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Development Status of High-Thrust Density Electrostatic Engines

机译:高推力密度静电发动机的发展现状

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Ion thruster technology offers the highest performance and efficiency of any mature electric propulsion thruster. It has by far the highest demonstrated total impulse of any technology option, demonstrated at input power levels appropriate for primary propulsion. It has also been successfully implemented for primary propulsion in both geocentric and heliocentric environments, with excellent ground/in-space correlation of both its performance and life. Based on these attributes there is compelling reasoning to continue the development of this technology: it is a leading candidate for high power applications; and it provides risk reduction for as-yet unproven alternatives. As such it is important that the operational limitations of ion thruster technology be critically examined - and in particular for its application to primary propulsion - its capabilities relative to thrust density and thrust-to-power ratio be understood This publication briefly addresses some of the considerations relative to achieving high thrust density and maximizing thrust-to-power ratio with ion thruster technology, and discusses the status of development work in this area being executed under a collaborative effort among NASA Glenn Research Center, The Aerospace Corporation, and the University of Michigan.
机译:离子推进器技术可提供任何成熟的电动推进器最高的性能和效率。迄今为止,在所有技术选择中,它的总总脉冲数最高,在适合于主推进力的输入功率水平上得到了证明。它已经成功地用于地心和日心环境中的一次推进,并且在性能和寿命方面都具有出色的地面/空间相关性。基于这些属性,有令人信服的理由继续开发该技术:它是高功率应用的领先候选者;并为尚未得到证实的替代方案降低了风险。因此,重要的是要严格检查离子推进器技术的操作局限性,尤其是将其应用于一次推进时,要了解其相对于推力密度和推力功率比的能力。该出版物简要介绍了一些考虑因素与使用离子推进器技术实现高推力密度和最大推力功率比有关,并讨论了在NASA格伦研究中心,航空航天公司和密歇根大学的共同努力下正在执行的该领域的开发工作状况。

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