Source rock potential and organic geochemistry of carboniferous source rocks in Santanghu Basin, NW China

Daofu Song , Dengfa He , Shurong Wang

Journal of Earth Science ›› 2013, Vol. 24 ›› Issue (3) : 355 -370.

PDF
Journal of Earth Science ›› 2013, Vol. 24 ›› Issue (3) : 355 -370. DOI: 10.1007/s12583-013-0339-9
Article

Source rock potential and organic geochemistry of carboniferous source rocks in Santanghu Basin, NW China

Author information +
History +
PDF

Abstract

Carboniferous source rocks identified by drilling in Santanghu (三塘湖) Basin were evaluated for their source potential, employing organic geochemistry and RockEval pyrolysis. The organic matter origin and depositional environment of these samples were also determined through biomarker analysis. Most of the Carboniferous source rocks in Santanghu Basin are characterised by high values of total organic carbon (TOC) content and high extractable organic matter content and hydrocarbon yields, indicating that they are organic-rich source rocks with high oil generative potential. The organic matter is predominantly Type I and Type II kerogen with a minor contribution of Type III kerogen, as demonstrated by its pyrolysis parameters and carbon isotope values. According to Ro (%) and T max values, most of the studied samples are at early- to middle-thermal mature stage; only a few of the samples are at a highly mature stage (past peak oil generation). The biomarker analysis reveals a dominance of algal/bacterial organic matter input, with a minor contribution of land plant material. Pr/Ph ratio supports a suboxic depositional condition, consistent with a neritic or marine-continental alternating environment proposed by predecessor.

Keywords

Santanghu Basin / Carboniferous source rock / hydrocarbon potential / depositional environment / organic geochemistry

Cite this article

Download citation ▾
Daofu Song, Dengfa He, Shurong Wang. Source rock potential and organic geochemistry of carboniferous source rocks in Santanghu Basin, NW China. Journal of Earth Science, 2013, 24(3): 355-370 DOI:10.1007/s12583-013-0339-9

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Abeed Q, Alkhafaji A, Littke R. Source Rock Potential of the Upper Jurassic-Lower Cretaceous Succession in the Southern Mesopotamian Basin, Southern Iraq. Journal of Petroleum Geology, 2011, 34(2): 117-134.

[2]

Batten D J. Jansonius J, McGregor D C. Palynofacies and Palynoenvironmental Interpretation. Palynology: Principles and Applications, 1996 Dallas: American Association of Stratigraphic Palynologists Foundation, 1011-1064.

[3]

Batten D J. Jansonius J, McGregor D C. Palynofacies and Petroleum Potential. Palynology: Princi ples and Applications, 1996 Dallas: American Association of Stratigraphic Palynologists Foundation, 1065-1084.

[4]

Bordenave M L. Bordenave M L. Geochemical Methods and Tools in Petroleum Exploration. Applied Petroleum Geochemistry, 1993 Paris: Editions Technip, 207-216.

[5]

Bordenave M L, Espitalié J, Leplant P, . Bordenave M L, . Screening Techniques for Source Rock Evaluation. Applied Petroleum Geochemistry, 1993 Paris: Editions Technip, 217-278.

[6]

Bray E E, Evans E D. Distribution of N-Paraffins as a Clue to Recognition of Source Beds. Geochimica et Cosmochinica Acta, 1961, 22(1): 2-15.

[7]

Cao J, Wang X L, Wei D T, . Complex Petroleum Migration and Accumulation in Central Region of Southern Junggar Basin, Northwest China. Journal of Earth Science, 2010, 21(1): 83-93.

[8]

Chen S, Zhang Y Y, Guo Z J. Zircon SHRIMP U-Pb Dating and Its Implications of Post-Collisional Volcanic Rocks in Santanghu Basin, Xinjiang. Acta Petrologica Sinica, 2009, 25(3): 527-538.

