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Computational Modeling and Simulation to Increase Laser Shooting Accuracy of Autonomous LEO Trackers

机译:计算建模与仿真提高自主狮子座跟踪器激光拍摄精度

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摘要

In this paper, we introduce a computational procedure that enables autonomous LEO laser trackers endowed with INSs to increase the current accuracy when shooting at middle distant medium-size LEO debris targets. The code is designed for the trackers to throw the targets into the atmosphere by means of ablations. In case that the targets are eclipsed to the trackers by the Earth, the motions of the trackers and targets are modeled by equations that contain post-Newtonian terms accounting for the curvature of space. Otherwise, when the approaching targets become visible for the trackers, we additionally use more accurate equations, which allow to account for the local bending of the laser beams aimed at the targets. We observe that under certain circumstances the correct shooting configurations that allow to safely and efficiently shoot down the targets, differ from the current estimations by distances that may be larger than the size of many targets. In short, this procedure enables to estimate the optimal shooting instants for any middle distant medium-size LEO debris target.
机译:在本文中,我们介绍了一种计算过程,使自动LEO激光跟踪器能够在中间遥远的介质leo碎片靶标拍摄时,可以提高当前准确性。该代码专为跟踪器而设计,通过消融来将目标扔进大气中。在地球上对跟踪器被蚀地被射出的情况下,跟踪器和目标的动作是由包含牛排术语占空间曲率的方程式的式。否则,当接近目标对跟踪器可见时,我们还使用更准确的等式,其允许考虑旨在瞄准目标的激光束的局部弯曲。我们观察到,在某些情况下,允许安全和有效地击落目标的正确拍摄配置,与可能大于许多目标大小的距离的当前估计不同。简而言之,该程序能够估算任何中间遥远的中尺寸leo碎片靶标的最佳射击速度。

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