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Autonomous aerial observations to extend and complement the Earth Observing System: A science driven, systems oriented approach

机译:自主的空中观测以扩展和补充地球观测系统:一种科学驱动的,面向系统的方法

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The current Earth observing capability depends primarily on spacecraft missions and ground-based networks to provide the critical on-going observations necessary for improved understanding of the Earth system. Aircraft missions play an important role in process studies but are limited to relatively short-duration flights. Suborbital observations have contributed to global environmental knowledge by providing in-depth, high-resolution observations that space-based and in-situ systems are challenged to provide; however, the limitations of aerial platforms - e.g., limited observing envelope, restrictions associated with crew safety and high cost of operations have restricted the suborbital program to a supporting role. For over a decade, it has been recognized that autonomous aerial observations could potentially be important. Advances in several technologies now enable autonomous aerial observation systems (AAOS) that can provide fundamentally new observational capability for Earth science and applications and thus lead scientists and engineers to rethink how suborbital assets can best contribute to Earth system science. Properly developed and integrated, these technologies will enable new Earth science and operational mission scenarios with long term persistence, higher-spatial and higher-temporal resolution at lower cost than space or ground based approaches. This paper presents the results of a science driven, systems oriented study of broad Earth science measurement needs. These needs identify aerial mission scenarios that complement and extend the current Earth Observing System. These aerial missions are analogous to space missions in their complexity and potential for providing significant data sets for Earth scientists. Mission classes are identified and presented based on science driven measurement needs in atmospheric, ocean and land studies. Also presented is a nominal concept of operations for an AAOS: an innovative set of suborbital assets that complements and augments current and planned space-based observing systems.
机译:当前的地球观测能力主要取决于航天器的飞行任务和地面网络,以提供持续不断的重要观测数据,以增进对地球系统的了解。飞机任务在过程研究中起着重要作用,但仅限于相对短时间的飞行。亚轨道观测通过提供深入,高分辨率的观测资料,对空基和原位系统提供了挑战,从而促进了全球环境知识的发展;但是,空中平台的局限性,例如有限的观测范围,与机组安全有关的局限性以及高昂的运营成本,使亚轨道计划成为了支持性角色。十多年来,人们已经认识到自主航空观测可能很重要。如今,多项技术的进步使自动航空观测系统(AAOS)可以为地球科学和应用提供根本上全新的观测能力,从而使科学家和工程师重新考虑亚轨道资产如何最好地为地球系统科学做出贡献。这些技术如果得到适当开发和整合,将能够以比空间或地面方法更低的成本提供长期持久性,更高的空间和更高的时间分辨率的新地球科学和作战任务方案。本文介绍了广泛的地球科学测量需求的科学驱动,面向系统的研究结果。这些需求确定了可以补充和扩展当前地球观测系统的空中任务方案。这些空中任务的复杂性和潜力与太空任务类似,可以为地球科学家提供重要的数据集。根据大气,海洋和陆地研究中科学驱动的测量需求来确定和显示任务类别。还介绍了AAOS的名义运行概念:一组创新的亚轨道资产,可补充和增强当前和计划中的天基观测系统。

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