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Design Concepts for a Small Space-Based GEO Relay Satellite for Missions between Low Earth and Near Earth Orbits

机译:基于小型空间的地质中继卫星的设计概念,用于低地球和地球轨道附近的任务

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The main purpose of the Small Space-Based Geosynchronous Earth orbiting (GEO) satellite is to provide a space link to the user mission spacecraft for relaying data through ground networks to user Mission Control Centers. The Small Space Based Satellite (SSBS) will provide services comparable to those of a NASA Tracking Data Relay Satellite (TDRS) for the same type of links. The SSBS services will keep the user burden the same or lower than for TDRS and will support the same or higher data rates than those currently supported by TDRS. At present, TDRSS provides links and coverage below GEO; however, SSBS links and coverage capability to above GEO missions are being considered for the future, especially for Human Space Flight Missions (HSF). There is also a rising need for the capability to support high data rate links (exceeding 1 Gbps) for imaging applications. The communication payload on the SSBS will provide S/Ka-band single access links to the mission and a Ku-band link to the ground, with an optical communication payload as an option. To design the communication payload, various link budgets were analyzed and many possible operational scenarios examined. To reduce user burden, using a larger-sized antenna than is currently in use by TDRS was considered. Because of the SSBS design size, it was found that a SpaceX Falcon 9 rocket could deliver three SSBSs to GEO. This will greatly reduce the launch costs per satellite. Using electric propulsion was also evaluated versus using chemical propulsion; the power system size and time to orbit for various power systems were also considered. This paper will describe how the SSBS will meet future service requirements, concept of operations, and the design to meet NASA users' needs for below and above GEO missions. These users' needs not only address the observational mission requirements but also possible HSF missions to the year 2030. We will provide the trade-off analysis of the communication payload design in terms of the number of links looking above and below GEO; the detailed design of a GEO SSBS spacecraft bus and its accommodation of the communication payload, and a summary of the trade study that resulted in the selection of the Falcon 9 launch vehicle to deploy the SSBS and its impact on cost reductions per satellite.
机译:小型基于空间的地球同步地球轨道(Geo)卫星的主要目的是提供给用户任务航天器的空间链接,用于通过地面网络将数据中继到用户任务控制中心。基于空间的空间卫星(SSB)将提供与NASA跟踪数据中继卫星(TDR)的服务相当的服务,以实现相同类型的链路。 SSBS服务将使用户负担相同或低于TDR,并且将支持与TDR当前支持的数据率相同或更高的数据率。目前,TDRSS提供地理下方的链接和覆盖范围;然而,正在考虑未来的SSBS链接和覆盖能力,特别是对于人类空间飞行任务(HSF)。还需要一种需要支持高数据速率链路(超过1 Gbps)进行成像应用。 SSB上的通信有效载荷将为任务和KU波段链接提供S / KA波段单个访问链路,并将光通信有效载荷作为选项。为了设计通信有效载荷,分析了各种链路预算,并检查了许多可能的操作场景。为了减少用户负担,考虑使用比目前正在使用的更大尺寸的天线。由于SSBS设计规模,发现SpaceX Falcon 9火箭可以向Geo提供三个SSBS。这将大大降低每个卫星的发射成本。使用电动推进也使用化学推进来评估;还考虑了各种电力系统的电力系统尺寸和时间轨道。本文将描述SSBS如何满足未来的服务需求,运营概念和设计,以满足NASA用户对以下地理特派团的需求。这些用户不仅可以解决观察特派团要求,而且可能与2030年代可能的HSF任务进行了解决。我们将在上面和地理下方的链接数量方面提供对通信有效载荷设计的权衡分析; Geo SSBSBACECRAFT总线的详细设计及其通信有效载荷的概要,以及贸易研究的摘要,导致Falcon 9启动车辆部署SSB,并对每个卫星成本降低的影响。

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