Estimate of the water flow duration in large Martian fluvial systems

被引:24
作者
Orofino, Vincenzo [1 ,3 ]
Alemanno, Giulia [1 ,4 ]
Di Achille, Gaetano [2 ]
Mancarella, Francesca [1 ]
机构
[1] Univ Salento, Dipartimento Matemat & Fis E De Giorgi, Via Arnesano, Lecce, Italy
[2] Osservatorio Astron Teramo, Ist Nazl Astrofis INAF, Viale M Maggini, Teramo, Italy
[3] INFN, Sez Lecce, Via Arnesano, Lecce, Italy
[4] Univ Paris Sud, UMR 8617, CNRS, Inst Astrophys Spatiale, Batiment 121, F-91405 Orsay, France
关键词
Mars/Mars; Surface/Geological processes; VALLEY NETWORKS; EARLY MARS; BED-LOAD; TERRA-CIMMERIA; ALLUVIAL FANS; BASIN LAKES; SURFACE; CRATER; EVOLUTION; CHANNELS;
D O I
10.1016/j.pss.2018.06.001
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The presence of ancient fluvial systems on Mars, known as valley networks, is considered one of the most compelling evidence that liquid water was once stable on the planets surface. To understand the formation mechanisms of these valleys and to acquire information on the ancient climatic conditions of the planet, we determined the formation time of a sample group of 63 Martian valley networks. Our sample group was divided into two subgroups: valleys with an interior channel (13 valleys); and valleys without visible interior channels (50 valleys). For the first subgroup we estimated the formation time using a method based on the calculation of water and sediment discharges. We assumed four different possibilities: continuous flow; 5% of intermittence, typical of terrestrial humid or sub-humid conditions; 1% as for semiarid or arid environments; and finally, 0.1% for hyper-arid conditions. Once obtained the formation times for each valley we evaluated the erosion rates. Subsequently, the mean erosion rates obtained for the first subgroup of valleys were used to calculate the formation times for the remaining 50 valleys using the ratio between the eroded volume and the erosion rate. For the whole sample group of the fluvial systems, we found formation timescales ranging from 5 x 10(2) yr to 8 x 10(6) yr (with a median of 3 x 10(4) yr) for a continuous sediment flow, while the range is from 1 x 10(4) yr to 2 x 10(6) yr (median 5 x 10(5) yr) with an intermittence of 5%, from 5 x 10(4) yr to 8 x 10(8) yr (median 3 x 10(6) yr) with an intermittence of 1%, and from 5 x 10(5) yr and to 8 x 10(9)yr (median 3 x 10(7)yr) with a 0.1% intermittence. However, based on our results, a continuous sediment flow as well as an intermittence of 0.1% seem unlikely. Plausible values of formation timescales are instead obtained with intermittencies of 5% and 1% corresponding to humid and semiarid/arid environment, respectively. Our results do not allow to discriminate between the two scenarios; on the contrary the scenario of a permanently cold and icy Noachian Mars can be ruled out by our findings.
引用
收藏
页码:83 / 96
页数:14
相关论文
共 21 条
  • [1] Global Main of Martian Fluvial Systems: Age and Total Eroded Volume Estimations
    Alemanno, G.
    Orofino, V.
    Mancarella, F.
    EARTH AND SPACE SCIENCE, 2018, 5 (10): : 560 - 577
  • [2] Extensive Noachian fluvial systems in Arabia Terra: Implications for early Martian climate
    Davis, J. M.
    Balme, M.
    Grindrod, P. M.
    Williams, R. M. E.
    Gupta, S.
    GEOLOGY, 2016, 44 (10) : 847 - 850
  • [3] Case study of climatic changes in Martian fluvial systems at Xanthe Terra
    Kereszturi, Akos
    PLANETARY AND SPACE SCIENCE, 2014, 96 : 35 - 50
  • [4] Nonlinear spectral mixture modeling to estimate water-ice abundance of martian regolith
    Gyalay, Szilard
    Dobrea, Eldar Z. Noe
    Chu, Kathryn
    Pitman, Karly M.
    ICARUS, 2019, 329 : 79 - 87
  • [5] LARGE DISTRIBUTIVE FLUVIAL SYSTEMS: CHARACTERISTICS, DISTRIBUTION, AND CONTROLS ON DEVELOPMENT
    Hartley, Adrian J.
    Weissmann, Gary S.
    Nichols, Gary J.
    Warwick, Gail L.
    JOURNAL OF SEDIMENTARY RESEARCH, 2010, 80 (1-2) : 167 - 183
  • [6] The Evolution of Ancient Fluvial Systems in Memnonia Sulci, Mars: Impact Crater Damming, Aggradation, and a Large Water Body on the Dichotomy?
    Davis, Joel M.
    Aranos, Liliana
    Dickeson, Zachary, I
    Fawdon, Peter
    JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2022, 127 (02)
  • [7] Water-filling Capacity Analysis in Large MIMO Systems
    Lu, Yi
    Zhang, Wei
    2013 COMPUTING, COMMUNICATIONS AND IT APPLICATIONS CONFERENCE (COMCOMAP), 2013, : 186 - 190
  • [8] Punctuated aggradation and flow criticality in deep water channel systems
    Kneller, Ben
    Buso, Victoria Valdez
    DEPOSITIONAL RECORD, 2025, 11 (01) : 354 - 372
  • [9] Role of tectonics and climate on elevated arsenic in fluvial systems: Insights from surface water and sediments along regional transects of Chile
    Tapia, Joseline
    Mukherjee, Abhijit
    Rodriguez, Maria Pia
    Murray, Jesica
    Bhattacharya, Prosun
    ENVIRONMENTAL POLLUTION, 2022, 314
  • [10] Groundwater flow systems and fluoride content in the water of Tenextepango, Morelos, Mexico
    Huizar-Alvarez, Rafael
    Gabriela Varela-Gonzalez, Gricelda
    Espinoza Jaramillo, Magdalena
    REVISTA MEXICANA DE CIENCIAS GEOLOGICAS, 2014, 31 (02): : 238 - 247