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Methodology for finding and evaluating safe landing sites on small bodies

机译:寻找和评估小型机体安全着陆点的方法

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摘要

Here we develop and demonstrate a three-step strategy for finding a safe landing ellipse for a legged spacecraft on a small body such as an asteroid or planetary satellite. The first step, acquisition of a high-resolution terrain model of a candidate landing region, is simulated using existing statistics on block abundances measured at Phobos, Eros, and Itokawa. The synthetic terrain model is generated by randomly placing hemispheric shaped blocks with the empirically determined size-frequency distribution. The resulting terrain is much rockier than typical lunar or martian landing sites. The second step, locating a landing ellipse with minimal hazards, is demonstrated for an assumed approach to landing that uses Autonomous Landing and Hazard Avoidance Technology. The final step, determination of the probability distribution for orientation of the landed spacecraft, is demonstrated for cases of differing regional slope. The strategy described here is both a prototype for finding a landing site during a flight mission and provides tools for evaluating the design of small-body landers. We show that for bodies with Eros-like block distributions, there may be > 99% probability of landing stably at a low tilt without blocks impinging on spacecraft structures so as to pose a survival hazard.
机译:在这里,我们开发并演示了一种三步策略,该方法可在小行星(例如小行星或行星卫星)上找到有腿航天器的安全着陆椭圆。第一步,使用在火卫一,爱神和伊藤川测量的块体丰度的现有统计数据,模拟获取候选着陆区的高分辨率地形模型。通过以经验确定的大小-频率分布随机放置半球形块来生成合成地形模型。由此产生的地形比典型的月球或火星登陆点要崎rock得多。第二步,确定具有最小危害的着陆椭圆,这是使用自主着陆和避险技术的一种假定着陆方法。最后一步是确定着陆航天器定向的概率分布,这是针对不同区域坡度的情况进行的。这里描述的策略既是在飞行任务期间寻找着陆点的原型,又是评估小型着陆器设计的工具。我们表明,对于具有类似爱神星的块状分布的物体,在低倾斜下可能有> 99%的概率稳定着陆而没有块状撞击在航天器结构上,从而构成生存危险。

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