Origins of Organic Matter, Paleoenvironment, and Hydrocarbon Potential of the Carboniferous Source Rocks from Shibei Sag, Junggar Basin, NW China
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N. Zhong | Zhihuan Zhang | Xiao Jin | Xinjian Zhu | Xu Chen | Xue Chen
[1] Xiaobo Guo,et al. Environmental response to volcanic activity and its effect on organic matter enrichment in the Permian Lucaogou Formation of the Malang Sag, Santanghu Basin, Northwest China , 2020 .
[2] Zhaojun Liu,et al. Influence of volcanic and hydrothermal activity on organic matter enrichment in the Upper Triassic Yanchang Formation, southern Ordos Basin, Central China , 2020 .
[3] Zhihuan Zhang,et al. The geochemical characteristics of the Fengcheng Formation source rocks from the Halaalate area, Junggar Basin, China , 2020 .
[4] Shenghe Wu,et al. Major and trace element geochemistry of the lacustrine organic-rich shales from the Upper Triassic Chang 7 Member in the southwestern Ordos Basin, China: Implications for paleoenvironment and organic matter accumulation , 2020 .
[5] W. Wang,et al. Re-examination of genetic types and origins of natural gases from Dibei bulge, eastern Luliang uplift, Junggar Basin, China , 2019, Journal of Natural Gas Geoscience.
[6] R. Littke,et al. Geochemical and petrographic investigation of Triassic and Late Miocene organic-rich intervals from onshore Cyprus, Eastern Mediterranean , 2019, International Journal of Coal Geology.
[7] D. Hou,et al. Algal-derived polycyclic aromatic hydrocarbons in Paleogene lacustrine sediments from the Dongying Depression, Bohai Bay Basin, China , 2019, Marine and Petroleum Geology.
[8] Huajuan Cui,et al. Geochemical characteristics of Carboniferous coaly source rocks and natural gases in the Southeastern Junggar Basin, NW China: Implications for new hydrocarbon explorations , 2019, International Journal of Coal Geology.
[9] Duofu Chen,et al. Petrographic and geochemical characteristics of the lacustrine black shales from the Upper Triassic Yanchang Formation of the Ordos Basin, China: Implications for the organic matter accumulation , 2017 .
[10] A. Bechtel,et al. Depositional environment of oil shale within the second member of Permian Lucaogou Formation in the Santanghu Basin, Northwest China , 2017 .
[11] R. Littke,et al. Organic geochemistry of the Lower Toarcian Posidonia Shale in NW Europe , 2017 .
[12] Yong Tang,et al. Characteristics and petroleum origin of the Carboniferous volcanic rock reservoirs in the Shixi Bulge of Junggar Basin, western China , 2017 .
[13] Jian Cao,et al. Geochemistry and origin of natural gas in the petroliferous Mahu sag, northwestern Junggar Basin, NW China: Carboniferous marine and Permian lacustrine gas systems , 2016 .
[14] Jian Cao,et al. Geochemistry and origin of natural gas in the eastern Junggar Basin, NW China , 2016 .
[15] Jianguo Du,et al. Geochemical application of tricyclic and tetracyclic terpanes biomarkers in crude oils of NW China , 2015 .
[16] Tao Wu,et al. Organofacies and paleoenvironment of lower Carboniferous mudstones (Dishuiquan Formation) in Eastern Junggar, NW China , 2015 .
[17] C. Pan,et al. Organic geochemistry of Carboniferous source rocks and their generated oils from the Eastern Junggar Basin, NW China , 2014 .
[18] Ö. Şen,et al. LOWER CARBONIFEROUS SHALES IN THE EASTERN TAURIDE BELT, SOUTHERN TURKEY: SOURCE ROCK CHARACTERISTICS , 2014 .
[19] R. Littke,et al. Organic geochemistry of Duckmantian (Pennsylvanian) coals from the Ruhr Basin, western Germany , 2013 .
