Ocean Tides on Asynchronously Rotating Planets Orbiting Low-mass Stars

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Hauptverfasser: Shi, Jiaru, Yang, Jun, Abbot, Dorian S., Liu, Yonggang, Kang, Wanying, Lin, Yufeng
Format: Preprint
Veröffentlicht: 2025
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author Shi, Jiaru
Yang, Jun
Abbot, Dorian S.
Liu, Yonggang
Kang, Wanying
Lin, Yufeng
author_facet Shi, Jiaru
Yang, Jun
Abbot, Dorian S.
Liu, Yonggang
Kang, Wanying
Lin, Yufeng
contents Planets in the liquid-water habitable zone of low-mass stars experience large tidal forces, $10^3$ to $10^4$ times those on Earth, due to the small distance between the habitable zone and the host stars. Therefore, interior solid tides, ocean tides and atmospheric tides on these planets could be much stronger than that on Earth, but rare work has been done to explicitly simulate the ocean tides. Here, for the first time, we perform global ocean tide simulations and show that ocean tides on asynchronously rotating planets with large eccentricities can reach $\mathcal{O}(1000)\,\mathrm{m}$ in height and $\mathcal{O}(10)\,\mathrm{m\,s^{-1}}$ in flow speed. Interactions between tide and bottom topography can induce large energy dissipation, $\sim\mathcal{O}(100)\,\mathrm{W\,m^{-2}}$ in global mean. This tidal energy dissipation can strongly accelerate orbital evolution by 1-2 orders of magnitude. However, for planets with small eccentricities, the ocean tides are much weaker but still comparable to that on modern Earth. Our results suggest that ocean tides on eccentric planets orbiting low-mass stars are orders of magnitude more powerful than those on Earth and can dramatically influence surface geography and orbital evolution.
format Preprint
id arxiv_https___arxiv_org_abs_2507_03850
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Ocean Tides on Asynchronously Rotating Planets Orbiting Low-mass Stars
Shi, Jiaru
Yang, Jun
Abbot, Dorian S.
Liu, Yonggang
Kang, Wanying
Lin, Yufeng
Earth and Planetary Astrophysics
Planets in the liquid-water habitable zone of low-mass stars experience large tidal forces, $10^3$ to $10^4$ times those on Earth, due to the small distance between the habitable zone and the host stars. Therefore, interior solid tides, ocean tides and atmospheric tides on these planets could be much stronger than that on Earth, but rare work has been done to explicitly simulate the ocean tides. Here, for the first time, we perform global ocean tide simulations and show that ocean tides on asynchronously rotating planets with large eccentricities can reach $\mathcal{O}(1000)\,\mathrm{m}$ in height and $\mathcal{O}(10)\,\mathrm{m\,s^{-1}}$ in flow speed. Interactions between tide and bottom topography can induce large energy dissipation, $\sim\mathcal{O}(100)\,\mathrm{W\,m^{-2}}$ in global mean. This tidal energy dissipation can strongly accelerate orbital evolution by 1-2 orders of magnitude. However, for planets with small eccentricities, the ocean tides are much weaker but still comparable to that on modern Earth. Our results suggest that ocean tides on eccentric planets orbiting low-mass stars are orders of magnitude more powerful than those on Earth and can dramatically influence surface geography and orbital evolution.
title Ocean Tides on Asynchronously Rotating Planets Orbiting Low-mass Stars
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2507.03850