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Two-dimensional dynamic model for composite laminates with embedded magnetostrictive materials

机译:嵌入磁致伸缩材料的复合材料层合板的二维动力学模型

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A nonlinear, two-dimensional plate model is presented that describes the dynamic response of composite laminate structures with embedded magnetostrictive materials. The model consists of Navier's equation coupled with a discrete energy-averaged constitutive model for magnetostrictive materials. Assuming a thin composite geometry, the complete three-dimensional model is reduced to a two-dimensional equivalent single layer plate model by assuming a functional form for displacements. The resulting two-dimensional variational form, solved using finite element software, is applied to analyze the displacements of a Galfenol aluminum composite actuator, wherein Galfenol sheets are embedded into an aluminum substrate. The model is validated at lower frequencies using time domain measurements of the dynamic actuation response of the actuator. This framework is subsequently utilized to perform a parametric study to maximize the tip displacements by varying the geometric parameters: Galfenol location, thickness ratio, and substrate properties. The general finite element framework presented in this paper is applicable to a wider range of magnetostrictive materials and complex composite geometries. (C) 2015 Elsevier Ltd. All rights reserved.
机译:提出了一个非线性的二维板模型,该模型描述了嵌入磁致伸缩材料的复合层合结构的动力响应。该模型由Navier方程和磁致伸缩材料的离散能量平均本构模型组成。假设复合材料的几何形状薄,则通过假设位移的函数形式,将完整的三维模型简化为二维等效单层板模型。使用有限元软件求解所得的二维变分形式,将其用于分析Galfenol铝复合致动器的位移,其中Galfenol片嵌入铝基板中。使用致动器的动态致动响应的时域测量值,以较低的频率验证了该模型。该框架随后用于执行参数研究,以通过改变几何参数(加尔芬诺位置,厚度比和基材特性)来最大化尖端位移。本文介绍的一般有限元框架适用于更广泛的磁致伸缩材料和复杂的复合几何形状。 (C)2015 Elsevier Ltd.保留所有权利。

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