论文标题
部分可观测时空混沌系统的无模型预测
MOA-2020-BLG-135Lb: A New Neptune-class Planet for the Extended MOA-II Exoplanet Microlens Statistical Analysis
论文作者
论文摘要
我们报告了MOA-2020-BLG-135事件的光曲线分析,该分析导致发现了新的Neptune级星球MOA-2020-BLG-135LB。以$ q = 1.52 _ { - 0.31}^{+0.39} \ times 10^{ - 4} $和分离$ s \ oft1 $的派生质量比为$ q = 1.52 _ { - 0.31}^{+0.39} \ times 10^{ - 4} $,该行星正好在休息时间,可能是由Moa Collaption(Suzuki Collocoration(Suzuki et al .2016))衍生的。我们根据银河系模型估算镜头系统的性质,并考虑两个不同的贝叶斯先验:一个假设所有恒星具有相同的行星托管概率,而另一个行星则更有可能绕巨大的恒星绕。凭借统一的宿主质量,我们预测镜头系统可能是质量$ $ M_ \ Mathrm {Planet} = 11.3 _ { - 6.9}^{+19.2} M_ \ oplus $的行星,MAS $ M_ \ matrm {host} = 0.23 = 0.23 _}位于距离$ d_l = 7.9 _ { - 1.0}^{+1.0} \; \ mathrm {kpc} $。在此之前,该行星的发生按宿主星质量成比例,估计的镜头系统属性为$ M_ \ Mathrm {Planet} = 25 _ { - 15}^{+22} M_ \ oplus $,$ m_ \ mathrm {host} $ d_l = 8.3 _ { - 1.0}^{+0.9} \; \ mathrm {kpc} $。该行星有资格纳入扩展的MOA-II系外行星微片样品。
We report the light-curve analysis for the event MOA-2020-BLG-135, which leads to the discovery of a new Neptune-class planet, MOA-2020-BLG-135Lb. With a derived mass ratio of $q=1.52_{-0.31}^{+0.39} \times 10^{-4}$ and separation $s\approx1$, the planet lies exactly at the break and likely peak of the exoplanet mass-ratio function derived by the MOA collaboration (Suzuki et al. 2016). We estimate the properties of the lens system based on a Galactic model and considering two different Bayesian priors: one assuming that all stars have an equal planet-hosting probability and the other that planets are more likely to orbit more massive stars. With a uniform host mass prior, we predict that the lens system is likely to be a planet of mass $m_\mathrm{planet}=11.3_{-6.9}^{+19.2} M_\oplus$ and a host star of mass $M_\mathrm{host}=0.23_{-0.14}^{+0.39} M_\odot$, located at a distance $D_L=7.9_{-1.0}^{+1.0}\;\mathrm{kpc}$. With a prior that holds that planet occurrence scales in proportion to the host star mass, the estimated lens system properties are $m_\mathrm{planet}=25_{-15}^{+22} M_\oplus$, $M_\mathrm{host}=0.53_{-0.32}^{+0.42} M_\odot$, and $D_L=8.3_{-1.0}^{+0.9}\; \mathrm{kpc}$. This planet qualifies for inclusion in the extended MOA-II exoplanet microlens sample.