Complex gas hydrate system in a gas chimney, South China Sea

被引:147
作者
Ye, Jianliang [1 ]
Wei, Jiangong [1 ]
Liang, Jinqiang [1 ]
Lu, Jingan [1 ]
Lu, Hailong [2 ,3 ]
Zhang, Wei [1 ]
机构
[1] China Geol Survey, Guangzhou Marine Geol Survey, Guangzhou 510075, Guangdong, Peoples R China
[2] Peking Univ, Beijing Int Ctr Gas Hydrate, Beijing 100871, Peoples R China
[3] Peking Univ, Coll Engn, Beijing 100871, Peoples R China
基金
中国国家自然科学基金;
关键词
Cold seep; Gas hydrate; Gas composition; South China sea; Authigenic carbonate; Gas chimney; RIVER MOUTH BASIN; AUTHIGENIC CARBONATES; QIONGDONGNAN BASIN; HYDROCARBON GASES; SOROKIN TROUGH; FLUID-FLOW; SEEPAGE; RIDGE; CASCADIA; TRANSPORT;
D O I
10.1016/j.marpetgeo.2019.03.023
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Gas hydrates and deep-sea cold seeps are of interest to industry and academia for several reasons, including their implications for offshore geohazards and unconventional resources, and for global climate change and carbon cycling. Guangzhou Marine Geological Survey (GMGS) implemented its fifth gas hydrate drilling expedition in the QiongDongNan Sea Area (QDN-SA) of the northern South China Sea (SCS) from June to September 2018. Multidisciplinary investigations, including Logging While Drilling (LWD), pressure and non-pressure coring, gas composition analyses, in situ temperature and permeability measurements, pore water geochemical analyses, and a regional seismic survey, reveal a complex distribution of gas hydrate within a vertical chimney structure. LWD profiles record high resistivity anomalies and high P-wave velocity variations at 9-174 mbsf, suggesting the coexistence of free gas and gas hydrate in the sediment column throughout the investigated gas chimney. Hydrate-bound and void gas is an admixture of methane (70.1%-98.3%) and heavier hydrocarbons (C2H6: 0.16%-17.59%, C3H8: 0.05%-9.88%, i-C4H10: < 0.001%-2.06%, n-C4H10: < 0.001%-0.85%, i-C5H12: < 0.001%-0.12%, n-C5H12: < 0.001%-0.02%), indicating a thermogenic origin for the gas. Based on the high content of C-2+ hydrocarbons in the gas composition, it is suggested that sII/sH gas hydrate exists in the study area. The gas chimney is interpreted to provide efficient pathways for fluid migration from an intermediate gas reservoir below the BSR to the gas hydrate stability zone (GHSZ). Gas hydrate crystallization decreases the permeability of the sediment, impeding fluid flowing into the upper sediment layers. Bivalve fragments embedded within carbonate rocks were recovered at the seafloor and multiple levels at two main sediment levels of 3mbsf and similar to 54mbsf, indicating recurrent seepage activity.
引用
收藏
页码:29 / 39
页数:11
相关论文
共 73 条
[1]   Development and application of pressure-core-sampling systems for the investigation of gas- and gas-hydrate-bearing sediments [J].
Abegg, F. ;
Hohnberg, H. -J. ;
Pape, T. ;
Bohrmann, G. ;
Freitag, J. .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2008, 55 (11) :1590-1599
[2]   Massive blow-out craters formed by hydrate-controlled methane expulsion from the Arctic seafloor [J].
Andreassen, K. ;
Hubbard, A. ;
Winsborrow, M. ;
Patton, H. ;
Vadakkepuliyambatta, S. ;
Plaza-Faverola, A. ;
Gudlaugsson, E. ;
Serov, P. ;
Deryabin, A. ;
Mattingsdal, R. ;
Mienert, J. ;
Bunz, S. .
SCIENCE, 2017, 356 (6341) :948-952
[3]   The mechanics of intermittent methane venting at South Hydrate Ridge inferred from 4D seismic surveying [J].
Bangs, Nathan L. B. ;
Hornbach, Matthew J. ;
Berndt, Christian .
EARTH AND PLANETARY SCIENCE LETTERS, 2011, 310 (1-2) :105-112
[4]  
Bayon G, 2013, NAT GEOSCI, V6, P755, DOI [10.1038/NGEO1888, 10.1038/ngeo1888]
[5]   Temporal Constraints on Hydrate-Controlled Methane Seepage off Svalbard [J].
Berndt, C. ;
Feseker, T. ;
Treude, T. ;
Krastel, S. ;
Liebetrau, V. ;
Niemann, H. ;
Bertics, V. J. ;
Dumke, I. ;
Duennbier, K. ;
Ferre, B. ;
Graves, C. ;
Gross, F. ;
Hissmann, K. ;
Huehnerbach, V. ;
Krause, S. ;
Lieser, K. ;
Schauer, J. ;
Steinle, L. .
SCIENCE, 2014, 343 (6168) :284-287
[6]   Hydrocarbon gases in deposits from mud volcanoes in the Sorokin Trough, north-eastern Black Sea [J].
Blinova, VN ;
Ivanov, MK ;
Bohrmann, G .
GEO-MARINE LETTERS, 2003, 23 (3-4) :250-257
[7]   Authigenic carbonate formation and its impact on the biomarker inventory at hydrocarbon seeps - A case study from the Holocene Black Sea and the Plio-Pleistocene Northern Apennines (Italy) [J].
Blumenberg, Martin ;
Walliser, Eric-Otto ;
Taviani, Marco ;
Seifert, Richard ;
Reitner, Joachim .
MARINE AND PETROLEUM GEOLOGY, 2015, 66 :532-541
[8]  
Bohrmann G, 1998, GEOLOGY, V26, P647, DOI 10.1130/0091-7613(1998)026<0647:ACFTCS>2.3.CO
[9]  
2
[10]   Estimation of the global amount of submarine gas hydrates formed via microbial methane formation based on numerical reaction-transport modeling and a novel parameterization of Holocene sedimentation [J].
Burwicz, E. B. ;
Ruepke, L. H. ;
Wallmann, K. .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2011, 75 (16) :4562-4576