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Dealing with uncertainties in asteroid deflection demonstration missions: NEOTωIST

机译:处理小行星偏转示范任务的不确定性:NEOTωIST

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摘要

Deflection missions to near-Earth asteroids will encounter non-negligible uncertain- ties in the physical and orbital parameters of the target object. In order to reliably assess future impact threat mitigation operations such uncertainties have to be quantified and incorporated into the mission design. The implementation of deflection demonstration missions offers the great opportunity to test our current understanding of deflection relevant uncertainties and their consequences, e.g., regarding kinetic impacts on asteroid surfaces. In this contribution, we discuss the role of uncertainties in the NEOTωIST asteroid deflection demonstration concept, a low-cost kinetic impactor design elaborated in the framework of the NEOShield project. The aim of NEOTωIST is to change the spin state of a known and well characterized near-Earth ob- ject, in this case the asteroid (25143) Itokawa. Fast events such as the production of the impact crater and ejecta are studied via cube-sat chasers and a flyby vehicle. Long term changes, for instance, in the asteroid’s spin and orbit, can be assessed using ground based observations. We find that such a mission can indeed provide valuable constraints on mitigation relevant param- eters. Furthermore, the here proposed kinetic impact scenarios can be implemented within the next two decades without threatening Earth’s safety.
机译:对近地小行星的偏转任务将在目标物体的物理和轨道参数上遇到不可忽略的不确定性。为了可靠地评估未来影响减轻威胁的操作,必须对这些不确定性进行量化,并将其纳入任务设计中。偏转示范任务的实施为检验我们目前对偏转相关不确定性及其后果(例如,对小行星表面的动力学影响)的理解提供了绝佳的机会。在此文稿中,我们讨论了不确定性在NEOTωIST小行星偏转演示概念中的作用,NEOTShield框架详细阐述了低成本动力冲击器设计。 NEOTωIST的目的是改变一个已知且特征明确的近地天体的自旋状态,在本例中为小行星(25143)Itokawa。通过立方体卫星追逐器和飞越飞行器研究了诸如撞击坑和弹射器等快速事件的发生。例如,可以使用基于地面的观测值来评估小行星的自转和轨道的长期变化。我们发现,这样的任务确实可以为缓解相关参数提供有价值的约束。此外,此处提出的动力学影响方案可以在未来二十年内实施,而不会威胁到地球的安全。

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