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October 10, 2025Geophysical Research Letters2 citationsOpen Access

Sliding and Burrowing Blocks of CO2 Create Sinuous “Linear Dune Gullies” on Martian Dunes by Explosive Sublimation‐Induced Particle Transport

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LRLonneke RoelofsUtrecht UniversitySVSimone R. VisschersUtrecht UniversitySCSusan J. ConwayCentre National de la Recherche Scientifique

Key Points

  • Sublimating ice blocks create both straight and burrowing channels in Martian dune gullies, highlighting their dynamic formation.
  • Experiments reveal that on steep slopes, sublimating ice creates shallow channels, while gentle slopes allow for burrowing and intricate structures.
  • The study utilizes laboratory simulations to explore particle transport under Martian atmospheric conditions, supporting the hypothesis of ice block activity.
  • These findings suggest new characteristics of Martian landforms, including high levees and pit-shaped endings in dune gullies.

Abstract

Abstract Martian linear dune gullies are landforms consisting of parallel and often sinuous channels with distinct levees and pit‐shaped endings that occur in the mid‐latitudes on Mars. Recent observations link their formation to sublimating ‐ice blocks that slide downslope in early spring. Here we combine laboratory experiments in which we release ‐ice blocks on sandy slopes under Martian atmospheric pressure with observations of linear dune gullies on Russell crater mega dune to test this hypothesis. We show that, on steep slopes (22.5° in our experiments) sublimating ‐ice blocks slide down‐slope, creating straight, shallow channels with indistinct levees. On more gentle slopes (22.5° in our experiments), sublimating ‐ice blocks burrow themself into the sand and slowly migrate downslope by excavating their surroundings by explosive gas‐driven sediment transport. The burrowing movement helps explain the formation of unique characteristics of linear dune gullies; high levees, deep channels, channel sinuosity, and pit‐shaped channel endings.

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Cite This Study

Roelofs et al. (2025) studied this question.

synapsesocial.com/papers/68e8619c7ef2f04ca37e4195https://doi.org/10.1029/2024gl112860
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