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Shell elements with through-the-thickness variable kinematics for the CrossMark analysis of laminated composite and sandwich structures

机译:具有厚度变化运动学的壳单元,用于层压复合材料和夹层结构的CrossMark分析

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Several efforts have been made in the last years to improve the efficiency and the effectiveness or structural models for the analysis of laminated shell structures. Among the others, many recent and past works in the literature have been aimed at formulating theories of structures that maximize the accuracy of analysis meanwhile reducing the computational costs. In this paper, this objective is pursued by implementing advanced shell theories with through -the -thickness variable kinematic capabilities. By employing the Carrera Unified Formulation (CUF), the proposed shell model is obtained by expressing the displacement field as an arbitrary and, eventually, hierarchical expansion of the primary unknowns along the thickness. Thus, Equivalent-Single-Layer (ESL), Layer-Wise (LW) models as well as variable kinematic models which combine ESL and LW approaches within the shell thickness can be obtained in a straightforward and unified manner. After the unified shell model is formulated, the governing equations and the related finite element arrays are obtained by employing the principle of virtual work. A nine node finite element is implemented to approximate the solution field, and the Mixed Interpolation of Tensorial Components (MITC) method is used to contrast the membrane and shear locking phenomena. Some numerical examples are discussed, including three- and ten-layered cross-ply shells under bisinusoidal load and simply-supported boundary conditions, a multilayered spherical panel subjected to bi-sinusoidal load and a sandwich cylinder undergoing bi-sinusoidal pressure. Moreover, various thickness and radius-to-thickness ratios are considered. Whenever possible, the results are compared with those from the literature and from exact elasticity solutions. The analysis of the results clearly shows the enhanced capabilities of the present variable-kinematic shell element, which allows the analyst to opportunely reduce the computational costs and enhance the accuracy of the model only in those regions of the thickness domain where an accurate evaluation of the stress/strain field is needed. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在过去的几年中,已经进行了一些努力来提高分析叠层壳结构的效率和有效性或结构模型。除其他外,文献中的许多最新和过去的著作都旨在制定结构理论,以最大程度地提高分析的准确性,同时降低计算成本。在本文中,该目标是通过使用厚度可变的运动学功能来实现高级壳理论来实现的。通过采用Carrera统一公式(CUF),通过将位移场表示为沿厚度方向的任意未知变量,并最终将其扩展为分层,从而获得了拟议的壳体模型。因此,可以以简单,统一的方式获得等效单层(ESL)模型,层明智(LW)模型以及在壳体厚度内结合了ESL和LW方法的可变运动学模型。建立统一的壳体模型后,利用虚功原理得到控制方程和相关的有限元阵列。实现了一个九节点的有限元来逼近求解场,并且使用张量分量的混合插值(MITC)方法来对比膜和剪切锁定现象。讨论了一些数值示例,包括在双正弦载荷和简单支撑边界条件下的三层和十层交叉层壳体,承受双正弦载荷的多层球形面板以及承受双正弦压力的夹心圆柱。此外,考虑了各种厚度和半径/厚度比。尽可能将结果与文献资料和精确的弹性解进行比较。对结果的分析清楚地表明了当前可变运动壳单元的增强功能,这使分析人员仅在厚度域的那些区域(可以对这些区域进行精确评估)适当地降低计算成本并提高模型的准确性。需要应力/应变场。 (C)2016 Elsevier Ltd.保留所有权利。

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