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End-to-End Assessment of a Large Aperture Segmented Ultraviolet Optical Infrared (UVOIR) Telescope Architecture

机译:大孔径分段紫外光红外(UVOIR)望远镜架构的端到端评估

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Key challenges of a future large aperture, segmented Ultraviolet Optical Infrared (UVOIR) Telescope capable of performing a spectroscopic survey of hundreds of Exoplanets will be sufficient stability to achieve 10^-10 contrast measurements and sufficient throughput and sensitivity for high yield exo-earth spectroscopic detection. Our team has collectively assessed an optimized end to end architecture including a high throughput coronagraph capable of working with a segmented telescope, a cost-effective and heritage based stable segmented telescope, a control architecture that minimizes the amount of new technologies, and an exo-earth yield assessment to evaluate potential performance. These efforts are combined through integrated modeling, coronagraph evaluations, and exo-earth yield calculations to assess the potential performance of the selected architecture. In addition, we discusses the scalability of this architecture to larger apertures and the technological tall poles to enabling these missions.
机译:未来的大孔径的主要挑战,分段紫外光学红外(UVOIR)望远镜能够执行数百个外行星的分光测量的将是足够的稳定性,以实现10 ^ -10对比度测量和足够的吞吐量和灵敏度高产量外切土分光检测。我们的团队已经集体评估优化的端到端的架构,包括能够与分段望远镜工作的高吞吐量日冕,具有成本效益和基于遗产分割稳定望远镜,控制架构,最大限度地减少新技术的量,和外切稀土产量评估,以评估潜在的性能。这些努力是通过集成的建模,日冕评估和外切地球收益率的计算相结合,以评估所选择的架构的潜在性能。此外,我们讨论了这个架构的较大孔和技术高大的电线杆使这些任务的可扩展性。

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