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首页> 外文期刊>Journal of Sound and Vibration >Coupled global-local and zigzag-local laminate theories for dynamic analysis of piezoelectric laminated plates
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Coupled global-local and zigzag-local laminate theories for dynamic analysis of piezoelectric laminated plates

机译:耦合全局局部和曲折局部叠层理论用于压电叠层板的动力学分析

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Accurate prediction of interlaminar transverse stresses in smart piezolaminated structures through two-dimensional laminate theories that are efficient, directly from the constitutive equations, is a challenging task. In this study, we extend the 11 variable global-local theory (GLT) which was originally proposed for elastic laminated structures with this purpose, to the dynamic analysis of hybrid piezolaminated plates under electromechanical loading. The zigzag-local theory (ZLT), with nine primary displacement variables, which was recently developed for static analysis of hybrid plates and has the ability to calculate transverse shear stresses from constitutive equations, is also extended for dynamic analysis. A two-way electromechanical coupling is considered. A variational formulation is presented for the two theories by using the extended Hamiltonss principle, obtaining the governing dynamic field equations, and variationally consistent boundary conditions. The accuracy of the two theories are critically assessed in direct comparison with the exact 3D piezoelasticity solutions for static, free vibration and forced vibration response of hybrid plates for a variety of laminate configurations. It is revealed that the GLT, in spite of having higher number of primary variables, is unable to yield accurate prediction not only for the transverse shear stresses, but also for global responses like displacements under mechanical loading and natural frequencies. For the latter entities, the prediction is even worse than the five-variable zigzag theory. In contrast, the ZLT predicts with good accuracy all response entities including the transverse shear stresses for all laminates under mechanical as well as potential loading, and is superior to both GLT and the zigzag theory.
机译:通过直接根据本构方程有效的二维层压理论准确预测智能压电层压结构中的层间横向应力是一项艰巨的任务。在这项研究中,我们将最初针对弹性层压结构提出的11变量全局局部理论(GLT)扩展到机电载荷下混合压电层压板的动力学分析。具有九个主要位移变量的之字形局部理论(ZLT),最近被开发用于混合板的静态分析,并且具有根据本构方程计算横向切应力的能力,也被扩展用于动态分析。考虑了双向机电耦合。利用扩展的汉密尔顿原理,给出了这两种理论的变分形式,获得了控制动态场方程,以及变分一致的边界条件。与用于各种层压构造的混合板的静态,自由振动和强制振动响应的精确3D压电弹性解决方案直接比较,严格评估了这两种理论的准确性。结果表明,尽管主要变量数量较多,但GLT不仅不能准确预测横向剪应力,还不能准确预测整体响应,例如机械载荷和固有频率下的位移。对于后者的实体,其预测甚至比五变量之字形理论还要糟糕。相比之下,ZLT可以很好地预测所有响应实体,包括在机械载荷和潜在载荷下所有层压板的横向剪切应力,并且优于GLT和之字形理论。

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