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Co-rotational shell element for numerical analysis of laminated piezoelectric composite structures

机译:同向旋转壳单元,用于层合压电复合结构的数值分析

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Laminated composite structures consisting of load-carrying and multifunctional materials represent a rather powerful material system. The passive, load-carrying layers can be made of isotropic material or fiber-reinforced composites, while piezoelectric materials represent the most common choice of multifunctional materials for active layers. The multifunctionality of piezoelectric layers is provided by their inherent property to couple mechanical and electric fields. The property can thus be used to sense deformations or produce actuating forces. A highly efficient 3-node shell element is developed for modeling piezoelectric laminated composite shells. The equivalent single-layer approach and Mindlin-Reissner kinematics are used in the element formulation together with the discrete shear gap (DSG) technique to resolve the shear locking and strain smoothing technique to improve the performance. Piezoelectric layers are assumed to be polarized in the thickness direction thus coupling the in-plane strains with the electric field oriented in the thickness direction. The co-rotational FE formulation is used to account for geometrically nonlinear effects. Numerical examples cover linear and geometrically nonlinear static and dynamic cases with piezoelectric layers used as actuators and sensors. (C) 2017 Elsevier Ltd. All rights reserved.
机译:由承载材料和多功能材料组成的层压复合结构代表了一种功能强大的材料系统。无源负载层可以由各向同性材料或纤维增强复合材料制成,而压电材料则是用于有源层的多功能材料的最常见选择。压电层的固有特性提供了压电层的多功能,以耦合机械场和电场。该特性因此可以用于感测变形或产生致动力。开发了一种用于建模压电层压复合材料壳的高效三节点壳单元。等效的单层方法和Mindlin-Reissner运动学与离散剪切间隙(DSG)技术一起用于单元公式中,以解决剪切锁定和应变平滑技术以提高性能。假定压电层在厚度方向上极化,因此将面内应变与在厚度方向上取向的电场耦合。同向旋转有限元公式用于说明几何非线性效应。数值示例涵盖了线性和几何非线性静态和动态情况,其中压电层用作致动器和传感器。 (C)2017 Elsevier Ltd.保留所有权利。

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