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Nuclear electric propulsion: A better, safer, cheaper transportation system for human exploration of Mars

机译:核电推进器:人类探索火星的更好,更安全,更便宜的运输系统

摘要

NASA has completed a preliminary mission and systems study of nuclear electric propulsion (NEP) systems for 'split-sprint' human exploration and related robotic cargo missions to Mars. This paper describes the study, the mission architecture selected, the NEP system and technology development needs, proposed development schedules, and estimated development costs. Since current administration policy makers have delayed funding for key technology development activities that could make Mars exploration missions a reality in the near future, NASA will have time to evaluate various alternate mission options, and it appears prudent to ensure that Mars mission plans focus on astronaut and mission safety, while reducing costs to acceptable levels. The split-sprint nuclear electric propulsion system offers trip times comparable to nuclear thermal propulsion (NTP) systems, while providing mission abort opportunities that are not possible with 'reference' mission architectures. Thus, NEP systems offer short transit times for the astronauts, reducing the exposure of the crew to intergalactic cosmic radiation. The high specific impulse of the NEP system, which leads to very low propellant requirements, results in significantly lower 'initial mass in low earth orbit' (IMLEO). Launch vehicle packaging studies show that the NEP system can be launched, assembled, and deployed, with about one less 240-metric-ton heavy lift launch vehicle (HLLV) per mission opportunity - a very Technology development cost of the nuclear reactor for an NEP system would be shared with the proposed nuclear surface power systems, since nuclear systems will be required to provide substantial electrical power on the surface of Mars. The NEP development project plan proposed includes evolutionary technology development for nuclear electric propulsion systems that expands upon SP-100 (Space Power - 100 kw(e)) technology that has been developed for lunar and Mars surface nuclear power, and small NEP systems for interplanetary probes. System upgrades are expected to evolve that will result in even shorter trip times, improved payload capabilities, and enhanced safety and reliability.
机译:美国国家航空航天局(NASA)已经完成了对核动力推进(NEP)系统的初步任务和系统研究,以“分步冲刺”式人类探索以及对火星的相关机器人货运任务。本文介绍了这项研究,所选的任务架构,NEP系统和技术开发需求,拟议的开发进度以及估计的开发成本。由于现任政府决策者推迟了关键技术开发活动的资金投入,这些活动可能会使火星探索任务在不久的将来成为现实,因此美国宇航局将有时间评估各种替代性任务选择,因此,确保火星任务计划集中于宇航员似乎是审慎的做法和任务安全,同时将成本降低到可接受的水平。分裂冲刺式核电推进系统的跳闸时间可与核热推进(NTP)系统相媲美,同时还提供了“参考”任务架构无法完成的任务中止机会。因此,NEP系统为宇航员提供了短途运输时间,从而减少了机组人员受到银河系宇宙射线的照射。 NEP系统的高比冲动导致极低的推进剂需求,从而导致“低地球轨道的初始质量”(IMLEO)大大降低。运载火箭的包装研究表明,NEP系统可以发射,组装和部署,每执行一次任务机会可减少约240公吨的重型运载火箭(HLLV),这是NEP核反应堆的技术开发成本该系统将与拟议的核地面动力系统共享,因为将需要核系统在火星表面提供大量电力。拟议的NEP发展项目计划包括针对核动力推进系统的进化技术开发,该技术扩展了针对月球和火星表面核电开发的SP-100(太空动力-100 kw(e))技术以及用于行星际的小型NEP系统探针。预计将进行系统升级,这将导致更短的跳闸时间,改进的有效负载功能以及增强的安全性和可靠性。

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