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Propulsion Options for the Global Precipitation Measurement Core Satellite

机译:全球降水测量核心卫星的推进方式

摘要

This study was conducted to evaluate several propulsion system options for the Global Precipitation Measurement (GPM) core satellite. Orbital simulations showed clear benefits for the scientific data to be obtained at a constant orbital altitude rather than with a decay/reboost approach. An orbital analysis estimated the drag force on the satellite will be 1 to 12 mN during the five-year mission. Four electric propulsion systems were identified that are able to compensate for these drag forces and maintain a circular orbit. The four systems were the UK-10/TS and the NASA 8 cm ion engines, and the ESA RMT and RITl0 EVO radio-frequency ion engines. The mass, cost, and power requirements were examined for these four systems. The systems were also evaluated for the transfer time from the initial orbit of 400 x 650 km altitude orbit to a circular 400 km orbit. The transfer times were excessive, and as a consequence a dual system concept (with a hydrazine monopropellant system for the orbit transfer and electric propulsion for drag compensation) was examined. Clear mass benefits were obtained with the dual system, but cost remains an issue because of the larger power system required for the electric propulsion system. An electrodynamic tether was also evaluated in this trade study.
机译:进行这项研究是为了评估全球降水测量(GPM)核心卫星的几种推进系统选项。轨道模拟表明,在恒定的轨道高度而不是使用衰减/重推方法获得科学数据的明显好处。一项轨道分析估计,在五年任务期间,卫星上的阻力将为1至12 mN。确定了四个电动推进系统,它们能够补偿这些阻力并保持圆形轨道。四个系统分别是UK-10 / TS和NASA 8厘米离子引擎,以及ESA RMT和RIT10 EVO射频离子引擎。对这四个系统的质量,成本和功率要求进行了检查。还评估了系统从初始高度400 x 650 km的轨道到圆形400 km轨道的转移时间。转移时间过长,因此检查了双重系统概念(用于轨道转移的肼单推进剂系统和用于阻力补偿的电推进系统)。双系统获得了明显的质量效益,但是由于电推进系统需要更大的动力系统,因此成本仍然是一个问题。在该行业研究中还对电动系链进行了评估。

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