Eccentricity and inclination of massive planets inside low-density cavities: results of 3D simulations

被引:1
|
作者
Romanova, M. M. [1 ,2 ]
Koldoba, A., V [3 ]
Ustyugova, G., V [4 ]
Espaillat, C. [5 ]
Lovelace, R. V. E. [1 ,2 ]
机构
[1] Cornell Univ, Dept Astron, Ithaca, NY 14853 USA
[2] Cornell Univ, Carl Sagan Inst, Ithaca, NY 14853 USA
[3] Moscow Inst Phys & Technol, Dolgoprudnyi 141700, Moscow, Russia
[4] Keldysh Inst Appl Math, Moscow 125047, Russia
[5] Boston Univ, Dept Astron, 725 Commonwealth Ave, Boston, MA 02215 USA
关键词
accretion discs; hydrodynamics; planet-disc interactions; protoplanetary discs; INCLINED ORBIT; DISK; EVOLUTION; MIGRATION; JUPITERS; BINARY; GROWTH; PERTURBATIONS; RESONANCES; EXCITATION;
D O I
10.1093/mnras/stae1658
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We study the evolution of eccentricity and inclination of massive planets in low-density cavities of protoplanetary discs using three-dimensional (3D) simulations. When the planet's orbit is aligned with the equatorial plane of the disc, the eccentricity increases to high values of 0.7-0.9 due to the resonant interaction with the inner parts of the disc. For planets on inclined orbits, the eccentricity increases due to the Kozai-Lidov mechanism, where the disc acts as an external massive body, which perturbs the planet's orbit. At small inclination angles, ${\lesssim}30<^>\circ$, the resonant interaction with the inner disc strongly contributes to the eccentricity growth, while at larger angles, eccentricity growth is mainly due to the Kozai-Lidov mechanism. We conclude that planets inside low-density cavities tend to acquire high eccentricity if favourable conditions give sufficient time for growth. The final value of the planet's eccentricity after the disc dispersal depends on the planet's mass and the properties of the cavity and protoplanetary disc.
引用
收藏
页码:3509 / 3525
页数:17
相关论文
共 50 条
  • [1] Eccentricity growth of massive planets inside cavities of protoplanetary discs
    Romanova, M. M.
    Koldoba, A., V
    Ustyugova, G., V
    Lai, D.
    Lovelace, R. V. E.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2023, 523 (02) : 2832 - 2849
  • [2] A Recipe for Eccentricity and Inclination Damping for Partial-gap Opening Planets in 3D Disks
    Pichierri, Gabriele
    Bitsch, Bertram
    Lega, Elena
    ASTROPHYSICAL JOURNAL, 2024, 967 (02):
  • [3] Inside the core of a young massive star cluster: 3D MHD simulations
    Badmaev, D., V
    Bykov, A. M.
    Kalyashova, M. E.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2022, 517 (02) : 2818 - 2830
  • [4] 3-D muographic inversion in the exploration of cavities and low-density fractured zones
    Balazs, Laszlo
    Nyitrai, Gabor
    Suranyi, Gergely
    Hamar, Gergo
    Barnafoeldi, Gergely Gabor
    Varga, Dezso
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2023, 236 (01) : 700 - 710
  • [5] 3D Oleophilic Sorbent Films Based on Recycled Low-Density Polyethylene
    Saleem, Junaid
    Moghal, Zubair Khalid Baig
    McKay, Gordon
    POLYMERS, 2024, 16 (01)
  • [6] 3D anelastic simulations of convection in massive stars
    Kuhlen, M
    Wosley, SE
    Glatzmaier, GA
    3D STELLAR EVOLUTION, 2003, 293 : 147 - 156
  • [7] Core-collapse supernova inside the core of a young massive star cluster: 3D MHD simulations
    Badmaev, D. V.
    Bykov, A. M.
    Kalyashova, M. E.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2024, 527 (02) : 3749 - 3760
  • [8] Neuron-Inspired Steiner Tree Networks for 3D Low-Density Metastructures
    Yu, Haoyi
    Zhang, Qiming
    Cumming, Benjamin P.
    Goi, Elena
    Cole, Jared H.
    Luan, Haitao
    Chen, Xi
    Gu, Min
    ADVANCED SCIENCE, 2021, 8 (19)
  • [9] Superconducting Properties of 3D Low-Density Translation-Invariant Bipolaron Gas
    Lakhno, V. D.
    ADVANCES IN CONDENSED MATTER PHYSICS, 2018, 2018
  • [10] Fusion of Low-Density LiDAR Data with RGB Images for Plant 3D Modeling
    Garcia, Manuel F.
    Mendez, Diego
    Colorado, Julian D.
    2020 VIRTUAL SYMPOSIUM IN PLANT OMICS SCIENCES (OMICAS), 2020,