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THE RADICE-LAWAL CONSTELLATION: THE GATEWAY TO TECHNOCRATIC LIBERATION OF DEVELOPING NATIONS

机译:根治法律的星座:发展中国家技术解放的门户

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The Equatorial Region is characterized by dense cloud cover and severe adverse weather conditions. Acquisition of satellite imagery for various purposes and application areas such as agricultural mapping, urban planning, border security, disaster monitoring and mitigation and topographical mapping could prove difficult under such atmospheric conditions when utilizing an optical imaging sensor onboard a space borne platform. It is trend for most Earth observation satellites to be positioned in the near-Polar orbit owing the benefits of global imaging. However, the potentials of utilizing an optical sensor for acquisition of data for the benefit of equatorial nations are yet to be fully realized. An existing limitation of an optical sensor for Earth observation manifests itself in the inability to provide satellite imagery in the absence of favourable lightning and weather conditions. Furthermore, from an orbital geometry perspective, the daily access time to ground station is restricted to an average of four passes. It becomes apparent that alternative solutions necessary to circumvent the limitations of optical remote sensing instruments for the benefit of the ER must be explored. This paper discusses a constellation of S-band SAR satellites in a near-equatorial orbit for the acquisition of regular and timely satellite imagery at the service of equatorial nations. It starts by identifying the economic state of sovereign countries within and around the Equator. It then establishes a potential relationship between the economic state of the identified sovereign states and their levels space capabilities. A definition of the latitude extent of the Equatorial Region is provided viz-a-viz a reclassification by latitude, of sovereign states. A technical description of the Equator-SAR spacecraft is provided. The baseline orbital parameters for the constellation of Equator-SAR mission are then discussed. The required baseline distance for supporting interferometric operation is derived and used as the driver for positioning the satellites within the formation. The results of the analysis conducted for Equator SAR formation flying configuration, using astrodynamics methods and techniques for the determination of its relative stability is shown.
机译:赤道地区的特点是云层密布和恶劣的恶劣天气条件。当在航天平台上使用光学成像传感器时,在这样的大气条件下,很难获得用于各种目的和应用领域的卫星图像,例如农业制图,城市规划,边境安全,灾害监测和减灾以及地形图。由于全球成像的优势,大多数地球观测卫星已被定位在近极轨道上。但是,利用光学传感器为赤道国家造福数据的潜力尚未得到充分认识。用于地球观测的光学传感器的现有局限性表现为在缺少良好的雷电和天气条件的情况下无法提供卫星图像。此外,从轨道几何学的角度来看,每天对地面站的访问时间被限制为平均四次通过。显而易见的是,必须探索为使ER受益而规避光学遥感仪器的局限性所需的替代解决方案。本文讨论了在赤道附近轨道上的S波段SAR卫星星座,以获取定期和及时的卫星图像,为赤道国家服务。首先确定赤道内外的主权国家的经济状况。然后,它在确定的主权国家的经济状况与其层级空间能力之间建立潜在的关系。赤道地区的纬度范围定义是按主权国家的纬度重新分类提供的。提供了赤道SAR航天器的技术说明。然后讨论了赤道-SAR任务星座的基线轨道参数。得出用于支持干涉测量操作的所需基线距离,并将其用作在地层中定位卫星的驱动器。显示了使用天体动力学方法和技术确定赤道SAR编队飞行形态的分析结果,以确定其相对稳定性。

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