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首页> 外文期刊>The Astrophysical journal >IN SITU ACCRETION OF HYDROGEN-RICH ATMOSPHERES ON SHORT-PERIOD SUPER-EARTHS: IMPLICATIONS FOR THE KEPLER-11 PLANETS
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IN SITU ACCRETION OF HYDROGEN-RICH ATMOSPHERES ON SHORT-PERIOD SUPER-EARTHS: IMPLICATIONS FOR THE KEPLER-11 PLANETS

机译:短时期超地球上原位富氢大气的吸收:对KEPLER-11行星的影响

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Motivated by recent discoveries of low-density super-Earths with short orbital periods, we have investigated in situ accretion of H-He atmospheres on rocky bodies embedded in dissipating warm disks, by simulating quasi-static evolution of atmospheres that connect to the ambient disk. We have found that the atmospheric evolution has two distinctly different outcomes, depending on the rocky body's mass: while the atmospheres on massive rocky bodies undergo runaway disk-gas accretion, those on light rocky bodies undergo significant erosion during disk dispersal. In the atmospheric erosion, the heat content of the rocky body that was previously neglected plays an important role. We have also realized that the atmospheric mass is rather sensitive to disk temperature in the mass range of interest in this study. Our theory is applied to recently detected super-Earths orbiting Kepler-11 to examine the possibility that the planets are rock-dominated ones with relatively thick H-He atmospheres. The application suggests that the in situ formation of the relatively thick H-He atmospheres inferred by structure modeling is possible only under restricted conditions, namely, relatively slow disk dissipation and/or cool environments. This study demonstrates that low-density super-Earths provide important clues to understanding of planetary accretion and disk evolution.
机译:受近期发现的低密度超地球轨道周期短的推动,我们通过模拟与环境磁盘相连的大气的准静态演变,研究了H-He大气在消散暖盘中埋藏的岩石体上的原位增生。 。我们已经发现,根据岩石体的质量,大气演化有两个截然不同的结果:尽管大型岩石体上的大气经历了盘状气体的失控吸附,而轻质岩石上的大气却在盘状扩散过程中遭受了明显的侵蚀。在大气侵蚀中,以前被忽略的岩石体的热量起着重要作用。我们还认识到,在这项研究中,大气质量对磁盘温度相当敏感。我们的理论被应用于最近发现的绕开普勒11轨道运行的超地球,以检验行星是H-He大气层相对较厚的岩石为主的行星的可能性。该申请表明,由结构建模推断出的相对厚的H-He气氛的原位形成仅在受限条件下才可能进行,即相对较慢的磁盘耗散和/或凉爽的环境。这项研究表明,低密度超地球为理解行星增生和磁盘演化提供了重要线索。

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