Volatile Trapping in Martian Clathrates

被引:0
作者
Olivier Mousis
Eric Chassefière
Jérémie Lasue
Vincent Chevrier
Megan E. Elwood Madden
Azzedine Lakhlifi
Jonathan I. Lunine
Franck Montmessin
Sylvain Picaud
Frédéric Schmidt
Timothy D. Swindle
机构
[1] Université de Franche-Comté,Institut UTINAM, CNRS/INSU, UMR 6213
[2] Université de Toulouse,UPS
[3] Univ. Paris-Sud,OMP, CNRS
[4] CNRS,INSU, IRAP
[5] Université de Toulouse,Laboratoire IDES, UMR 8148
[6] IRAP,UPS
[7] University of Arkansas,OMP, IRAP
[8] University of Oklahoma,CNRS
[9] Cornell University,W.M. Keck Laboratory for Space Simulation, Arkansas Center for Space and Planetary Sciences
[10] CNRS/IPSL/UVSQ,School of Geology and Geophysics
[11] University of Arizona,Center for Radiophysics and Space Research
来源
Space Science Reviews | 2013年 / 174卷
关键词
Mars; Clathrates; Polar caps; Cryosphere; Atmosphere;
D O I
暂无
中图分类号
学科分类号
摘要
Thermodynamic conditions suggest that clathrates might exist on Mars. Despite observations which show that the dominant condensed phases on the surface of Mars are solid carbon dioxide and water ice, clathrates have been repeatedly proposed to play an important role in the distribution and total inventory of the planet’s volatiles. Here we review the potential consequences of the presence of clathrates on Mars. We investigate how clathrates could be a potential source for the claimed existence of atmospheric methane. In this context, plausible clathrate formation processes, either in the close subsurface or at the base of the cryosphere, are reviewed. Mechanisms that would allow for methane release into the atmosphere from an existing clathrate layer are addressed as well. We also discuss the proposed relationship between clathrate formation/dissociation cycles and how potential seasonal variations influence the atmospheric abundances of argon, krypton and xenon. Moreover, we examine several Martian geomorphologic features that could have been generated by the dissociation of extended subsurface clathrate layers. Finally we investigate the future in situ measurements, as well as the theoretical and experimental improvements that will be needed to better understand the influence of clathrates on the evolution of Mars and its atmosphere.
引用
收藏
页码:213 / 250
页数:37
相关论文
共 608 条
  • [1] Alavi S.(2006)Molecular dynamics simulations of binary structure H hydrogen and methyl-tert-butylether clathrate hydrates J. Chem. Phys. 124 18705-18715
  • [2] Ripmeester J.A.(2006)Molecular dynamics simulations of binary structure II hydrogen and tetrahydrofurane clathrates J. Chem. Phys. 124 358-369
  • [3] Klug D.D.(2004)Accurate potentials for argon-water and methane-water interactions via ab initio methods and their application to clathrate hydrates J. Phys. Chem. B 108 393-411
  • [4] Alavi S.(2011)Opportunity Mars rover mission: overview and selected results from Purgatory ripple to traverses to Endeavour crater J. Geophys. Res. 116 27-41
  • [5] Ripmeester J.A.(2007)Methane and related trace species on Mars: origin, loss, implications for life, and habitability Planet. Space Sci. 55 371-383
  • [6] Klug D.D.(2009)The channeled scabland: a retrospective Annu. Rev. Earth Planet. Sci. 37 64-67
  • [7] Anderson B.J.(1974)Erosion by catastrophic floods on Mars and Earth Icarus 23 501-173
  • [8] Tester J.W.(2002)The next generation of hydrate prediction: I. Hydrate standard states and incorporation of spectroscopy Fluid Phase Equilib. 194 139-28
  • [9] Trout B.L.(2007)High-resolution subsurface water-ice distributions on Mars Nature 447 20-500
  • [10] Arvidson R.E.(2007)Martian atmospheric erosion rates Science 315 449-595