论文标题
利用周期性轨道作为开普勒和K2系统的动态线索
Exploiting periodic orbits as dynamical clues for Kepler and K2 systems
论文作者
论文摘要
迄今为止,已经发现了许多具有平均动感共振或共振链中行星的外气系统。运输方法与运输时机变化分析相结合,可深入了解系统的物理和轨道参数,但受到观察局限性的影响。当一个(近)共振的行星系统位于稳定的周期轨道的动态邻里时,可以保证其长期稳定性,因此可以保证其生存。我们使用周期轨道的内在特性,即它们的线性水平和垂直稳定性,以验证或进一步限制检测到的两行星系统的轨道元素。我们计算了几个两行星开普勒和K2系统的一般三体问题中的周期性轨道家族。系统的动态邻域揭开了动态稳定性图。实现了对K2-21,K2-24,Kepler-9和(非稳态)Kepler-108近谐振系统的轨道元素的其他验证或约束。尽管平均动作共振锁定可保护系统K2-21和K2-24系统的长期演变,但对于Kepler-9系统而言,这种共振的演变无法通过Apsidal抗对准来维持其稳定性。对于Kepler-108系统,我们发现其相互倾斜的行星的稳定性仅通过平均动力共振或与倾斜型共振的同时证明是合理的。展望未来,基于周期性轨道的动力分析可能会在与观测数据的拟合并行进行时产生近共振外系统的较好约束轨道元素。
Many extrasolar systems possessing planets in mean-motion resonance or resonant chain have been discovered to date. The transit method coupled with transit timing variation analysis provides an insight into the physical and orbital parameters of the systems, but suffers from observational limitations. When a (near-)resonant planetary system resides in the dynamical neighbourhood of a stable periodic orbit, its long-term stability, and thus survival, can be guaranteed. We use the intrinsic property of the periodic orbits, namely their linear horizontal and vertical stability, to validate or further constrain the orbital elements of detected two-planet systems. We computed the families of periodic orbits in the general three-body problem for several two-planet Kepler and K2 systems. The dynamical neighbourhood of the systems is unveiled with maps of dynamical stability. Additional validations or constraints on the orbital elements of K2-21, K2-24, Kepler-9, and (non-coplanar) Kepler-108 near-resonant systems were achieved. While a mean-motion resonance locking protects the long-term evolution of the systems K2-21 and K2-24, such a resonant evolution is not possible for the Kepler-9 system, whose stability is maintained through an apsidal anti-alignment. For the Kepler-108 system, we find that the stability of its mutually inclined planets could be justified either solely by a mean-motion resonance, or in tandem with an inclination-type resonance. Going forward, dynamical analyses based on periodic orbits could yield better constrained orbital elements of near-resonant extrasolar systems when performed in parallel to the fitting of the observational data.