[9]

Chen Y C, Shen Z M, Luo X P. Petroleum and Gas Organic Geochemistry, 2007 China: Science Press, 161-244.

[10]

Chung H M, Rooney M A, Toon M B, . Carbon Isotope Composition of Marine Crude Oils. AAPG Bulletin, 1992, 76(7): 1000-1007.

[11]

Demaison G, Huizinga B J. Magoon L B, Dow W G. Genetic Classification of Petroleum Systems Using Three Factors: Charge, Migration, and Entrapment. The Petroleum Systems: From Source to Trap, 1994 Oklahoma: The American Association of Petroleum Geologists Tulsa, 73-80.

[12]

Didyk B M, Simoneit B R T, Brassell S C, . Organic Geochemical Indicators of Palaeoenvironmental Conditions of Sedimentation. Nature, 1978, 272: 216-222.

[13]

Espitalié J. Burruss J. Use of T max as a Maturation Index for Different Types of Organic Matter—Comparison with Vitrinite Reflectance. Thermal Modeling in Sedimentary Basins, 1985 Paris: Editions Technip, 475-496.

[14]

Gao C Q. Key Factors of Carboniferous Hydrocarbon Accumulation and Favorable Prospecting Regions in Santanghu Basin. Tuha Oil and Gas, 2008, 13(3): 208-213.

[15]

Gao G, Liang H, Li H, . Organic Geochemistry of Carboniferous and Lower Permian Source Rocks, Turpan-Hami Basin, NW China. Petroleum Exploration and Development, 2009, 36(5): 583-592.

[16]

Guo J Y, Li Z M. Study of Gas Source and Characteristics of Carboniferous Hydrocarbon Source Rock in the Junggar Basin. Petroleum Geology and Experiment, 2009, 31(3): 275-281.

[17]

Guo J Y, Wang D L, Lin T. Conditions of Gas Pooling of Carboniferous Volcanic Rocks in Junggar Basin. Inner Mongulia Petrochemical Industry, 2009, 9: 112-116.

[18]

Hao F, Zhou X H, Zou H Y, . Petroleum Charging and Leakage in the BZ25-1 Field, Bohai Bay Basin. Journal of Earth Science, 2012, 23(3): 253-267.

[19]

He D F, Chen X F, Kuang J, . Characteristics and Exploration Potential of Carboniferous Hydrocarbon Plays in Junggar Basin. Acta Petrolei Sinica, 2010, 31(1): 1-10.

[20]

Hu B, Guan Q, Zhu B S, . Structure and Deformation Characteristics in Santanghu Basin. Xinjiang Petroleum Geology, 1999, 20(5): 374-378.

[21]

Hunt J M. Petroleum Geochemistry and Geology (II), 1996 New York: Freeman, 743.

[22]

Langford F F, Blanc-Valleron M M. Interpreting Rock-Eval Pyrolysis Data Using Graphs of Pyrolizable Hydrocarbons vs. Total Organic Carbon. AAPG Bulletin, 1990, 74(6): 799-804.

[23]

Leckie D A, Kalkreuth W D, Snowdon L R. Source Rock Potential and Thermal Maturity of Lower Cretaceous Strata: Moukman Pass Area, British Colombia. AAPG Bulletin, 1988, 72(7): 820-838.

[24]

Liang H, Gou H G. Petrochemical Characteristics and Structural Environment of the Volcanic Rock of Kalagang Formation in Santanghu Basin. Journal of Xi’an Shiyou University (Natural Science Edition), 2009, 24(5): 23-28.

[25]

Lin K X, Li Y B, Gong W P, . Geochemical Characteristics of Upper Palaeozoic Volcanic Rocks and Their Tectonic Settings in the Santanghu Basin, Xinjiang. Geological Journal of China Universities, 1997, 3(2): 202-211.

[26]

Lin T, Jiao G H, Sun P, . Characteristic and Influencing Factors of Carboniferous Volcanic Reservoirs in Santanghu Basin. Natural Gas Geoscience, 2009, 20(4): 513-517.

