Young rift flanks suggest Venus remains tectonically active Sadie Harley Scientific Editor Robert Egan Senior Editor Venus is an inhospitable place, with temperatures soaring to several hundred degrees Celsius (hundreds of degrees Fahrenheit) and no oceans like those on Earth. Planetary scientists long believed Venus was geologically dormant. However, recent research indicates that Venus remains geologically "alive" and even hosts active volcanoes.

Rift valleys, which indicate tectonic activity, can be vast and resemble those on Earth, such as the African Rift Valley. On Venus, they can span up to 10,000 kilometers (6,200 miles). The timing of these rifts' formation is uncertain.

Geoscientists believe they originated more than 100 million years ago and are therefore remnants of the past. Simulations indicate tectonic activity ETH researchers, led by Taras Gerya, professor of geodynamics at the Department of Earth and Planetary Sciences, have used a new computer model to demonstrate that some rift valleys may have formed relatively recently. The planetary scientists also addressed the long-standing question of whether Venus is geologically active.

The study was published in Nature Geoscience. Lead author Xi Yang conducted the research while pursuing his master's degree under Gerya's supervision. Yang and his team used a new computer model to simulate high-resolution, 3D rifts for the first time.

This allowed them to accurately replicate these rift structures in simulations and provide better explanations of their formation. Earlier models had relied on simplified material assumptions and were mostly two-dimensional. The models indicate that broad ridges, known as rift flanks, form along the edges of rift valleys when the rifts are geologically young and either still actively moving or have only recently stopped moving.

The simulations also suggest that these rifts widen more rapidly than previously believed, at a rate of 3 to 10 centimeters per year. Yang and his colleagues also show that the rift flanks tend to flatten rapidly after movement ceases; the older the rift system, the less steep and narrow its flanks. Unlike Earth, where erosion gradually wears down features, Venus's flanks subside due to crustal relaxation.

Wide and high rift flanks are not only produced by the computer model but can also be seen in images of the Venusian surface from the Magellan probe during its 1990s mission. Based on their simulations and observational data, the researchers conclude that Venus remains an active planet with a more dynamic interior than previously believed. "The results help us to better assess the tectonic activity on Venus," says Gerya.

Supporting future Venus missions The results of the ETH researchers' model could help pinpoint active regions worthy of detailed investigation for these missions. Additionally, the study enhances our understanding of how rocky planets form. Importantly, the researchers aim to uncover clues that could improve the detection of rocky exoplanets.

Growing interest in our neighboring planet Interest in Venus is increasing as NASA and ESA prepare multiple missions to explore Earth's neighboring planet.