Evidence for fluvial and glacial activities within impact craters that excavated into a Noachian volcanic dome on Mars

被引:4
作者
Harish [1 ,2 ]
Vijayan, S. [1 ]
Mangold, N. [3 ]
机构
[1] Phys Res Lab, Planetary Sci Div, Ahmadabad 380009, Gujarat, India
[2] Indian Inst Technol, Discipline Earth Sci, Gandhinagar, India
[3] Univ Nantes, Univ Angers, CNRS UMR6112, Lab Planetol & Geodynam, F-44322 Nantes, France
关键词
D O I
10.1016/j.icarus.2021.114397
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Impact craters on Mars preserve diverse records of volcanic, fluvial, and glacial activities. Enigmatically, the preservation of these major activities or records altogether within impact craters is rare. We report one such new observation of impact craters that formed on a volcanic dome studied using data from the Mars Reconnaissance Orbiter's (MRO) Context Camera (CTX), High-Resolution Imaging Science Experiment (HiRISE), and Compact Reconnaissance Imaging Spectrometer for Mars (CRISM), Mars Global Surveyor's Mars Orbiter Laser Altimeter (MOLA), and Mars Express' High-Resolution Stereo Camera (HRSC). A similar to 20 km diameter impact crater, informally named as Degana-A, is formed within the similar to 50 km diameter impact crater Degana. Mineralogical analysis reveals exposures of low-calcium pyroxene and olivine deposits, which occupy Degana-A's eastern walls, leading to the idea that pristine Noachian bedrocks might be exposed from beneath the volcanic dome. Degana-A floor is completely covered by alluvial fans from all sides with distributaries. Within Degana crater, multiple fans are observed along its eastern to southern side only. The most likely source of water was the accumulation of snow on Degana crater walls, which possibly melted as a result of the impact of Degana-A. We observed a similar to 1 km wide breach on the eastern wall of Degana-A and the estimated maximum flow velocity is similar to 2 m/s and a run-off similar to 2.25 mm/h. Over the south-facing walls, multiple moraine-like ridges superposed the fans, which suggests overprinting by glacial activities. The presence of fans and superposed moraine-like ridges located at the mid-latitudes (similar to 23.S) implies atmosphere-derived snow/ice precipitation was possible. Chronologically, the dome is of Noachian age, whereas Degana crater formed in the Hesperian period and crater retention on the fans indicates late Hesperian to Amazonian ages. Overall, the preserved Noachian crustal material underneath a volcanic dome is rarely exposed in its pristine context, which offers a rare window into early igneous processes. This intriguing location also witnessed a climatic transition as implied by water/ice derived landforms formed by non-coeval events.
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页数:17
相关论文
共 125 条
[1]   Microtopographic control on the ground thermal regime in ice wedge polygons [J].
Abolt, Charles J. ;
Young, Michael H. ;
Atchley, Adam L. ;
Harp, Dylan R. .
CRYOSPHERE, 2018, 12 (06) :1957-1968
[2]   VISIBLE AND NEAR-INFRARED DIFFUSE REFLECTANCE SPECTRA OF PYROXENES AS APPLIED TO REMOTE-SENSING OF SOLID OBJECTS IN SOLAR-SYSTEM [J].
ADAMS, JB .
JOURNAL OF GEOPHYSICAL RESEARCH, 1974, 79 (32) :4829-4836
[3]   3D morphometry of valley networks on Mars from HRSC/MEX DEMs: Implications for climatic evolution through time [J].
Ansan, V. ;
Mangold, N. .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2013, 118 (09) :1873-1894
[4]   Martian flow features, moraine-like ridges, and gullies: Terrestrial analogs and interrelationships [J].
Arfstrom, J ;
Hartmann, WK .
ICARUS, 2005, 174 (02) :321-335
[5]   Timescales of alluvial fan development by precipitation on Mars [J].
Armitage, John J. ;
Warner, Nicholas H. ;
Goddard, Kate ;
Gupta, Sanjeev .
GEOPHYSICAL RESEARCH LETTERS, 2011, 38
[6]   The petrological expression of early Mars volcanism [J].
Baratoux, D. ;
Toplis, M. J. ;
Monnereau, M. ;
Sautter, V. .
JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2013, 118 (01) :59-64
[7]   Transverse Aeolian Ridges (TARs) on Mars II: Distributions, orientations, and ages [J].
Berman, Daniel C. ;
Balme, Matthew R. ;
Rafkin, Scot C. R. ;
Zimbelman, James R. .
ICARUS, 2011, 213 (01) :116-130
[8]  
Blair T.C., 2009, Geomorphology of Desert Environments, P413, DOI [10.1007/978-1-4020-5719-914, DOI 10.1007/978-1-4020-5719-9_14]
[9]  
BLAIR TC, 1994, J SEDIMENT RES A, V64, P450
[10]  
Boatwright B.D., 2019, LUNAR PLANETARY SCI, P2688