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MODELING OF THE INTERFACE OF FUNCTIONALLY GRADED SUPERELASTIC ZONES IN COMPLIANT DEPLOYABLE STRUCTURES

机译:兼容展开结构中功能分级超弹性区域界面的建模

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Functionally graded compliant mechanisms can be fabricated with additive manufacturing technology by engineering the microstructural and compositional gradients at selected locations resulting in compositionally graded zones of higher and lower flexibility. The local compliance depends on the geometry of the structure as well as the material property in the selected region. As Nitinol (NiTi) is well suited for applications requiring compliance, the critical transformation stress and the superelastic modulus of elasticity are crucial parameters for defining the local compliance. To understand the behavior at the interface between two different material compositions, three models of gradient change between the alloys are analyzed: step change, linear and polynomial gradients. In addition to localize the deformation in the interface, three different flexure designs in the interface are analyzed. This paper will address a methodology for modeling and parametrization of material properties and transition at the interface, for different flexure designs. The combined effort in the interface of the functional grading and the geometry will be used for the design of monolithic self-deployable structures, initially folded in compact shape. The design motivation comes from the self-deploying mechanisms inspired by insects' wings.
机译:通过在所选位置的微观结构和组成梯度在所选位置的组成和成分梯度下,可以制造功能梯度的柔性机制,从而产生更高且柔韧性更低的组成分级区域。本地顺应性取决于结构的几何形状以及所选区域中的材料特性。由于镍钛烯醇(NITI)非常适合需要符合要求的应用,临界变换应力和弹性模量是用于定义局部顺应性的关键参数。为了了解两种不同材料组合物之间的界面的行为,分析了合金之间的三种梯度变化模型:步骤改变,线性和多项式梯度。除了本地化界面中的变形外,分析了界面中的三种不同的弯曲设计。本文将解决不同的弯曲设计的材料特性和转换的建模和参数化方法。功能分级界面和几何形状的界面中的综合工作将用于设计单片自展结构,最初以紧凑的形状折叠。设计动机来自昆虫翅膀启发的自部署机制。

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