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Breakthrough capability for UVOIR space astronomy: Reaching the darkest sky

机译:UVOIR太空天文学的突破能力:到达最黑暗的天空

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We describe how availability of new solar electric propulsion (SEP) technology can substantially increase the science capability of space astronomy missions working within the near-UV to far-infrared (UVOIR) spectrum by making dark sky orbits accessible for the first time. We present two case studies in which SEP is used to enable a 700 kg Explorer-class and 7000 kg flagship-class observatory payload to reach an orbit beyond where the zodiacal dust limits observatory sensitivity. The resulting scientific performance advantage relative to a Sun-Earth L2 point (SEL2) orbit is presented and discussed. We find that making SEP available to astrophysics Explorers can enable this small payload program to rival the science performance of much larger long development-time systems. Similarly, we find that astrophysics utilization of high power SEP being developed for the Asteroid Redirect Robotics Mission (ARRM) can have a substantial impact on the sensitivity performance of heavier flagship-class astrophysics payloads such as the UVOIR successor to the James Webb Space Telescope.
机译:我们描述了新的太阳能电动推进(SEP)技术的可用性如何通过首次使暗天空轨道进入而极大地提高了在近UV到远红外(UVOIR)光谱范围内工作的太空天文学任务的科学能力。我们提供了两个案例研究,其中使用SEP来使700千克探索者级和7000千克旗舰级天文台有效载荷到达轨道,超出了黄道尘埃限制天文台灵敏度的位置。提出并讨论了相对于日地L2点(SEL2)轨道所产生的科学性能优势。我们发现,向天体物理学家提供SEP可以使这个小的有效载荷程序与大型更长的开发时间系统的科学性能相媲美。同样,我们发现,为小行星重定向机器人飞行任务(ARRM)开发的高功率SEP的天体物理学利用率可能会对更重的旗舰级天体物理学有效载荷(如James Webb太空望远镜的UVOIR继任者)的灵敏度性能产生重大影响。

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