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Design, fabrication, and bending test of shape memory polymer composite hinges for space deployable structures

机译:用于空间可展开结构的形状记忆聚合物复合铰链的设计,制造和弯曲测试

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Shape memory polymers are smart materials characterized by a recoverability memory effect and a large strain, but their mechanical properties such as low stiffness need to be improved for mechanical applications with large recovering force. Researchers have reported that the characteristics of shape memory polymers can be significantly improved when the shape memory polymers are used with fiber-reinforced composite material. In this study, a carbon fiber fabric-reinforced shape memory polymer composite hinge was designed, fabricated, and characterized for space deployable structure applications. The main idea is that the carbon-epoxy composite itself and the shape memory polymer are combined, which means both epoxy resin and shape memory polymer resin are used together and the epoxy resin remains in a B-stage after curing. As such, the stiffness and shape recovery ratio are increased. The shape memory polymer composite hinge specimens with four plies of carbon fiber fabric and a shape memory polymer were prepared for the experiment. The glass transition temperature, which was 70.9 degrees C, was determined using dynamic mechanical analyzer. The effect of temperature on shape recovery capability was investigated. We investigated the reasons of damage evolution to shape memory polymer composite tapes occurring in the folding and deploying process. To do that, damage to the hinge was observed with a USB digital microscope and a scanning electron microscopy and then explained with ABAQUS analysis. The results confirm that the shape memory polymer composite hinge is a good candidate for an antenna in spacecraft in space.
机译:形状记忆聚合物是具有恢复性记忆效应和大应变特性的智能材料,但是对于具有大恢复力的机械应用,需要改善其机械性能(例如低刚度)。研究人员已经报道,当形状记忆聚合物与纤维增强复合材料一起使用时,可以显着改善形状记忆聚合物的特性。在这项研究中,碳纤维织物增强的形状记忆聚合物复合铰链的设计,制造和特征在于可空间展开的结构应用。主要思想是将碳-环氧复合材料本身与形状记忆聚合物结合在一起,这意味着环氧树脂和形状记忆聚合物树脂可以同时使用,并且环氧树脂在固化后仍处于B阶段。这样,增加了刚度和形状恢复率。制备了具有四层碳纤维织物和形状记忆聚合物的形状记忆聚合物复合铰链标本用于实验。使用动态机械分析仪测定玻璃化转变温度为70.9℃。研究了温度对形状恢复能力的影响。我们调查了在折叠和展开过程中发生形状记忆聚合物复合带损伤发展的原因。为此,使用USB数字显微镜和扫描电子显微镜观察了铰链的损坏,然后用ABAQUS分析进行了解释。结果证实,形状记忆聚合物复合铰链是航天器在太空中的天线的良好候选者。

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