Morphological characterization of landforms produced by springtime seasonal activity on Russell Crater megadune, Mars

Author:

Jouannic Gwenaël12,Conway Susan J.3,Gargani Julien1,Costard François1,Massé Marion3,Bourgeois Olivier3,Carter John4,Schmidt Frédéric1,Marmo Chiara1,Ori Gian G.56,Nachon Marion7,Pasquon Kelly1

Affiliation:

1. Géosciences Paris Sud (GEOPS), Université Paris-Sud and CNRS, Bâtiment 509, 91405 Orsay, France

2. Present address: Département Ville et Territoire, 9 rue Viviane, BP 46223-44262, Nantes Cedex 2, France

3. Laboratoire de Planétologie et Géodynamique, CNRS UMR 6112, Université de Nantes, 2 chemin de la Houssinière, BP 92205, 44322 Nantes Cedex 3, France

4. Institut d'Astrophysique Spatiale (IAS), Université Paris-Sud and CNRS, Bâtiment 121, 91405 Orsay, France

5. International Research School of Planetary Sciences, Università ‘G. d'Annunzio’, Viale Pindaro 42, 65127 Pescara, Italy

6. Ibn Battuta Centre, Université Cady Ayyad, Marrakech, Morocco

7. Earth and Planetary Sciences, University of California Davis, One Shields Avenue, Davis, CA 95616, USA

Abstract

AbstractWe describe in detail an annual seasonal process that occurs on the surface of the Russell Crater megadune on Mars. We give these features the name ‘perennial rills’, because their surface topographical expression persists from year-to-year and they form a distinctive, downstream-branching network of small channels, or rills. We used time-series images, elevation data from stereophotogrammetry and spectral data to characterize the evolution of these features over 6 Mars years. Growth and modification of these networks occurs abruptly in spring (at a solar longitude of c. 200°) after most of the seasonal CO2 ice has sublimated. We find that the peculiar morphology of perennial rills seems to be the only aspect that sets them apart from active linear dune gullies. By comparison to terrestrial analogues, we identified two conditions favouring the production of such a network: (a) the presence of an impermeable layer; and (b) the repeated formation of obstacles in front of propagating channels. We find that the most plausible formation mechanisms that can explain the formation of both the perennial rills and the active linear dune gullies are levitating CO2 blocks or liquid debris flows of water/brine, but neither can completely satisfy all the observational evidence.

Publisher

Geological Society of London

Subject

Geology,Ocean Engineering,Water Science and Technology

Reference105 articles.

1. Mineralogy of an active eolian sediment from the Namib Dune, Gale Crater, Mars;Journal of Geophysical Research: Planets,2017

2. Allen P.A. 1997. Earth Surface Processes. Blackwell Science, Oxford.

3. Avalanche slope angles in low-gravity environments from active Martian sand dunes;Geophysical Research Letters,2013

4. A classification of martian gullies from HiRISE imagery;Planetary and Space Science,2016

5. Dust devils on Earth and Mars;Reviews of Geophysics,2006

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