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Internet technology for future space missions

机译:未来太空任务的互联网技术

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Ongoing work at National Aeronautics and Space Administration Goddard Space Flight Center (NASA/GSFC), seeks to apply standard Internet applications and protocols to meet the technology challenge of future satellite missions. Internet protocols and technologies are under study as a future means to provide seamless dynamic communication among heterogeneous instruments, spacecraft, ground stations, constellations of spacecraft, and science investigators. The primary objective is to design and demonstrate in the laboratory the automated end-to-end transport of files in a simulated dynamic space environment using off-the-shelf, low-cost, commodity-level standard applications and protocols. The demonstrated functions and capabilities will become increasingly significant in the years to come as both earth and space science missions fly more sensors and the present labor-intensive, mission-specific techniques for processing and routing data become prohibitive. This paper describes how an IP-based communication architecture can support all existing operations concepts and how it will enable some new and complex communication and science concepts. The authors identify specific end-to-end data flows from the instruments to the control centers and scientists, and then describe how each data flow can be supported using standard Internet protocols and applications. The scenarios include normal data downlink and command uplink as well as recovery scenarios for both onboard and ground failures. The scenarios are based on an Earth orbiting spacecraft with downlink data rates from 300 kbps to 4Mbps. Included examples are based on designs currently being investigated for potential use by the Global Precipitation Measurement (GPM) mission.
机译:美国国家航空航天局戈达德太空飞行中心(NASA / GSFC)正在进行的工作,旨在应用标准的Internet应用程序和协议来应对未来卫星任务的技术挑战。 Internet协议和技术正在研究中,作为将来在异构仪器,航天器,地面站,航天器群和科学研究者之间提供无缝动态通信的一种手段。主要目的是在实验室中使用现成的低成本商品级标准应用程序和协议在模拟动态空间环境中设计和演示文件的自动端到端传输。随着地球和太空科学任务飞行更多的传感器,以及目前的劳动密集型任务特定技术来处理和路由数据,这种已证明的功能将在未来几年变得越来越重要。本文描述了基于IP的通信体系结构如何支持所有现有的操作概念,以及它将如何支持一些新的复杂的通信和科学概念。作者确定了从仪器到控制中心和科学家的特定端到端数据流,然后描述了如何使用标准Internet协议和应用程序支持每个数据流。这些方案包括正常的数据下行链路和命令上行链路,以及针对机载和地面故障的恢复方案。这些方案基于地球轨道航天器,下行链路数据速率从300 kbps到4Mbps。包括的示例基于当前正在研究的设计,以供全球降水测量(GPM)任务使用。

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