理表面位置,在其中确定了材料特性在厚度方向上的变化。数值结果表明,柔性电效应可以观察到纳米级功能梯度压电纳米束中的机电响应,并讨论了相关的物理见解。新兴的功能梯度材料意义重大,可能有助于解决柔电效应在实际工程中的诱人应用。

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