[20] G. Gleixner,et al. Palaeoclimate reconstruction from biomarker geochemistry and stable isotopes of n-alkanes from Carboniferous and Early Permian humic coals and limnic sediments in western and eastern Europe , 2012 .
[21] Fang Hao,et al. Mechanisms for oil depletion and enrichment on the Shijiutuo uplift, Bohai Bay Basin, China , 2009 .
[22] H. Volk,et al. Preservation of hydrocarbons and biomarkers in oil trapped inside fluid inclusions for >2 billion years , 2008 .
[23] V. Wilde,et al. Sesqui-, di-, and triterpenoids as chemosystematic markers in extant conifers—A review , 2001, The Botanical Review.
[24] Kai Mangelsdorf,et al. Occurrence and palaeoenvironmental significance of aromatic hydrocarbon biomarkers in Oligocene sediments from the Mallik 5L-38 Gas Hydrate Production Research Well (Canada) , 2006 .
[25] B. Cardott,et al. Classification of huminite—ICCP System 1994 , 2005 .
[26] Simon C. George,et al. Assessing the maturity of oil trapped in fluid inclusions using molecular geochemistry data and visually-determined fluorescence colours , 2001 .
[27] A. Otto,et al. Sesqui- and diterpenoid biomarkers preserved in Taxodium-rich Oligocene oxbow lake clays, Weisselster basin, Germany , 1997 .
[28] H. Barnes,et al. THE SIZE DISTRIBUTION OF FRAMBOIDAL PYRITE IN MODERN SEDIMENTS : AN INDICATOR OF REDOX CONDITIONS , 1996 .
[29] R. Bourbonniere,et al. Record of postglacial organic matter delivery and burial in sediments of Lake Ontario , 1996 .
[30] William B. Hughes,et al. The ratios of dibenzothiophene to phenanthrene and pristane to phytane as indicators of depositional environment and lithology of petroleum source rocks , 1995 .
[31] M. Kruge,et al. Organic facies and maturation of Jurassic/Cretaceous rocks, and possible oil-source rock correlation based on pyrolysis of asphaltenes, Scotian Basin, Canada , 1995 .
[32] H. Hagemann,et al. Aromatized arborane/fernane hydrocarbons as molecular indicators of floral changes in Upper Carboniferous/Lower Permian strata of the Saar-Nahe Basin, southwestern Germany , 1994 .
[33] D. Welte,et al. Distribution of alkylated aromatic hydrocarbons and dibenzothiophenes in rocks of the Upper Rhine Graben , 1991 .
[34] W. Michaelis,et al. Structure and origin of terpenoid hydrocarbons in some German coals , 1990 .
[35] W. Kalkreuth,et al. Comparison of hydrocarbon compositions in a sequence of humic coals, cannel coals and oil shales from the Pictou Coalfield, Nova Scotia , 1989 .
[36] G. H. Taylor,et al. The influence of microbial degradation and volcanic activity on a Carboniferous wood , 1989 .
[37] T. Powell. Pristane/phytane ratio as environmental indicator , 1988, Nature.
[38] P. Sundararaman,et al. Sensitivity of biomarker properties to depositional environment and/or source input in the Lower Toarcian of SW-Germany , 1986 .
[39] R. A. Noble,et al. Tetracyclic diterpenoid hydrocarbons in some Australian coals, sediments and crude oils , 1985 .
[40] J. Espitalie,et al. Role of the mineral matrix during kerogen pyrolysis , 1984 .
[41] R. A. Noble,et al. Identification of the bicyclic sesquiterpenes drimane and eudesmane in petroleum , 1983 .
[42] P. J. Grantham,et al. The nature and origin of sesquiterpenoids in some tertiary fossil resins , 1980 .
[43] W. Meinschein,et al. Sterols as ecological indicators , 1979 .
[44] B. Simoneit. Diterpenoid compounds and other lipids in deep-sea sediments and their geochemical significance , 1977 .