论文标题
具有两个巨型行星的系外行星系统的相对可居住性
Relative Habitability of Exoplanet Systems with Two Giant Planets
论文作者
论文摘要
行星系统的结构可以通过轨道影响影响行星的可居住性,尤其是在稳定性和怪异的领域。其中一些效果很容易显而易见,尤其是当它们出现在易于数值可计算的短时标准上时。但是,生命的外观和演变可能发生在Gigayear TimeScales上,足够长的时间使世俗影响变得重要。这些效果很难研究,因为直接整合需要大量的计算时间。在本文中,我们将半分析框架与N体的整合和预测技术一起应用,以确定在具有多维参数空间的两个巨型伴侣的系统中,地球样星球的相对宜居性。与仅包含单个地球的行星的系统相比,相对的宜居性量化了综合的可居住性概率。我们发现具有质量,偏心,位置,间距,倾斜度和对齐方式的趋势,包括由于巨型行星,系统更可居住的配置。只要系统保持稳定,陆地行星的中等偏心率激发可以通过通过较高的平均辐照度增加可居住区的外边界来有益。在我们的模拟中,中值($ \ pm1σ$)可居住的星球的偏心率为0.11(+0.16,-0.08),尽管它开始循环。低质量,广泛分离和中等偏心的巨人可以实现这一目标,这是同伴的“超可行”配置。
The architecture of a planetary system can influence the habitability of a planet via orbital effects, particularly in the areas of stability and eccentricity. Some of these effects are readily apparent, particularly when they occur on short timescales that are easily numerically calculable. However, the appearance and evolution of life can take place on gigayear timescales, long enough that secular effects become important. These effects are difficult to investigate, as a direct integration requires significant computational time. In this paper, we apply a semi-analytic framework in conjunction with N-body integrations and predictive techniques to determine the relative habitability for an Earth-like planet in a system with two giant companions over a multidimensional parameter space. Relative habitability quantifies the integrated habitability probability compared to a system containing only a single Earth-like planet. We find trends with mass, eccentricity, location, spacing, inclination, and alignment of the giant planets, including configurations where the system is more habitable due to the giant planets. As long as the system remains stable, a moderate eccentricity excitation of the terrestrial planet can be beneficial by increasing the outer boundary of the habitable zone through higher mean irradiance. In our simulations, the median ($\pm 1 σ$) habitable planet has an eccentricity of 0.11 (+0.16, -0.08), though it started circular. Low-mass, widely separated, and moderately eccentric perturbing giants can accomplish this, an "ultra-habitable" configuration of companions.