Alluvial and fluvial fans on Saturn's moon Titan reveal processes, materials and regional geology

Author:

Radebaugh Jani1,Ventra Dario2,Lorenz Ralph D.3,Farr Tom4,Kirk Randy5,Hayes Alex6,Malaska Michael J.4,Birch Sam6,Liu Zac Yung-Chun7,Lunine Jonathan6,Barnes Jason8,Le Gall Alice9,Lopes Rosaly4,Stofan Ellen10,Wall Steve4,Paillou Philippe11

Affiliation:

1. Brigham Young University, S-389 ESC, Provo, UT 84601, USA

2. Utrecht University, Utrecht, The Netherlands

3. Johns Hopkins University Applied Physics Laboratory, Laurel, MD 20723, USA

4. NASA Jet Propulsion Laboratory, Pasadena, CA 91109, USA

5. US Geological Survey, Astrogeology Division, Flagstaff AZ 86001, USA

6. Department of Astronomy, Cornell University, Ithaca, NY 14853, USA

7. School of Earth and Space Exploration, Arizona State University, Tempe, AZ 85287, USA

8. Department of Physics, University of Idaho, Moscow, ID 83844, USA

9. LATMOS Observatoire de Versailles Saint-Quentin-en-Yvelines (OVSQ), Paris, France

10. Proxemy Research, Greenbelt, MD 20770, USA

11. Observatoire Aquitain des Sciences de l'Univers, Universite de Bordeaux, Floirac, France

Abstract

AbstractFans, landforms that record the storage and transport of sediment from uplands to depositional basins, are found on Saturn's moon Titan, a body of significantly different process rates and material compositions from Earth. Images obtained by the Cassini spacecraft's synthetic aperture radar reveal morphologies, roughness, textural patterns and other properties consistent with fan analogues on Earth also viewed by synthetic aperture radar. The observed fan characteristics on Titan reveal some regions of high relative relief and others with gentle slopes over hundreds of kilometres, exposing topographic variations and influences on fan formation. There is evidence for a range of particle sizes across proximal to distal fan regions, from c. 2 cm or more to fine-grained, which can provide details on sedimentary processes. Some features are best described as alluvial fans, which implies their proximity to high-relief source areas, while others are more likely to be fluvial fans, drawing from larger catchment areas and frequently characterized by more prolonged runoff events. The presence of fans corroborates the vast liquid storage capacity of the atmosphere and the resultant episodic behaviour. Fans join the growing list of landforms on Titan derived from atmospheric and fluvial processes similar to those on Earth, strengthening comparisons between these two planetary bodies.

Publisher

Geological Society of London

Subject

Geology,Ocean Engineering,Water Science and Technology

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