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Development priorities for in-space propulsion technologies

机译:太空推进技术的发展重点

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During the summer of 2010, NASA's Office of Chief Technologist assembled 15 civil service teams to support the creation of a NASA integrated technology roadmap. The Aero-Space Technology Area Roadmap is an integrated set of technology area roadmaps recommending the overall technology investment strategy and prioritization for NASA's technology programs. The integrated set of roadmaps will provide technology paths needed to meet NASA's strategic goals. The roadmaps have been reviewed by senior NASA management and the National Research Council. With the exception of electric propulsion systems used for commercial communications satellite station-keeping and a handful of deep space science missions, almost all of the rocket engines in use today are chemical rockets; that is, they obtain the energy needed to generate thrust by combining reactive chemicals to create a hot gas that is expanded to produce thrust. A significant limitation of chemical propulsion is that it has a relatively low specific impulse. Numerous concepts for advanced propulsion technologies with significantly higher values of specific impulse have been developed over the past 50 years. Advanced in-space propulsion technologies will enable much more effective exploration of our solar system, near and far, and will permit mission designers to plan missions to "fly anytime, anywhere, and complete a host of science objectives at the destinations" with greater reliability and safety. With a wide range of possible missions and candidate propulsion technologies with very diverse characteristics, the question of which technologies are 'best' for future missions is a difficult one. A portfolio of technologies to allow optimum propulsion solutions for a diverse set of missions and destinations are described in the roadmap and herein.
机译:在2010年夏季,NASA首席技术官办公室组建了15个公务员团队,以支持创建NASA集成技术路线图。航空航天技术领域路线图是一组综合的技术领域路线图,建议总体技术投资策略和NASA技术计划的优先级。整套路线图将提供实现NASA战略目标所需的技术路径。该路线图已由美国国家航空航天局高级管理人员和国家研究委员会进行了审查。除了用于商业通信卫星站维护的电力推进系统和少数深空科学任务外,当今几乎所有使用的火箭发动机都是化学火箭。就是说,它们通过结合反应性化学物质以产生热气体而产生推力,从而产生推力。化学推进的一个重要限制是它具有相对较低的比冲。在过去的50年中,已经开发出了许多先进的推进技术,其具有更高的比冲量。先进的太空推进技术将使我们远近的太阳系探索更加有效,并使任务设计者能够计划任务“随时随地飞行,并在目的地完成许多科学目标”,具有更高的可靠性。和安全。由于可能的任务种类繁多,并且具有多种多样的特性的候选推进技术,因此对于未来的任务而言,哪种技术“最佳”是一个难题。路线图和此处介绍了一系列技术,这些技术可为各种任务和目的地提供最佳的推进解决方案。

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