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PHOTOMETRY’S BRIGHT FUTURE: DETECTING SOLAR SYSTEM ANALOGS WITH FUTURE SPACE TELESCOPES

机译:光度法的光明未来:使用未来空间望远镜检测太阳能系统模拟

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Time-series transit photometry from the Kepler space telescope has allowed for the discovery of thousands of exoplanets. We explore the potential of yet improved future missions such as PLATO 2.0 in detecting solar system analogs. We use real-world solar data and end-to-end simulations to explore the stellar and instrumental noise properties. By injecting and retrieving planets, rings, and moons of our own solar system, we show that the discovery of Venus?and Earth?analogs transiting G?dwarfs like our Sun is feasible at high signal-to-noise ratio after collecting 6 yr?of data, but Mars and Mercury analogs will be difficult to detect owing to stellar noise. In the best cases, Saturn's rings and Jupiter's moons will be detectable even in single-transit observations. Through the high number (1 billion) of observed stars by PLATO 2.0, it will become possible to detect thousands of single-transit events by cold gas giants, analogs?to our Jupiter, Saturn, Uranus, and Neptune. Our own solar system aside, we also show, through signal injection and retrieval, that PLATO 2.0?class photometry will allow for the secure detection of exomoons transiting quiet M?dwarfs. This is the first study analyzing in?depth the potential of future missions?and the ultimate limits of photometry, using realistic case examples.
机译:开普勒太空望远镜的时间序列瞬态光度法可以发现成千上万的系外行星。我们探索诸如PLATO 2.0之类的未来任务的改进潜力,以检测太阳系类似物。我们使用真实的太阳数据和端到端模拟来探索恒星和仪器的噪声特性。通过注入和获取我们自身太阳系的行星,环和卫星,我们表明,在收集了6年后,在高信噪比的情况下,发现通过类似我们太阳的G矮星的金星和地球类似物的发现是可行的。数据,但由于恒星噪声,很难检测到火星和水星类似物。在最好的情况下,即使在单次过境观测中,土星的环和木星的卫星也将被发现。通过PLATO 2.0观测到的大量恒星(> 10亿颗),将有可能探测到冷气巨星(类似于我们的木星,土星,天王星和海王星)的数千次单次过境事件。除了我们自己的太阳系外,我们还通过信号注入和检索显示,PLATO 2.0级测光法将能够安全地检测出穿过安静的矮人的外显子。这是第一份使用实际案例分析了未来任务的潜力和光度学极限的研究。

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