对地观测星座贸易空间分析仪器数据计量评估器

V. Ravindra, S. Nag
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引用次数: 4

摘要

目前有发展和调试卫星星座任务的趋势,这就需要进行贸易空间研究,以设计高性能、低成本和低风险的星座。美国宇航局戈达德太空飞行中心开发了一种名为星座贸易空间分析工具(TAT-C)的开源软件工具,旨在通过生成和优化星座贸易空间来促进前期任务研究,其中涉及许多可能耦合的参数,如轨道、卫星、发射器、地面站和仪器。TAT-C调查的性能属性包括仪器数据度量、覆盖度量、成本和风险。虽然以前的研究已经探索了使用与覆盖相关的指标(如最大化访问持续时间,最大化区域内的访问次数)来优化星座卫星轨道,但在探索仪器参数的交易空间和相关数据指标方面的工作相对较少。以前的研究也使用了相对基本的数据度量,如图像像素分辨率、范围和观测的角度。本文介绍了TAT-C的仪器数据计量评估器,它可以产生具有仪器类型特征的更复杂的数据计量。已经开发了评估器的基本概念和体系结构,以适应仪器,而不假设有关底层技术的细节。在本文中,我们描述了两种最常见的地球观测仪器的建模,即被动光学传感器和合成孔径雷达(sar)。这些模型允许评估常用的数据指标,如信噪比、噪声等效δ温度、地面像素分辨率、动态范围、噪声等效sigma0等。利用诸如Landsat-8热红外传感器和作战陆地成像仪等例子,描述了使模型足够通用以广泛使用的挑战,同时能够适当地模拟复杂的现实世界仪器的特征。最后,我们介绍了用无源光学传感器和sar进行任务设计的三个重要用例的仪器数据度量评估器的结果。第一个用例从数据度量(而不是通常考虑的覆盖度量)的角度探索太阳同步轨道的交易空间。第二个用例探讨了SAR参数的交易空间,并强调了影响性能、大小和复杂性的仪器参数之间的定量权衡。这样的交易空间分析允许用户欣赏和考虑根据雷达频率对SAR天线尺寸的基本限制。在最后一个用例中,我们探索了推帚和扫帚扫描仪的交易空间,并评估了它们的性能匹配的条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Instrument Data Metrics Evaluator for Tradespace Analysis of Earth Observing Constellations
There is currently a trend towards developing and commissioning satellite constellation missions, which has necessitated tradespace studies to design high-performance, low cost and low risk constellations. An open-source software tool called Tradespace Analysis Tool for Constellations (TAT-C) has been developed at the NASA Goddard Space Flight Center, which aims to facilitate pre-phase A mission studies by generating and optimizing the tradespace of the constellations, involving a multitude of possibly coupled parameters such as orbits, satellites, launchers, ground-stations, and instruments. The performance attributes investigated by TAT-C are instrument data metrics, coverage metrics, cost and risk. While previous research has explored optimization of the constellation satellite orbits using metrics associated with coverage (such as maximizing access duration, maximizing the number of revisits over a region), there is relatively less work on exploring the tradespace of instrument parameters and associated data metrics. Previous research has also used relatively rudimentary data-metrics such as imaged pixel resolutions, range, and angles at which observations are made. This paper describes the instrument data-metrics evaluator of TAT-C which generates more sophisticated data metrics characteristic of the instrument type. The basic concept and the architecture of the evaluator have been developed to accommodate instruments without assuming specifics about the underlying technology. In this paper, we describe the modeling of the two most common types of Earth Observing instruments, namely passive optical sensors and synthetic aperture radars (SARs). The models allow for evaluation of commonly used data-metrics such as the signal to noise ratio, noise equivalent delta temperature, ground-pixel resolutions, dynamic range, noise-equivalent sigma0, etc. The challenges in making the models generic enough for wide usage, while being able to appropriately mimic characteristics of complex real-world instruments, are described using examples such as the Landsat-8 Thermal Infrared Sensor and Operational Land Imager. Lastly, we present results from the instrument data metrics evaluator for three important use cases of mission design with passive-optical sensors and SARs. The first use case explores the tradespace of Sun-Synchronous Orbits from a perspective of data-metrics as opposed to commonly considered coverage metrics. The second use case explores the tradespace of SAR parameters and highlights quantitative trade-offs between instrument parameters influencing the performance, size, and complexity. Such tradespace analysis allows the user to appreciate and consider a fundamental constraint on the SAR antenna size depending on radar frequency. In the last use case, we explore the tradespace of pushbroom vs whiskbroom scanners, and evaluate the conditions under which their performance match.
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