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Main Authors: Lai, Yanhong, Kang, Wanying, Yang, Jun, Tan, Xianyu
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2604.00535
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author Lai, Yanhong
Kang, Wanying
Yang, Jun
Tan, Xianyu
author_facet Lai, Yanhong
Kang, Wanying
Yang, Jun
Tan, Xianyu
contents Tidally locked lava planets are hot, rocky worlds on close-in orbits with a permanent molten dayside. With JWST, their surfaces and atmospheres are beginning to be revealed. This work investigates 3D magma-ocean dynamics, derives scaling laws for the resulting ocean heat transport (OHT), and predicts its detectability. For the first time, the ocean circulation driven by the intense momentum and mass exchanges with the supersonic atmosphere is considered in addition to that by thermal forcing. The wind forcing turns out to overwhelmingly dominate the other two mechanisms, driving ocean currents reaching $\sim$100 m s$^{-1}$ and greatly expanding the latitudinal extent of the Matsuno-Gill response. Despite these extreme flow speeds, scaling analysis and 3D simulations consistently demonstrate that magma-ocean circulation alone does not produce an observable hotspot offset. This inefficiency arises because basin geometry and circulation structure fundamentally constrain zonal heat redistribution, suppressing large-scale longitudinal transport even under vigorous flow.
format Preprint
id arxiv_https___arxiv_org_abs_2604_00535
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Three-Dimensional Ocean Dynamics and Detectability of Tidally Locked Lava Worlds
Lai, Yanhong
Kang, Wanying
Yang, Jun
Tan, Xianyu
Earth and Planetary Astrophysics
Tidally locked lava planets are hot, rocky worlds on close-in orbits with a permanent molten dayside. With JWST, their surfaces and atmospheres are beginning to be revealed. This work investigates 3D magma-ocean dynamics, derives scaling laws for the resulting ocean heat transport (OHT), and predicts its detectability. For the first time, the ocean circulation driven by the intense momentum and mass exchanges with the supersonic atmosphere is considered in addition to that by thermal forcing. The wind forcing turns out to overwhelmingly dominate the other two mechanisms, driving ocean currents reaching $\sim$100 m s$^{-1}$ and greatly expanding the latitudinal extent of the Matsuno-Gill response. Despite these extreme flow speeds, scaling analysis and 3D simulations consistently demonstrate that magma-ocean circulation alone does not produce an observable hotspot offset. This inefficiency arises because basin geometry and circulation structure fundamentally constrain zonal heat redistribution, suppressing large-scale longitudinal transport even under vigorous flow.
title Three-Dimensional Ocean Dynamics and Detectability of Tidally Locked Lava Worlds
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2604.00535