[27]

Liu J T, Zhu Y X, Li Z G, . Characteristics and Controlling Factors of Volcanic Reservoir of Carboniferous in Santanghu Basin. Lithologic Reservoirs, 2009, 21(3): 23-27.

[28]

Liu S L, Li Y, Guo L G, . Geochemical Characteristics of Es 3–Es 4 Source Rocks in Eogene of Bonan Subsag. Petroleum Geology and Recovery Efficiency, 2006, 13(4): 8-11.

[29]

Liu X F, Liu S P, Liu C X, . Tectonic Evolution and Prototype Basins of Santanghu Basin. Journal of Southwest Petroleum Institute, 2002, 24(4): 13-16.

[30]

Meng Q X, Fang H, Xu Y C, . Biomarkers and Geochemical Significance of Carboniferous Source Rocks and Coals from Qaidam Basin. Acta Sedimentologica Sinica, 2004, 15(2): 125-127.

[31]

Moldowan J M, Seifert W K, Gallegos E J. Relationship between Petroleum Composition and Depositional Environment of Petroleum Source Rocks. AAPG Bulletin, 1985, 69(8): 1255-1268.

[32]

Ourisson G, Albrecht P, Rohmer M. Predictive Microbial Biochemistry from Molecular Fossils to Procaryotic Membranes. Trends in Biochemical Science, 1982, 7(7): 236-239.

[33]

Pancost R D, Boot C S. The Palaeoclimatic Utility of Terrestrial Biomarkers in Marine Sediments. Marine Chemistry, 2004, 92(1–4): 239-261.

[34]

Peters K E. Guidelines for Evaluating Petroleum Source Rock Using Programmed Pyrolysis. American Association of Petroleum Geologists Bulletin, 1986, 70(3): 318-329.

[35]

Peters K E, Cassa M R. Magoon L B, Dow W G. Applied Source Rock Geochemistry. The Petroleum System from Source to Trap, 1994 Oklahoma: The American Association of Petroleum Geologists Tulsa, 93-120.

[36]

Peters K E, Moldwan J M. The Biomarker Guide (I), Interpreting Molecular Fossils in Petroleum and Ancient Sediments, 1993 Englewood Cliffs, New Jersey: Prentice Hall, 363.

[37]

Peters K E, Walters C C, Moldowan J M. The Biomarker Guide (II), Biomarkers and Isotopes in Petroleum Exploration and Earth History, 2005 Cambridge: Cambridge University Press, 475-1155.

[38]

Scalan R S, Smith J E. An Improved Measure of the Odd-to-Even Predominance in the Normal Alkanes of Sediment Extracts and Petroleum. Geochimica et Cosmochimica Acta, 1970, 34(5): 611-620.

[39]

Schoell M. Recent Advances in Petroleum Isotope Geochemistry. Organic Geochemistry, 1984, 6: 645-663.

[40]

Seifert W K, Moldowan J M. Application of Steranes, Terpanes and Monoaromatics to the Maturation, Migration and Source of Crude Oils. Geochimica et Cosmochimica Acta, 1978, 42(1): 77-95.

[41]

Seifert W K, Moldowan J M. Use of Biological Markers in Petroleum Exploration. Methods in Geochemistry and Geophysics, 1986, 24: 261-290.

[42]

Shang H Y, Li J C, Guo S L. Organic Geochemistry and Fluorescent Microscopy Technique, 1990 Beijing: Petroleum Industry Press, 60-62.

[43]

Shi X, Wang X L, Zhang Z, . Distribution of Carboniferous Hydrocarbon Source Rock in Junggar Basin and Geochemical Characteristics. Petroleum Geology, 2005, 3(1): 4-39.

[44]

Springer M V, Garcia D F, Goncalves F T T, . Diamondoid and Biomarker Characterization of Oils from the Llanos Orientales Basin, Colombia. Organic Geochemistry, 2010, 41(9): 1013-1018.

