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Application of refined beam elements to the coupled-field analysis of magnetostrictive microbeams

机译:精束元素在磁致伸缩微束耦合场分析中的应用

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Bending of magnetostrictive unimorph microbeams is investigated using a one-dimensional refined finite element model based on the Carrera Unified Formulation. Since these type of smart devices are usually being used in low magnetic fields, the linear coupled magnetomechanical constitutive relations are used to characterize their coupling behavior. With the use of the principle of virtual displacement, components of the fundamental nucleus matrix are obtained and the governing equations are discretized. 2, 3 and 4-node beam elements are used for modelling the beam major axis while linear 4-node and quadratic 9-node Lagrange elements are used as expansion functions over the cross-section. Two examples of unimorph micro-devices are considered and the results of present work are compared with those of experimental and conventional finite element works existing in the literature. It is shown that the one-dimensional refined finite element model, which is capable of generating three-dimensional results, can accurately catch the experimental data with a lower computational cost than the classical models. (C) 2016 Elsevier Ltd. All rights reserved.
机译:使用基于Carrera统一公式的一维精细有限元模型研究了磁致伸缩单晶微束的弯曲。由于这些类型的智能设备通常在低磁场中使用,因此线性耦合的磁机械本构关系用于表征其耦合行为。利用虚拟位移原理,获得了基本核矩阵的成分,并离散了控制方程。 2、3和4节点梁单元用于建模梁主轴,而线性4节点和二次9节点拉格朗日元素用作横截面的扩展函数。考虑了单晶片微器件的两个示例,并将当前工作的结果与文献中存在的实验和常规有限元工作的结果进行了比较。结果表明,能够产生三维结果的一维精化有限元模型能够以比传统模型低的计算成本准确地捕获实验数据。 (C)2016 Elsevier Ltd.保留所有权利。

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