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LightForce photon-pressure collision avoidance: Efficiency analysis in the current debris environment and long-term simulation perspective

机译:避免LightForce光子压力碰撞:当前碎片环境中的效率分析和长期仿真

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摘要

This work provides an efficiency analysis of the LightForce space debris collision avoidance scheme in the current debris environment and describes a simulation approach to assess its impact on the long-term evolution of the space debris environment. LightForce aims to provide just-in-time collision avoidance by utilizing photon pressure from ground-based industrial lasers. These ground stations impart minimal accelerations to increase the miss distance for a predicted conjunction between two objects. In the first part of this paper we will present research that investigates the short-term effect of a few systems consisting of 20 kW class lasers directed by 1.5 m diameter telescopes using adaptive optics. The results found such a network of ground stations to mitigate more than 85 percent of conjunctions and could lower the expected number of collisions in Low Earth Orbit (LEO) by an order of magnitude. While these are impressive numbers that indicate LightForce’s utility in the short-term, the remaining 15 % of possible collisions contain (among others) conjunctions between two massive objects that would add large amount of debris if they collide. Still, conjunctions between massive objects and smaller objects can be mitigated. Hence, we choose to expand the capabilities of the simulation software to investigate the overall effect of a network of LightForce stations on the long-term debris evolution. In the second part of this paper, we will present the planned simulation approach for that effort.For the efficiency analysis of collision avoidance in the current debris environment, we utilize a simulation approach that uses the entire Two Line Element (TLE) catalog in LEO for a given day as initial input. These objects are propagated for one year and an all-on-all conjunction analysis is performed. For conjunctions that fall below a range threshold, we calculate the probability of collision and record those values. To assess efficiency, we compare a baseline (without collision avoidance) conjunction analysis with an analysis where LightForce is active. Using that approach, we take into account that collision avoidance maneuvers could have effects on third objects. Performing all-on-all conjunction analyses for extended period of time requires significant computer resources; hence we implemented this simulation utilizing a highly parallel approach on the NASA Pleiades supercomputer.
机译:这项工作对当前碎片环境中的LightForce空间碎片避免碰撞方案进行了效率分析,并描述了一种仿真方法来评估其对空间碎片环境的长期演变的影响。 LightForce旨在通过利用来自地面工业激光器的光子压力来提供及时的碰撞避免。这些地面站会施加最小的加速度,以增加两个对象之间的预测结合的未命中距离。在本文的第一部分中,我们将进行研究,研究由自适应光学系统,由直径1.5 m的望远镜引导的20 kW级激光器组成的少数系统的短期效应。结果发现,这样的地面站网络可以减轻超过85%的连合,并且可以将低地球轨道(LEO)的预期碰撞次数降低一个数量级。尽管这些数字令人印象深刻,表明LightForce在短期内具有实用性,但其余15%的可能碰撞(其中包括)两个巨大物体之间的连接,如果它们碰撞将增加大量的碎片。仍然可以减轻大型物体和较小物体之间的结合。因此,我们选择扩展仿真软件的功能,以研究LightForce测站网络对长期碎片演化的总体影响。在本文的第二部分中,我们将介绍计划的仿真方法。为了对当前碎片环境中的碰撞避免效率进行分析,我们利用了一种仿真方法,该方法使用了LEO中的整个“两行元素”(TLE)目录给定的一天作为初始输入。这些对象传播了一年,并进行了全部合计分析。对于低于范围阈值的合点,我们计算碰撞概率并记录这些值。为了评估效率,我们将基准(无碰撞避免)合体分析与LightForce处于活动状态的分析进行了比较。使用这种方法,我们考虑到避免碰撞演习可能会对第三物体产生影响。长时间执行所有所有连接分析需要大量的计算机资源;因此,我们在NASA Pleiades超级计算机上利用高度并行的方法实施了此仿真。

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