[45]

Su A G. Discussion on Variation of Carbon Isotope of Kerogen during Thermal Maturation and Weathering. Bulletin of Mineralogy, Petrology and Geochemistry, 1999, 18(2): 79-84.

[46]

Suo X D, Li F X. Geologic Structure and Volcanic Distribution of Carboniferous in Malang Sag in Santanghu Basin. Xinjiang Petroleum Geology, 2009, 30(4): 463-466.

[47]

Sun Z M, Xiong B X, Li Y L, . Structural Characteristics and Favorable Belt for Hydrocarbon Exploration in Santanghu Basin. Petroleum Geology and Experiment, 2001, 23(1): 23-37.

[48]

Tissot B P, Pelet R, Ungerer P H. Thermal History of Sedimentary Basins, Maturation Indices, and Kinetics of Oil and Gas Generation. AAPG Bulletin, 1987, 71(12): 1445-1466.

[49]

Tissot B P, Welte D H. Petroleum Formation and Occurrence, 1984 Boston: Springer Verlag, 699.

[50]

Volkman J K. A Review of Sterol Markers for Marine and Terrigenous Organic Matter. Organic Geochemistry, 1986, 9(2): 83-99.

[51]

Volkman J K. Sterols in Microorganisms. Applied Microbiology and Biotechnology, 2003, 60: 496-506.

[52]

Waples D W. Geochemistry in Petroleum Exploration, 1985 Boston: Springer Verlag, 223

[53]

Xiao X C, Tang Y Q, Li J T. Tectonic Evolution of Northern Xinjiang and Its Adjacent Regions, 1992 Beijing: Geological Publishing House, 1-40.

[54]

Yan Y K. Tectonic Background and Hydrocarbon Accumulation of Carboniferous Volcanic in Santanghu Basin. China Mining Magazine, 2009, 18(6): 46-52.

[55]

Yan Y K, Yang B, He W G, . Evaluation and Transformation of Carboniferous Volcanics in Santanghu Basin. Exploration Techniques, 2010, 38-44.

[56]

Yang Z X, Liang H, Luo Q S. Reservoir Capability of Volcanic Rock of Carboniferous in Santanghu Basin. Xinjiang Petroleum Geology, 2010, 31(3): 254-256.

[57]

Zeng F G, Cheng K M. Geochemical Characteristics of Saturated Hydrocarbon Biomarkers from Lower Palaeozoic Marine Carbonate Rocks in North China. Geology-Geochemistry, 1998, 26(3): 25-32.

[58]

Zhao B G, He F Y, Chen Z G, . Basement Features of Santanghu Basin and Analysis on Uranium Source Condition for Ore-Formation of Sandstone-Type Uranium Deposit. Uranium Geology, 2004, 20(4): 221-244.

[59]

Zhao Z H, Guo Z J, Zhang C, . Tectonic Evolution of the Santanghu Basin, East Xinjiang and Its Implication for the Hydrocarbon Accumulation. Acta Scientiarum Naturalium, Universitatis Pekinensis, 2003, 39(2): 220-228.

[60]

Zhang J W, Wang X Q. Geochemical Characteristics and Oil Source Analysis of Taizhou Formation Crude in Bao1 Well. Small Hydrocarbon Reservoirs, 2008, 13(2): 13-17.

[61]

Zhang L, Zhang M. Geochemical Research in LC-1 Well of Tertiary Source Rock in the South Area of Western Qaidam Basin. Natural Gas Geoscience, 2009, 20(4): 610-615.

[62]

Zhang M J, Yang P. The Characteristic and Analysis of Reservoir-Forming Conditions of the Carboniferous Oil and Gas Pools in Junggar Basin. Journal of Xinjiang Petroleum Institute, 2000, 12(2): 8-13.

AI Summary AI Mindmap
PDF

173

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/