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Bending theory for laminated composite cantilever beams with multiple embedded shape memory alloy layers

机译:具有多个嵌入式记忆合金层的层压复合悬臂梁的弯曲理论

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摘要

In this article, a new analytical model is proposed for laminated composite cantilever beams consisting of multiple alternating superelastic shape memory alloy and elastic layers. The model is based on the Zaki-Moumni model for shape memory alloys combined with Timoshenko's beam theory. The Zaki-Moumni model accounts for solid phase transformation as well as detwinning and reorientation of martensite under multiaxial thermomechanical loading conditions. Mathematical formulas are first derived to characterize the evolution of the solid phase structure within the beam with a prescribed load at the tip during loading and unloading. Analytical moment-curvature and shear force-shear strain relations are then obtained following the strength of materials approach. The present work is the first to fully develop the nonlinear expressions of the axial stress in terms of the distance from the neutral plane and to allow the description of the phase distribution in both the longitudinal and the transverse directions in the beam as the load evolves. The proposed model is validated against finite element analysis and high-accuracy numerical solutions. The influence of temperature and the number of shape memory alloy layers on the superelastic behavior of the laminate is also investigated.
机译:在本文中,提出了一种新的分析模型,用于由多个交替的超弹性形状记忆合金和弹性层组成的层压复合悬臂梁。该模型基于Zaki-Moumni模型,用于形状记忆合金,结合Timoshenko的光束理论。 Zaki-Moumni模型占固相变化的占据,以及在多轴热机械负载条件下的马氏体的纠纷和重新定向。首先衍生数学公式,以表征在装载和卸载期间在尖端处具有规定的负载的梁内的固相结构的演变。然后在材料方法的强度之后获得分析力矩曲率和剪切力 - 剪切应变关系。本作本作首先在距中性平面的距离方面完全开发轴向应力的非线性表达,并且在负载演变时允许在梁中的纵向和横向中的相位分​​布的描述。该建议的模型针对有限元分析和高精度数值解决方案进行了验证。还研究了温度和形状记忆合金层对层压板的超弹性行为的影响。

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