Methane emissions from Earth's degassing: Implications for Mars

被引:27
作者
Etiope, G. [1 ]
Oehler, D. Z. [2 ]
Allen, C. C. [2 ]
机构
[1] Ist Nazl Geofis & Vulcanol, Sez Roma 2, I-00143 Rome, Italy
[2] NASA, Johnson Space Ctr, Houston, TX 77058 USA
关键词
Mars; Methane; Earth's degassing; Seepage; GAS SEEPS; ATMOSPHERIC METHANE; GEOLOGIC EMISSIONS; MUD VOLCANOS; ORIGIN; SERPENTINIZATION; DIVERSITY; SPRINGS; ONSHORE; MARINE;
D O I
10.1016/j.pss.2010.06.003
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The presence of methane on Mars is of great interest, since one possibility for its origin is that it derives from living microbes. However, CH4 in the martian atmosphere also could be attributable to geologic emissions released through pathways similar to those occurring on Earth. Using recent data on methane degassing of the Earth, we have estimated the relative terrestrial contributions of fossil geologic methane vs. modern methane from living methanogens, and have examined the significance that various geologic sources might have for Mars. Geologic degassing includes microbial methane (produced by ancient methanogens), thermogenic methane (from maturation of sedimentary organic matter), and subordinately geothermal and volcanic methane (mainly produced abiogenically). Our analysis suggests that similar to 80% of the "natural" emission to the terrestrial atmosphere originates from modern microbial activity and similar to 20% originates from geologic degassing, for a total CH4 emission of similar to 28.0 x 10(7) tonnes year(-1). Estimates of methane emission on Mars range from 12.6 x 10(1) to 57.0 x 10(4) tonnes year(-1) and are 3-6 orders of magnitude lower than that estimated for Earth. Nevertheless, the recently detected martian, Northern-Summer-2003 CH4 plume could be compared with methane expulsion from large mud volcanoes or from the integrated emission of a few hundred gas seeps, such as many of those located in Europe, USA, Mid-East or Asia. Methane could also be released by diffuse microseepage from martian soil, even if macro-seeps or mud volcanoes were lacking or inactive. We calculated that a weak microseepage spread over a few tens of km(2), as frequently occurs on Earth, may be sufficient to generate the lower estimate of methane emission in the martian atmosphere. At least 65% of Earth's degassing is provided by kerogen thermogenesis. A similar process may exist on Mars, where kerogen might include abiogenic organics (delivered by meteorites and comets) and remnants of possible, past martian life. The remainder of terrestrial degassed methane is attributed to fossil microbial gas (similar to 25%) and geothermal-volcanic emissions (similar to 10%). Global abiogenic emissions from serpentinization are negligible on Earth, but, on Mars, individual seeps from serpentinization could be significant. Gas discharge from clathrate-permafrost destabilization should also be considered. Finally, we have shown examples of potential degassing pathways on Mars, including mud volcano-like structures, fault and fracture systems, and major volcanic edifices. All these types of structures could provide avenues for extensive gas expulsion, as on Earth. Future investigations of martian methane should be focused on such potential pathways. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:182 / 195
页数:14
相关论文
共 108 条
  • [81] Have olivine, will gas: Serpentinization and the abiogenic production of methane on Mars
    Oze, C
    Sharma, M
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2005, 32 (10) : 1 - 4
  • [82] Serpentinization and the inorganic synthesis of H2 in planetary surfaces
    Oze, Christopher
    Sharma, Mukul
    [J]. ICARUS, 2007, 186 (02) : 557 - 561
  • [83] Phyllosilicates on Mars and implications for early martian climate
    Poulet, F
    Bibring, JP
    Mustard, JF
    Gendrin, A
    Mangold, N
    Langevin, Y
    Arvidson, RE
    Gondet, B
    Gomez, C
    [J]. NATURE, 2005, 438 (7068) : 623 - 627
  • [84] Abiogenic hydrocarbon production at Lost City hydrothermal field
    Proskurowski, Giora
    Lilley, Marvin D.
    Seewald, Jeffery S.
    Fruh-Green, Gretchen L.
    Olson, Eric J.
    Lupton, John E.
    Sylva, Sean P.
    Kelley, Deborah S.
    [J]. SCIENCE, 2008, 319 (5863) : 604 - 607
  • [85] RICE DD, 1981, AAPG BULL, V65, P5
  • [86] Control of impact crater fracture systems on subsurface hydrology, ground subsidence, and collapse, Mars -: art. no. E06003
    Rodríguez, JAP
    Sasaki, S
    Dohm, JM
    Tanaka, KL
    Strom, B
    Kargel, J
    Kuzmin, R
    Miyamoto, H
    Spray, JG
    Fairén, AG
    Komatsu, G
    Kurita, K
    Baker, V
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2005, 110 (E6) : 1 - 22
  • [87] SANO Y, 1993, APPL GEOCHEM, V8, P1, DOI 10.1016/0883-2927(93)90053-J
  • [88] Methane emission from high-intensity marine gas seeps in the Black Sea into the atmosphere
    Schmale, O
    Greinert, J
    Rehder, G
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2005, 32 (07) : 1 - 4
  • [89] SCHOELL M, 1983, AAPG BULL, V67, P2225
  • [90] Earliest evidence of life on earth
    Schopf, J. William
    Walter, Malcolm R.
    Ruiji, Cao
    [J]. PRECAMBRIAN RESEARCH, 2007, 158 (3-4) : 139 - 140