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首页> 外文期刊>Journal of intelligent material systems and structures >Analysis of laminated composite structures with embedded piezoelectric sheets by variable kinematic shell elements
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Analysis of laminated composite structures with embedded piezoelectric sheets by variable kinematic shell elements

机译:可变运动壳单元分析压电嵌片叠层复合结构

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In this article, the static analysis of multilayered shell structure embedding piezoelectric layers is performed using some advanced theories, obtained by expanding the unknown variables along the thickness direction using equivalent single-layer models, layer-wise models, and variable kinematic models. The variable kinematic models permit to reduce the computational cost of the analyses by grouping some layers of the multilayered structure with equivalent single-layer models and keeping the layer-wise models in other zones of the multilayer. This model is here extended to the static analysis of electro-mechanical problems. The used refined models are grouped in the Carrera Unified Formulation, and they accurately describe the displacement field, the stress distributions, and the electric potential along the thickness of the multilayered shell. The shell element has nine nodes, and the mixed interpolation of tensorial components method is used to contrast the membrane and shear locking phenomenon. The governing equations are derived from the principle of virtual displacement, and the finite element method is employed to solve them. Cross-ply plates and shells, with piezoelectric skins and simply supported edges, subjected to bi-sinusoidal mechanical or electrical load are analyzed. Various aspect ratios and radius-to-thickness ratios are considered. The results, obtained with different theories within Carrera Unified Formulation context, are compared with the elasticity solutions given in the literature. From the results, it is possible to conclude that the shell element based on Carrera Unified Formulation is very efficient in the study of electro-mechanical problems of composite structures. The variable kinematic models combining the equivalent single-layer with the layer-wise models permit to have a reduction of the computational costs, with respect to the full layer-wise theories, preserving the accuracy of the results in localized layers.
机译:在本文中,使用等效的单层模型,逐层模型和可变运动学模型,通过沿厚度方向扩展未知变量,使用一些先进的理论对嵌入压电层的多层壳结构进行了静态分析。可变运动学模型可以通过将多层结构的某些层与等效的单层模型组合在一起,并将逐层模型保留在多层的其他区域中,从而降低分析的计算成本。此模型在此扩展到机电问题的静态分析。所使用的精炼模型在Carrera统一公式中分组,并且它们精确描述了沿多层壳厚度方向的位移场,应力分布和电势。壳单元有9个节点,并采用张量分量的混合插值法来对比膜和剪切锁定现象。根据虚拟位移原理推导了控制方程,并采用有限元法对其求解。分析了承受双正弦机械或电负载的带有压电蒙皮和简单支撑边缘的交叉板和壳体。考虑了各种长宽比和半径-厚度比。将在Carrera Unified Formulation上下文中使用不同理论获得的结果与文献中给出的弹性解进行了比较。从结果可以得出结论,基于Carrera统一公式的壳单元在研究复合结构的机电问题方面非常有效。相对于完整的分层理论,将等效的单层模型与分层模型相结合的可变运动学模型可以降低计算成本,从而在局部化层中保持结果的准确性。

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