论文标题

Nancy Grace Roman太空望远镜系外行星的预测II:自由浮动行星检测率

Predictions of the Nancy Grace Roman Space Telescope Galactic Exoplanet Survey II: Free-Floating Planet Detection Rates

论文作者

Johnson, Samson A., Penny, Matthew T., Gaudi, B. Scott, Kerins, Eamonn, Rattenbury, Nicholas J., Robin, Annie C., Novati, Sebastiano Calchi, Henderson, Calen B.

论文摘要

南希·格雷斯·罗马(Nancy Grace Roman)空间望远镜(罗马)将使用重力微透镜进行银河系外行星调查(RGE),以发现半肌轴的界限外行星。罗马人甚至对无重力绑定到任何宿主恒星的行星质量物体敏感。这种自由浮动的行星质量物体(FFP)将被检测到比几天短的时间表的隔离微透析事件。对FFP的丰度和质量功能的测量是对行星系统形成和演变的有力诊断,以及通过直接崩溃形成隔离对象的物理学。我们表明,罗马人将对来自火星($ 0.1 m_ \ oplus $)的大块的FFP镜头敏感到天然气巨头($ M \ gtrsim100m_ \ oplus $),作为与时尺度的隔离镜头事件,分别从几个小时到几个小时。我们研究了检测标准对调查的影响,尤其是在低质量镜头的有限源效应的情况下。检测的数量将取决于这种FFP的丰度随质量的函数,目前的约束很差。假设FFP遵循CASSAN等人改编的冷行星的信托质量功能。 (2012年),我们估计罗马将检测到$ \ sim250 $ ffps,质量降低到火星(包括$ \ sim 60 $,带有群众$ \ le m_ \ oplus $)。我们还预测,与当前存在的约束相比,罗马人将至少提高FFP种群的上限至少一个数量级。

The Nancy Grace Roman Space Telescope (Roman) will perform a Galactic Exoplanet Survey (RGES) to discover bound exoplanets with semi-major axes greater than 1 au using gravitational microlensing. Roman will even be sensitive to planetary mass objects that are not gravitationally bound to any host star. Such free-floating planetary mass objects (FFPs) will be detected as isolated microlensing events with timescales shorter than a few days. A measurement of the abundance and mass function of FFPs is a powerful diagnostic of the formation and evolution of planetary systems, as well as the physics of the formation of isolated objects via direct collapse. We show that Roman will be sensitive to FFP lenses that have masses from that of Mars ($0.1 M_\oplus$) to gas giants ($M\gtrsim100M_\oplus$) as isolated lensing events with timescales from a few hours to several tens of days, respectively. We investigate the impact of the detection criteria on the survey, especially in the presence of finite-source effects for low-mass lenses. The number of detections will depend on the abundance of such FFPs as a function of mass, which is at present poorly constrained. Assuming that FFPs follow the fiducial mass function of cold, bound planets adapted from Cassan et al. (2012), we estimate that Roman will detect $\sim250$ FFPs with masses down to that of Mars (including $\sim 60$ with masses $\le M_\oplus$). We also predict that Roman will improve the upper limits on FFP populations by at least an order of magnitude compared to currently-existing constraints.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源