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Computational and experimental study on dynamic instability of extended bistable carbon/epoxy booms subjected to bending

机译:弯曲作用下双稳态碳/环氧树脂动臂动态不稳定性的计算和实验研究

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Bistable reeled composite booms (BRCs) constructed from braided carbon/epoxy plies are suitable candidates for use as extendible booms or as elements of large deployable space structures. However, without modification, BRCs have an open section which limits their torsional stiffness, and makes them prone to collapse under low bending moments. In this study a "roll-up" deployable photovoltaic (PV) solar array with two side-by-side extendible BRCs is used as a case study to analyse the dynamic behaviour of BRCs on spacecraft undergoing rotational manoeuvres numerically. The BRCs have rotational accelerations applied to their roots to simulate the effect of being attached to a manoeuvring spacecraft. Budiansky-Hutchinson criterion is used to define an instability failure point based on a change in cross-sectional shape. This was used to estimate the maximum angular acceleration. While it is extremely difficult to replicate the behaviour of a large flexible lightweight structure in microgravity on the ground, an experiment to determine the point of collapse of BRCs under gravity were used to verify the simulation results.
机译:由编织的碳/环氧树脂层构成的双稳态带卷复合材料吊杆(BRC)是适合用作可伸缩吊杆或大型可展开空间结构元件的候选材料。但是,如果不做任何改动,BRC的开口部分会限制其扭转刚度,并使其在低弯矩下容易塌陷。在这项研究中,以具有两个并排可扩展BRC的“可卷起”可部署光伏(PV)太阳能电池阵列为例,以数值分析BRC在航天器上进行旋转操纵的动力学行为。 BRC的根部施加了旋转加速度,以模拟附着在机动航天器上的效果。 Budiansky-Hutchinson准则用于根据横截面形状的变化定义不稳定性破坏点。这用于估计最大角加速度。虽然很难在地面上复制大型柔性轻质结构的行为,但通过确定BRC在重力作用下的坍塌点的实验来验证模拟结果。

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