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Inducing bistability in Collapsible Tubular Mast booms with thin-ply composite shells

机译:带有薄复合壳的可折叠管状桅杆吊杆的双稳态

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Bistable rollable booms are favorable when a low strain energy requirement for the coiled state is imposed and have more controllable deployment when compared to monostable booms. An inextensional analytical model describing the bending deformation mechanics of Collapsible Tubular Mast (CTM) booms was used to determine how design variables induce bistability, or the existence of two strain energy wells in the rolled-up and unrolled states. The effects of varying lamina material, laminate layup, and shell arc geometries between different inner and outer shell segments on the second strain energy well and stiffness properties were determined for boom cross-sections formed by circular segments. The full design space for two-walled composite CTM booms was explored to evaluate the validity of the developed analytical model. Optimized CTM boom designs were experimentally characterized for comparisons against model results. The model under-predicted the stable coiled diameter of the co-cured two-walled booms by up to 8.9% and 23.4% for the individual thin shells wrapped alone.
机译:当对盘绕状态施加较低的应变能要求时,双稳态可滚动动臂是有利的,并且与单稳态动臂相比,双稳态可滚动动臂具有更可控的展开。描述了可折叠管状桅杆(CTM)悬臂的弯曲变形力学的无扩展分析模型用于确定设计变量如何诱发双稳性,或者确定在卷起和展开状态下是否存在两个应变能井。对于由圆形节段形成的动臂横截面,确定了不同的薄片材料,层压板叠层以及不同的内壳段和外壳段之间的壳弧几何形状对第二应变能井和刚度特性的影响。探索了两壁复合CTM吊杆的完整设计空间,以评估开发的分析模型的有效性。对经过优化的CTM吊杆设计进行了实验表征,以便与模型结果进行比较。该模型低估了单独包裹的单个薄壳的共固化两壁式动臂的稳定盘绕直径分别高达8.9%和23.4%。

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