We report on the long-term dynamical evolution of the two-planet Kepler-36 system, which consists of a super-Earth and a sub-Neptune in a tightly packed orbital configuration. The orbits of the planets, which we studied through numerical integrations of initial conditions that are consistent with observations of the system, are chaotic with a Lyapunov time of only ~10 years. The chaos is a consequence of a particular set of orbital resonances, with the inner planet orbiting 34 times for every 29 orbits of the outer planet. The rapidity of the chaos is due to the interaction of the 29:34 resonance with the nearby first-order 6:7 resonance, in contrast to the usual case in which secular terms in the Hamiltonian play a dominant role. Only one ...
International audiencee present N-body simulations of resonant planets with inclined orbits that sho...
The physical basis of chaos in the solar system is now better understood: in all cases investigated ...
A long-term numerical integration of the classical Newtonian approximation to the planetary orbital ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2014.Cataloged from PD...
ABSTRACT We study the chaotic orbital evolution of planetary systems, focusing on secular (i.e., orb...
On timescales that greatly exceed an orbital period, typical planetary orbits evolve in a stochastic...
On timescales that greatly exceed an orbital period, typical planetary orbits evolve in a stochastic...
Mean motion resonances, in which two orbital frequencies are close to an integer multiple of each ot...
International audienceMean motion resonances, in which two orbital frequencies are close to an integ...
PhDThe detection of more than 130 multiple planet systems makes it necessary to interpret a broader...
Many of exoplanetary systems consist of more than one planet and the study of planetary orbits with ...
Chaotic diffusion is supposed to be responsible for orbital instabilities in planetary systems after...
e present N-body simulations of resonant planets with inclined orbits that show chaotically evolving...
International audiencee present N-body simulations of resonant planets with inclined orbits that sho...
Chaotic diffusion is supposed to be responsible for orbital instabilities in planetary systems after...
International audiencee present N-body simulations of resonant planets with inclined orbits that sho...
The physical basis of chaos in the solar system is now better understood: in all cases investigated ...
A long-term numerical integration of the classical Newtonian approximation to the planetary orbital ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2014.Cataloged from PD...
ABSTRACT We study the chaotic orbital evolution of planetary systems, focusing on secular (i.e., orb...
On timescales that greatly exceed an orbital period, typical planetary orbits evolve in a stochastic...
On timescales that greatly exceed an orbital period, typical planetary orbits evolve in a stochastic...
Mean motion resonances, in which two orbital frequencies are close to an integer multiple of each ot...
International audienceMean motion resonances, in which two orbital frequencies are close to an integ...
PhDThe detection of more than 130 multiple planet systems makes it necessary to interpret a broader...
Many of exoplanetary systems consist of more than one planet and the study of planetary orbits with ...
Chaotic diffusion is supposed to be responsible for orbital instabilities in planetary systems after...
e present N-body simulations of resonant planets with inclined orbits that show chaotically evolving...
International audiencee present N-body simulations of resonant planets with inclined orbits that sho...
Chaotic diffusion is supposed to be responsible for orbital instabilities in planetary systems after...
International audiencee present N-body simulations of resonant planets with inclined orbits that sho...
The physical basis of chaos in the solar system is now better understood: in all cases investigated ...
A long-term numerical integration of the classical Newtonian approximation to the planetary orbital ...