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LightForce Photon-Pressure Collision Avoidance: Efficiency Assessment on an Entire Catalogue of Space Debris

机译:LightForce Photon-Funce Clillion避免:整个空间碎片目录的效率评估

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The potential to perturb debris orbits using photon pressure from ground-based lasers has been confirmed by independent research teams. Two useful applications of this scheme are protecting space assets from impacts with debris and stabilizing the orbital debris environment, both relying on collision avoidance rather than de-orbiting debris. This paper presents the results of a new assessment method to analyze the efficiency of the concept for collision avoidance. Earlier research concluded that one ground based system consisting of a 10 kW class laser, directed by a 1.5 m telescope with adaptive optics, can prevent a significant fraction of debris-debris collisions in low Earth orbit. That research used in-track displacement to measure efficiency and restricted itself to an analysis of a limited number of objects. As orbit prediction error is dependent on debris object properties, a static displacement threshold should be complemented with another measure to assess the efficiency of the scheme. In this paper we present the results of an approach using probability of collision. Using a least-squares fitting method, we improve the quality of the original TLE catalogue in terms of state and co-state accuracy. We then calculate collision probabilities for all the objects in the catalogue. The conjunctions with the highest risk of collision are then engaged by a simulated network of laser ground stations. After those engagements, the perturbed orbits are used to re-assess the collision probability in a 20 minute window around the original conjunction. We then use different criteria to evaluate the utility of the laser-based collision avoidance scheme and assess the number of base-line ground stations needed to mitigate a significant number of high probability conjunctions. Finally, we also give an account how a laser ground station can be used for both orbit deflection and debris tracking.
机译:独立研究团队证实了使用来自地面激光器的光子压力的污垢碎片轨道的可能性。该方案的两种有用的应用是保护空间资产免受碎屑的影响和稳定眶屑环境,依赖于碰撞避免而不是去轨道碎片。本文介绍了一种新的评估方法,分析避免碰撞概念的效率。早期的研究得出结论,一个基于一个基于一个地面的系统,由10 kW类激光器组成,由一个带自适应光学器件的1.5米望远镜指导,可以防止低地球轨道中的大部分碎屑碎片碰撞。该研究使用轨道的位移来测量效率并限制自身以分析有限数量的物体。随着轨道预测误差取决于碎屑对象属性,应该互补静态位移阈值以评估方案的效率。在本文中,我们使用碰撞概率提出了一种方法的结果。使用最小二乘拟合方法,我们在状态和共同准确率方面提高原始TLE目录的质量。然后,我们计算目录中所有对象的碰撞概率。然后通过模拟的激光地站网络从事具有最高碰撞风险的连词。在那些参与之后,扰动轨道用于在原始结合周围的20分钟窗口中重新评估碰撞概率。然后,我们使用不同的标准来评估基于激光的碰撞避免方案的效用,并评估减轻大量高概率连词所需的基线接地站的数量。最后,我们还给出了一个帐户,激光地面站如何用于轨道偏转和碎屑跟踪。

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