Rifting Venus: Insights From Numerical Modeling

Publication date

2023-03

Authors

Regorda, Alessandro
Thieulot, C.A.P.ISNI 0000000394059144
van Zelst, IrisISNI 0000000527856287
Erdős, Zoltán
Maia, Julia
Buiter, Susanne

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

taverne

Abstract

Venus is a terrestrial planet with dimensions similar to the Earth, but a vastly different geodynamic evolution, with recent studies debating the occurrence and extent of tectonic-like processes happening on the planet. The precious direct data that we have for Venus is very little, and there are only few numerical modeling studies concerning lithospheric-scale processes. However, the use of numerical models has proven crucial for our understanding of large-scale geodynamic processes of the Earth. Therefore, here we adapt 2D thermomechanical numerical models of rifting on Earth to Venus to study how the observed rifting structures on the Venusian surface could have been formed. More specifically, we aim to investigate how rifting evolves under the Venusian surface conditions and the proposed lithospheric structure. Our results show that a strong crustal rheology such as diabase is needed to localize strain and to develop a rift under the high surface temperature and pressure of Venus. The evolution of the rift formation is predominantly controlled by the crustal thickness, with a 25 km-thick diabase crust required to produce mantle upwelling and melting. The surface topography produced by our models fits well with the topography profiles of the Ganis and Devana Chasmata for different crustal thicknesses. We therefore speculate that the difference in these rift features on Venus could be due to different crustal thicknesses. Based on the estimated heat flux of Venus, our models indicate that a crust with a global average lower than 35 km is the most likely crustal thickness on Venus.

Keywords

numerical modeling, rifting, Venus, Taverne, Geophysics, Geochemistry and Petrology, Earth and Planetary Sciences (miscellaneous), Space and Planetary Science

Citation

Regorda, A, Thieulot, C, van Zelst, I, Erdős, Z, Maia, J & Buiter, S 2023, 'Rifting Venus : Insights From Numerical Modeling', Journal of Geophysical Research: Planets, vol. 128, no. 3, e2022JE007588. https://doi.org/10.1029/2022JE007588