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Planetary Systems in Star Clusters: the dynamical evolution and survival

机译:星星集群的行星系统:动态进化和生存

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Most stars form in crowded stellar environments. Such star forming regions typically dissolve within ten million years, while others remain bound as stellar groupings for hundreds of millions to billions of years, and then become the open clusters or globular clusters that are present in our Milky Way galaxy today. A large fraction of stars in the Galaxy hosts planetary companions. To understand the origin and dynamical evolution of such exoplanet systems, it is necessary to carefully study the effect of their environments. Here, we combine theoretical estimates with state-of-the-art numerical simulations of evolving planetary systems similar to our own solar system in different star cluster environments. We combine the REBOUND planetary system evolution code, and the NBODY6++GPU star cluster evolution code, integrated in the AMUSE multi-physics environment. With our study we can constrain the effect of external perturbations of different environments on the planets and debris structures of a wide variety of planetary systems, which may play a key role for the habitability of exoplanets in the Universe.
机译:大多数恒星在拥挤的恒星环境中形成。这种星形成形区域通常在千万年内溶解,而其他星级仍然被纳入恒星分组数十亿岁至数十亿岁,然后成为今天银河系中的露天簇或球簇簇。银河系中的大部分恒星主持了行星伴侣。要了解这种外产系统的起源和动态演化,有必要仔细研究其环境的效果。在这里,我们将理论估计与最先进的数值模拟相结合,这些数字模拟了不同星形集群环境中的不断发展的行星系统。我们将反弹行星系统演变代码和Nbody6 ++ GPU星座演变代码结合在一起,集成在amuse多物理环境中。通过我们的研究,我们可以限制不同环境对各种行星系统的行星和碎片结构的外部扰动的影响,这可能在宇宙中的产出的居住性发挥关键作用。

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