arXiv Open Access 2024

Ocean Circulation on Tide-locked Lava Worlds, Part II: Scalings

Yanhong Lai Wanying Kang Jun Yang
Lihat Sumber

Abstrak

On tidally locked lava planets, magma ocean can form on the permanent dayside. The circulation of the magma ocean can be driven by stellar radiation and atmospheric winds. The strength of ocean circulation and the depth of the magma ocean depend on external forcings and the dominant balance of the momentum equation. In this study, we develop scaling laws for the magma ocean depth, oceanic current speed, and ocean heat transport convergence driven by stellar and wind forcings in three different dynamic regimes: non-rotating viscosity-dominant Regime I, non-rotating inviscid limit Regime II, and rotation-dominant Regime III. Scaling laws suggest that magma ocean depth, current speed, and ocean heat transport convergence are controlled by various parameters, including vertical diffusivity/viscosity, substellar temperature, planetary rotation rate, and wind stress. In general, scaling laws predict that magma ocean depth ranges from a few meters to a few hundred meters. For Regime I, results from scaling laws are further confirmed by numerical simulations. Considering the parameters of a typical lava super-Earth, we found that the magma ocean is most likely in the rotation-dominant Regime III.

Topik & Kata Kunci

Penulis (3)

Y

Yanhong Lai

W

Wanying Kang

J

Jun Yang

Format Sitasi

Lai, Y., Kang, W., Yang, J. (2024). Ocean Circulation on Tide-locked Lava Worlds, Part II: Scalings. https://arxiv.org/abs/2408.09985

Akses Cepat

Lihat di Sumber
Informasi Jurnal
Tahun Terbit
2024
Bahasa
en
Sumber Database
arXiv
Akses
Open Access ✓