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Recent Electric Propulsion Development Activities for NASA Science Missions

机译:NASA科学任务的最新电力推进发展活动

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摘要

(The primary source of electric propulsion development throughout NASA is managed by the In-Space Propulsion Technology Project at the NASA Glenn Research Center for the Science Mission Directorate. The objective of the Electric Propulsion project area is to develop near-term electric propulsion technology to enhance or enable science missions while minimizing risk and cost to the end user. Major hardware tasks include developing NASA s Evolutionary Xenon Thruster (NEXT), developing a long-life High Voltage Hall Accelerator (HIVHAC), developing an advanced feed system, and developing cross-platform components. The objective of the NEXT task is to advance next generation ion propulsion technology readiness. The baseline NEXT system consists of a high-performance, 7-kW ion thruster; a high-efficiency, 7-kW power processor unit (PPU); a highly flexible advanced xenon propellant management system (PMS); a lightweight engine gimbal; and key elements of a digital control interface unit (DCIU) including software algorithms. This design approach was selected to provide future NASA science missions with the greatest value in mission performance benefit at a low total development cost. The objective of the HIVHAC task is to advance the Hall thruster technology readiness for science mission applications. The task seeks to increase specific impulse, throttle-ability and lifetime to make Hall propulsion systems applicable to deep space science missions. The primary application focus for the resulting Hall propulsion system would be cost-capped missions, such as competitively selected, Discovery-class missions. The objective of the advanced xenon feed system task is to demonstrate novel manufacturing techniques that will significantly reduce mass, volume, and footprint size of xenon feed systems over conventional feed systems. This task has focused on the development of a flow control module, which consists of a three-channel flow system based on a piezo-electrically actuated valve concept, as well as a pressure control module, which will regulate pressure from the propellant tank. Cross-platform component standardization and simplification are being investigated through the Standard Architecture task to reduce first user costs for implementing electric propulsion systems. Progress on current hardware development, recent test activities and future plans are discussed.
机译:(整个NASA电动推进发展的主要来源是由NASA格伦研究中心科学任务局的太空推进技术项目管理的。电动推进项目领域的目标是开发近期的电动推进技术,以主要任务包括:开发NASA的进化型氙气推进器(NEXT),开发长寿命的高压霍尔加速器(HIVHAC),开发先进的供料系统以及开发或执行科学任务,同时最大程度地降低最终用户的风险和成本。跨平台组件。NEXT任务的目标是提高下一代离子推进技术的就绪性。NEXT基准系统包括高性能7 kW离子推进器,高效7 kW功率处理器单元( PPU);高度灵活的高级氙气推进剂管理系统(PMS);轻型发动机万向节;以及数字控制接口单元(DCIU)的关键元件)(包括软件算法)。选择这种设计方法是为了以较低的总开发成本为未来的NASA科学任务提供最大的任务性能收益。 HIVHAC任务的目的是促进霍尔推进器技术为科学任务应用做好准备。该任务旨在增加特定的脉冲,节流能力和使用寿命,以使霍尔推进系统适用于深空科学任务。最终的霍尔推进系统的主要应用重点是成本受限的任务,例如竞争性选择的探索级任务。氙气进料系统高级任务的目的是演示新颖的制造技术,与传统的进料系统相比,该技术将大大减少氙气进料系统的质量,体积和占地面积。这项任务集中在流量控制模块的开发上,该模块由基于压电电动阀概念的三通道流量系统以及压力控制模块组成,该模块将调节推进剂罐的压力。正在通过“标准体系结构”任务研究跨平台组件的标准化和简化,以减少实施电动推进系统的第一用户成本。讨论了当前硬件开发,最近的测试活动和未来计划的进展。

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    Pencil, Eric J.;

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