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Preliminary Results on the Internal Assessment Study of the ESA Cosmic Vision Mission PLATO

机译:ESA宇宙视觉任务PLATO内部评估研究的初步结果

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In order to better understand the properties of exoplanetary systems, the Cosmic Vision mission "PLAnetary Transits and Oscilliations of stars" (PLATO) will detect and characterise exoplanets using their transit signature in front of a large sample of bright stars as well as measuring the seismic oscillations of the parent star of these exoplanets. PLATO is a potential mission of the European Space Agency's Science programme Cosmic Vision 2015-2025, with a planned launch by the end of 2017. The mission will be orbiting the Sun-Earth second Lagrangian point, which provides a stable thermal environment and maximum uninterrupted observing efficiency. The payload will consist of a number of individual catadioptric telescopes, covering a large field-of-view on the sky. It will allow for continuous observation of predetermined star fields in order to detect many exoplanetary systems as well as smaller exoplanets with longer orbital periods. Such performance is achieved by high time-resolution, high precision, and high duty-cycle visible photometry using catadioptric telescopes with CCD detectors. In order to fulfill the specific science requirements, special attention is being paid to the opto-mechanical design of the payload, in order to maximize the field-of-view and throughput of the optical system, while minimizing the image distortion, mass and volume of each telescope to ensure compatibility with the launcher's maximum payload capability. Ground-based observations will complement the observations made by PLATO to allow for further exoplanetary characterization. The paper provides a summary of the preliminary results achieved by the ESA internal pre-assessment study.
机译:为了更好地了解系外行星系统的性质,宇宙视觉任务“ PLAnetary Transit and Oscilliations of stars”(PLATO)将使用系移行星在大量明亮恒星前面的传递特征来检测和表征系外行星,并测量地震这些系外行星的母星的振荡。 PLATO是欧洲航天局科学计划“ 2015-2025年宇宙愿景”的潜在任务,计划于2017年底发射。该任务将绕太阳地球第二个拉格朗日点运行,该点将提供稳定的热环境和最大的不间断性观察效率。有效载荷将由多个单独的折反射式望远镜组成,并覆盖天空的广阔视野。它将允许连续观测预定的星场,以便探测许多系外行星系统以及具有较长轨道周期的较小系外行星。通过使用带有CCD检测器的折反射式望远镜进行高时间分辨率,高精度和高占空比可见光测光,可以实现这种性能。为了满足特定的科学要求,正在特别关注有效载荷的光机械设计,以使光学系统的视野和吞吐量最大化,同时将图像失真,质量和体积最小化。可以确保与发射器的最大有效载荷能力兼容。地面观测将补充PLATO所做的观测,以进一步表征系外行星。本文总结了ESA内部预评估研究取得的初步结果。

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