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Segmented Reinforcement Variable Stiffness Materials for Reconfigurable Surfaces

机译:用于可重构表面的分段钢筋可变刚度材料

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ABSTRACT: Reconfigurable and morphing structures may provide a range of new functionalities such as optimization over broad operational conditions and multi-mission capability. This article introduces a new generic approach to achieving large strains in materials with high elastic moduli (5—30 GPa). The work centers on creating variable stiffness composite materials which exhibit a controllable change in elastic modulus (bending or axial) and large reversible strains (5—15%). We have performed a simulation study to better understand the implication of various geometric design parameters on the elastic and deformation behavior. Using this information, a series of prototype materials were prepared using a commercial shape memory polymer, and measurements on these materials indicate a controllable change in stiffness as a function of temperature with large reversible strain accommodation. We have fabricated and tested several design variations of laminar morphing materials which exhibit structural stiffness values of 8—12 GPa, changes in modulus of 15—77x and large reversible axial of 2—10%. Results indicate that significant controllable changes in stiffness are possible. Further, agreement between simulations and prototype material properties indicate that simulations may be used an effective screening tool to specify micromechanical design variations for specific application requirements.
机译:摘要:可重新配置和变形的结构可以提供一系列新功能,例如在较宽的运行条件和多任务能力上进行优化。本文介绍了一种新的通用方法,可在具有高弹性模量(5-30 GPa)的材料中实现较大的应变。这项工作的重点是制造可变刚度复合材料,该材料在弹性模量(弯曲或轴向)和可逆应变(5-15%)方面表现出可控的变化。我们进行了仿真研究,以更好地理解各种几何设计参数对弹性和变形行为的影响。利用这些信息,使用市售的形状记忆聚合物制备了一系列原型材料,对这些材料的测量表明,随着温度的变化,刚性的可控变化具有可逆的大应变适应性。我们制造并测试了层状变形材料的几种设计变型,这些变型材料的结构刚度值为8-12 GPa,模量变化为15-77x,大的可逆轴向为2-10%。结果表明,刚度的显着可控变化是可能的。此外,仿真与原型材料特性之间的一致性表明,可以使用仿真作为有效的筛选工具来指定针对特定应用需求的微机械设计变化。

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