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Bending model for functionally graded porous shape memory alloy/poroelastic composite cantilever beams

机译:用于功能梯度多孔形状记忆合金/多孔弹性复合悬臂梁的弯曲模型

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A new model is developed for bending of functionally graded (FG) porous shape memory alloy (SMA)/poroelastic composite cantilever beams. The model generalizes the ZM model for dense SMAs to cases involving potentially high degrees of porosity. The accuracy of the proposed model is verified against experimental data as well as simulations involving finite element analysis (FEA) of porous architected SMAs with fully detailed geometries. Using the new model, a bending theory is derived for a porous composite cantilever beam reinforced with a FG porous (FGP) SMA layer. The derivation involves expressing the effective material parameters of the porous SMA as polynomial functions of porosity, which facilitates analytical treatment of the bending theory. Moreover, the theory accounts for the distribution of solid phases within a beam cross section as a function of applied load during a complete loading cycle. Results such as the load-deflection behavior of the beam, as well as the location of the neutral axis and distribution of axial stress as a function of the applied load are validated against FEA data. The validated theory is further utilized to investigate the influence of several parameters on the behavior of the composite beam, including the index gradient, temperature, and thickness of the SMA layer.
机译:开发了一种新型模型,用于弯曲功能梯度(FG)多孔形状记忆合金(SMA)/ Poroelastic复合悬臂梁。该模型将ZM模型推广到涉及潜在高孔隙度的案例。拟议模型的准确性是针对实验数据的验证以及涉及具有完全详细的几何形状的多孔架构SMA的有限元分析(FEA)的模拟。利用新模型,弯曲理论衍生用于用FG多孔(FGP)SMA层加固的多孔复合悬臂梁。该衍生涉及表达多孔SMA的有效材料参数作为孔隙率的多项式函数,这有利于对弯曲理论的分析治疗。此外,该理论因在完整的装载周期期间施加负载的函数而占梁横截面内固相的分布。诸如光束的负载偏转行为的结果以及作为施加的负载的函数的中性轴的位置和轴向应力的分布被验证针对FEA数据。经过验证的理论,进一步利用了研究几个参数对复合梁的行为的影响,包括SMA层的指数梯度,温度和厚度。

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