论文标题

微晶损伤对散剂结构的预测模型

A Predictive Model for Micrometeoroid Damage to Gossamer Structures

论文作者

Villarreal, Michaela N., Arenberg, Jonathan W., Harris, Lauren Halvonik

论文摘要

用于空间应用的典型充气反射器由两个具有抛物线形状的薄膜组成。了解充气和暴露的微型度量环境的相互作用至关重要。这种相互作用导致充气膜在撞击粒子的入口和出口上的一系列穿透性,从而为气体逃生创造了途径。为了增加预期的损害的保真度,我们检查了文献中描述了微型度量碎片的描述,并为由于对入口和出口膜的影响粒子造成的损害提供了理论表述。将该理论与薄膜膜上的微型度量大小颗粒的初始高速测试进行了比较。我们使用这些测试的结果来产生预测模型。该模型用于估计1 AU位置附近的损伤率和输出预测,以降低微度盾牌的有效性,以减少胸部的损害并有效地优化其寿命。最后,我们将气体动力学理论应用于由于穿透而在指定的任务寿命中开发出气体支出的表达。尽管本文研究了受额外膜层保护的膨胀的凸耳的特异性情况,但我们的预测模型可以用于由聚酰亚胺膜组成的任何散布结构。

A typical inflatable reflector for space application consists of two thin membranes with a parabolic shape. It is critical to understand the interaction of the inflatable and the micrometeoroid environment to which it is exposed. This interaction leads to a series of penetrations of the inflatable membrane on entrance and exit of the impacting particle, creating a pathway for gas escape. To increase the fidelity of the damage expected, we examine the literature for descriptions of micrometeoroid fragmentation and present a theoretical formulation for the damage caused by an impacting particle to the entrance and exit membranes. This theory is compared to an initial set of hyper-velocity tests for micrometeoroid-sized particles on thin film membranes. We use the results of these tests to produce a predictive model. This model is applied to estimate the damage rate near the 1 AU location and output predictions for the effectiveness of a micrometeoroid shield to reduce the damage on the lenticular and effectively optimize its lifetime. Lastly, we apply the kinetic theory of gasses to develop expressions for the expenditure of gas over a specified mission lifetime due to penetrations. Although this paper examines the specific case of an inflated lenticular protected by extra membrane layers, our predictive model can be applied for any gossamer structure composed of polyimide membranes.

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