The Martian geomorphology as mapped by the Mars Express High Resolution Stereo Camera (HRSC): Implications for Geological Processes and Climate Conditions.

Thomas Roatsch1, Ralf Jaumann2, Gerhard Neukum3, Daniela Tirsch4, Ernst Hauber5, Harald Hoffmann2, Klaus Gwinner2, Frank Scholten2, Gaetano Di Achille6, Thomas C Duxbury7, Gino Erkeling8, Stefan vanGasselt3, Sanjeev Gupta9, James W Head III10, Harald Hiesinger11, Wing-Huen Ip12, Horst Uwe Keller13, Maarten G Kleinhans14, Thomas Kneissl3, Thomas B McCord15, Peter Muller16, John Murray17, Monica Pondrelli18, Thomas Platz3, Patrick Claude Pinet19, Reiss Dennis20, Angelo Pio Rossi21, Lutz Wendt3, David A Williams22, Nicolas Mangold23, Tilman Spohn2 and HRSC Team, (1)German Aerospace Center (DLR), Berlin, Germany, (2)German Aerospace Center DLR Berlin, Berlin, Germany, (3)Free University of Berlin, Berlin, Germany, (4)German Aerospace Center DLR, Berlin, Germany, (5)German Aerospace Center DLR Berlin, Institute of Planetary Research, Berlin, Germany, (6)CNR National Institute for Astrophysics, Rome, Italy, (7)George Mason University, Fairfax, VA, United States, (8)Uni Muenster, Muenster, Germany, (9)Imperial College London, London, SW7, United Kingdom, (10)Brown University, Department of Earth, Environmental and Planetary Sciences, Providence, United States, (11)University of Münster, Institute for Planetology, Münster, Germany, (12)National Central University, Institute of Astronomy, Taoyuan City, Taiwan, (13)Technical University of Braunschweig, Braunschweig, Germany, (14)Utrecht University, Physical Geography, Utrecht, Netherlands, (15)Bear Fight Institute, Winthrop, United States, (16)Mullard Space Science Laboratory, Dorking, United Kingdom, (17)Open University, Milton Keynes, United Kingdom, (18)University of Chieti-Pescara, Int’l Research School of Planetary Sciences, Pescara, Italy, (19)IRAP, Toulouse, France, (20)Institut für Planetologie - Westfälische Wilhelms-Universität, Münster, Germany, (21)Earthgraph GmbH, Bremen, Germany, (22)Arizona State University, Tempe, AZ, United States, (23)LPGN Laboratoire de Planétologie et Géodynamique de Nantes, Nantes Cedex 03, France
Abstract:
After 10 years of ESA’s Mars Express orbiting the planet its High Resolution Stereo Camera (HRSC) covered about 90 % of the surface in stereo and color with resolutions up to 10 m/pixel. Digital elevation models of up to 50 m grid spacing [1], generated from all suitable datasets of the stereo coverage, currently cover about 40 % of the surface [2]. The geomorphological analysis of surface features, observed by the HRSC indicate major surface modifications by endogenic and exogenic processes on all scales. Endogenic landforms (e.g., tectonic rifts, small basaltic shield volcanoes) were found to be very similar to their equivalents on Earth, suggesting that no unique processes are required to explain their formation. Volcanism may have been active up to the very recent past or even to the present, putting important constraints on thermal evolution models [e.g. 3]. The analysis of diverse landforms produced by aqueous processes revealed that surface water activity was likely episodic, but ranged in age from very ancient to very recent [e.g. 3]. Particularly important is prominent glaciation and periglacial features at several latitudes, including mountain glaciers [e.g. 3]. The identification of aqueous alteration minerals and their geological context has enabled a better understanding of paleoenvironmental conditions and pedogenetic processes [e.g. 4]. Dark dunes contain volcanic material and are evidence for the significantly dynamic surface environment, characterized by widespread erosion, transport, and redeposition [e.g. 3]. Since basically all geologic interpretations of extraterrestrial features require profound knowledge of the Earth as key reference, studies of terrestrial analogues are mandatory in planetary geology. Field work in Antarctica, Svalbard and Iceland [e.g. 5] provided a basis for the analysis of periglacial and volcanic processes, respectively.

References: [1] Jaumann et al., 2007, PSS 55; [2] Gwinner et al., 2010, EPSL 294; [3] Jaumann et al., 2014, PSS, subm., [4] Jaumann et al., 2014, PSS 98, [5] Hauber et al., 2011, Geol. Soc. Am. 483.