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Closed cross-section dual-matrix composite hinge for deployable structures

机译:用于可展开结构的闭合截面双矩阵复合铰链

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Dual-matrix composite structures with localized elastomer composite hinges have been proposed to enable packaging with much smaller fold radii than allowed by traditional resin-based fiber reinforced composites. Previous studies have been limited to proof-of-concept of folding capabilities and constitutive modeling of elastomer composites. A novel closed cross-section dual-matrix deployable hinge is studied here to develop the tools for studying the deployment of general dual-matrix structures. A set of tools for the analysis of deployment of this simple structure is developed: an analytic model that minimizes the strain energy in the folded configuration, experimental characterization, and finite element techniques using the LS-Dyna commercial software. The three models are used to predict the packaged shape and deployment moments, and are shown to be in good agreement amongst themselves. The analytic model is used to demonstrate control of the folded shape of the hinge using the stiffness of the elastomer composite. This behavior is verified using finite element models developed in the LS-Dyna commercial code. The simulations are used to predict the localized fold radius of the hinge within 3% and deployment moments within 5% by accounting for the microbuckled stiffness of the elastomer composite.
机译:已经提出了具有局部弹性体复合铰链的双矩阵复合结构,以使得包装半径可以比传统的基于树脂的纤维增强复合材料所允许的折叠半径小得多。以前的研究仅限于弹性体复合材料的折叠能力和本构模型的概念验证。本文研究了一种新颖的封闭截面双矩阵可展开铰链,以开发用于研究一般双矩阵结构展开的工具。开发了一套用于分析这种简单结构的工具:一种分析模型,该模型使用LS-Dyna商业软件将折叠结构中的应变能,实验特性和有限元技术最小化。这三个模型用于预测包装的形状和展开时刻,并且在它们之间显示出很好的一致性。该分析模型用于演示利用弹性体复合材料的刚度控制铰链的折叠形状。使用LS-Dyna商业代码中开发的有限元模型可以验证此行为。通过考虑弹性体复合材料的微屈曲刚度,模拟可用于预测铰链的局部折叠半径在3%之内,展开力矩在5%之内。

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