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The HADES RV Programme with HARPS-N at TNG

机译:在TNG上使用HARPS-N的HADES RV程序

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We present 20 yr of radial velocity (RV) measurements of the M1 dwarf Gl15A, combining five years of intensive RV monitoring with the HARPS-N spectrograph with 15 yr of archival HIRES/Keck RV data. We have carried out an MCMC-based analysis of the RV time series, inclusive of Gaussian Process (GP) approach to the description of stellar activity induced RV variations. Our analysis confirms the Keplerian nature and refines the orbital solution for the 11.44-day period super Earth, Gl15A b, reducing its amplitude to 1.68_(?0.18)~(+0.17)m s~(?1)( M sin i = 3.03_(?0.44)~(+0.46) M _(⊕)), and successfully models a long-term trend in the combined RV dataset in terms of a Keplerian orbit with a period around 7600 days and an amplitude of 2.5_(?1.0)~(+1.3)m s~(?1), corresponding to a super-Neptune mass ( M sin i = 36_(?18)~(+25) M _(⊕)) planetary companion. We also discuss the present orbital configuration of Gl15A planetary system in terms of the possible outcomes of Lidov–Kozai interactions with the wide-separation companion Gl15B in a suite of detailed numerical simulations. In order to improve the results of the dynamical analysis, we have derived a new orbital solution for the binary system, combining our RV measurements with astrometric data from the WDS catalogue. The eccentric Lidov–Kozai analysis shows the strong influence of Gl15B on the Gl15A planetary system, which can produce orbits compatible with the observed configuration for initial inclinations of the planetary system between 75° and 90°, and can also enhance the eccentricity of the outer planet well above the observed value, even resulting in orbital instability, for inclinations around 0° and 15°?30°. The Gl15A system is the multi-planet system closest to Earth, at 3.56 pc, and hosts the longest period RV sub-Jovian mass planet discovered so far. Its orbital architecture constitutes a very important laboratory for the investigation of formation and orbital evolution scenarios for planetary systems in binary stellar systems.
机译:我们介绍了M1矮人Gl15A的20年径向速度(RV)测量结果,并结合了15年的HIRES / Keck RV数据和HARPS-N光谱仪进行了5年的密集RV监测。我们已经对RV时间序列进行了基于MCMC的分析,包括描述星体活动引起的RV变化的高斯过程(GP)方法。我们的分析证实了开普勒性质并完善了11.44天周期的超地球Gl15A b的轨道解,将其振幅减小至1.68 _(?0.18)〜(+0.17)ms〜(?1)(M sin i = 3.03 _(?0.44)〜(+0.46)M _(⊕)),并成功地根据开普勒轨道(约7600天左右,振幅为2.5_(?)对合并的RV数据集进行了长期趋势建模。 1.0)〜(+1.3)ms〜(?1),对应于超海王星质量(M sin i = 36 _(?18)〜(+25)M _(⊕))行星伴星。我们还将在一组详细的数值模拟中,根据Lidov-Kozai与宽间隔伴星Gl15B相互作用的可能结果,讨论Gl15A行星系统的当前轨道配置。为了改善动力学分析的结果,我们将RV测量值与WDS目录中的天文数据相结合,得出了针对二元系统的新轨道解决方案。偏心的Lidov–Kozai分析表明,Gl15B对Gl15A行星系统产生了强烈影响,它可以产生与观察到的行星系统初始倾角在75°至90°之间倾斜的构形兼容的轨道,并且还可以增强外层的偏心率在0°和15°?30°左右的倾斜度时,行星远高于观测值,甚至会导致轨道不稳定。 Gl15A系统是最接近地球的多行星系统,为3.56 pc,拥有迄今为止发现的最长周期的RV亚木安质量行星。它的轨道结构构成了一个非常重要的实验室,用于研究双星系统中行星系统的形成和轨道演化情况。

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