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A quadratic piezoelectric multi-layer shell element for FE analysis of smart laminated composite plates induced by MFC actuators

机译:MFC致动器诱导的智能层压复合板Fe分析二次压电多层壳元件

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Macro fiber composite (MFC) actuators developed by the NASA have been increasingly used in engineering structures due to their high actuation power, compatibility, and flexibility. In this study, an efficient two dimensional quadratic multi-layer shell element by using first order shear deformation theory (FOSDT) is developed to predict the linear strain-displacement static deformation of laminated composite plates induced by MFC actuators. FOSDT is adapted from the Reissner-Mindlin plate theory. An eight-node quadratic piezoelectric multi-layer shell element with five degrees of freedom is introduced to prevent locking effect and zero energy modes observed in nine-node degenerated shell element. Two types of MFC actuators are used: (1) MFC-d(31) and (2) MFC-d(33), which differ in their actuation forces. For result verification, the electro-mechanically coupled quadratic finite element (FE) model is compared with the ABAQUS results in various examples. Comparison of the results showed good agreement. The proposed quadratic FE formulation is simple and accurate, which eliminates the need for costly FE commercial software packages. It was observed that earlier studies have mostly emphasized on the effect of actuation power and MFC fiber orientations on mechanical shape deformation of smart composite plates. In this study, a more comprehensive, in-depth investigation is conducted into host structure performance such as boundary conditions, laminate stacking sequence configuration, and symmetry/asymmetry layups.
机译:由于其高致动力,兼容性和灵活性,美国宇航局开发的宏观纤维复合材料(MFC)致动器越来越多地用于工程结构。在该研究中,开发了一种有效的二维二次多层壳元件(FOSDT),以预测MFC致动器诱导的层叠复合板的线性应变 - 位移静态变形。 FOSDT由Reissner-Mindlin Plate理论改编。引入了具有五个自由度的八节点二次压电多层壳元件,以防止在九节点退化壳元件中观察到锁定效果和零能量模式。使用两种类型的MFC致动器:(1)MFC-D(31)和(2)MFC-D(33),其致动力不同。对于结果验证,将电动机电耦合的二次有限元(FE)模型与ABAQUS相比各种实施例进行比较。结果的比较显示了良好的一致性。提出的二次Fe配方简单准确,无需昂贵的FE商业软件包。观察到,早期的研究主要强调了致动力和MFC纤维取向对智能复合板机械形状变形的影响。在本研究中,更全面地进行了深入的研究,以宿主结构性能,例如边界条件,层压堆叠序列配置和对称/不对称上篮。

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