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Optimal solid shell element for large deformable composite structures with piezoelectric layers and active vibration control

机译:具有压电层和主动振动控制的大型可变形复合结构的最佳固体壳单元

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In this paper, we present an optimal low-order accurate piezoelectric solid-shell element formulation to model active composite shell structures that can undergo large deformation and large overall motion. This element has only displacement and electric degrees of freedom (dofs), with no rotational dofs, and an optimal number of enhancing assumed strain (EAS) parameters to pass the patch tests (both membrane and out-of-plane bending). The combination of the present optimal piezoelectric solid-shell element and the optimal solid-shell element previously developed allows for efficient and accurate analyses of large deformable composite multilayer shell structures with piezoelectric layers. To make the 3-D analysis of active composite shells containing discrete piezoelectric sensors and actuators even more efficient, the composite solid-shell element is further developed here. Based on the mixed Fraeijs de Veubeke-Hu-Washizu (FHW) variational principle, the in-plane and out-of-plane bending behaviours are improved via a new and efficient enhancement of the strain tensor. Shear-locking and curvature thickness locking are resolved effectively by using the assumed natural strain (ANS) method. We also present an optimal-control design for vibration suppression of a large deformable structure based on the general finite element approach. The linear-quadratic regulator control scheme with output feedback is used as a control law on the basis of the state space model of the system. Numerical examples involving static analyses and dynamic analyses of active shell structures having a large range of element aspect ratios are presented. Active vibration control of a composite multilayer shell with distributed piezoelectric sensors and actuators is performed to test the present element and the control design procedure. Copyright (c) 2005 John Wiley & Sons, Ltd.
机译:在本文中,我们提出了一种最佳的低阶精确压电固体壳体元件配方,以对可以经受大变形和大整体运动的主动复合壳体结构进行建模。该元件仅具有位移和电自由度(dofs),没有旋转自由度,并且有最佳数量的增强假定应变(EAS)参数可通过斑贴测试(膜和平面外弯曲)。本最佳压电固体壳体元件和先前开发的最佳固体壳体元件的组合允许对具有压电层的大型可变形复合多层壳体结构进行有效且准确的分析。为了使包含离散压电传感器和执行器的有源复合材料壳体的3-D分析更加有效,在此进一步开发了复合固体壳体元件。基于混合的Fraeijs de Veubeke-Hu-Washizu(FHW)变分原理,通过新的和有效的应变张量增强来改善面内和面外弯曲行为。剪切锁定和曲率厚度锁定通过使用假定的自然应变(ANS)方法得以有效解决。我们还提出了一种基于通用有限元方法的大型可变形结构振动抑制的最优控制设计。基于系统状态空间模型,将具有输出反馈的线性二次调节器控制方案用作控制律。数值示例涉及具有大的单元纵横比范围的活动壳体结构的静态分析和动态分析。对具有分布式压电传感器和执行器的复合多层壳体进行主动振动控制,以测试本发明的元件和控制设计程序。版权所有(c)2005 John Wiley&Sons,Ltd.

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