Fluid evolution and petroleum accumulation in the precambrian gas reservoirs of the Sichuan Basin, SW China
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A. Tarantola | Xiaowen Guo | Ze Tao | Sheng He | Zhiliang He | Yahao Huang | Tao Luo | Ziming Sun | Dianwei Zhang
[1] Min Zhang,et al. Pressure–temperature–time–composition (P–T–t–x) of paleo–fluid in Permian organic–rich shale of Lower Yangtze Platform, China: Insights from fluid inclusions in fracture cements , 2021 .
[2] Dianwei Zhang,et al. Petrological and geochemical characteristics of the botryoidal dolomite of Dengying Formation in the Yangtze Craton, South China: Constraints on terminal Ediacaran “dolomite seas” , 2020 .
[3] Feng Yang,et al. Characteristics and controlling factors of dolomite karst reservoirs of the Sinian Dengying Formation, central Sichuan Basin, southwestern China , 2020, Precambrian Research.
[4] Dongya Zhu,et al. Early development and late preservation of porosity linked to presence of hydrocarbons in Precambrian microbialite gas reservoirs within the Sichuan Basin, southern China , 2020, Precambrian Research.
[5] Jiaxi Zhou,et al. Sm-Nd isochron dating and geochemical (rare earth elements, 87Sr/86Sr, δ18O, δ13C) characterization of calcite veins in the Jiaoshiba shale gas field, China: Implications for the mechanisms of vein formation in shale gas systems , 2020 .
[6] C. Cai,et al. Alteration of solid bitumen by hydrothermal heating and thermochemical sulfate reduction in the Ediacaran and Cambrian dolomite reservoirs in the Central Sichuan Basin, SW China , 2019, Precambrian Research.
[7] Yunliang Chen,et al. Quantitative Analysis of Main Components of Natural Gas Based on Raman Spectroscopy , 2019, Chinese Journal of Analytical Chemistry.
[8] W. Lu,et al. Charge history of CO2 in Lishui sag, East China Sea basin: Evidence from quantitative Raman analysis of CO2-bearing fluid inclusions , 2018, Marine and Petroleum Geology.
[9] Zecheng Wang,et al. Strike-slip faults and their significance for hydrocarbon accumulation in Gaoshiti–Moxi area, Sichuan Basin, SW China , 2018, Petroleum Exploration and Development.
[10] J. Dai,et al. Geochemical characteristics of ultra-deep natural gas in the Sichuan Basin, SW China , 2018, Petroleum Exploration and Development.
[11] Wen Liu,et al. Precambrian temperature and pressure system of Gaoshiti-Moxi block in the central paleo-uplift of Sichuan Basin, southwest China , 2018, Precambrian Research.
[12] D. Petrov. Raman spectrum of ethane in methane environment , 2018 .
[13] Jun Li,et al. Advances in the origin of overpressures in sedimentary basins , 2018 .
[14] Zhongsheng Li,et al. RaMM (Raman maturity method) study of samples used in an interlaboratory exercise on a standard test method for determination of vitrinite reflectance on dispersed organic matter in rocks , 2018 .
[15] Jian-xin Zhao,et al. Geothermometry and geobarometry of overpressured lower Paleozoic gas shales in the Jiaoshiba field, Central China: Insight from fluid inclusions in fracture cements , 2017 .
[16] Kang Chen,et al. Controlling factors of Dengying Formation reservoirs in the central Sichuan paleo-uplift , 2017 .
[17] Hong Liu,et al. Karst paleogeomorphology of the fourth Member of Sinian Dengying Formation in Gaoshiti-Moxi area, Sichuan Basin, SW China: Restoration and geological significance , 2017 .
[18] Jianli Zhang,et al. An equation for determining methane densities in fluid inclusions with Raman shifts , 2016 .
[19] Dianwei Zhang,et al. Coupled alteration of hydrothermal fluids and thermal sulfate reduction (TSR) in ancient dolomite reservoirs – An example from Sinian Dengying Formation in Sichuan Basin, southern China , 2016 .
[20] R. Walker,et al. U-Pb geochronology of calcite-mineralized faults: Absolute timing of rift-related fault events on the northeast Atlantic margin , 2016 .
[21] Dmitry V. Petrov,et al. Raman Gas Analyzer (RGA): Natural Gas Measurements , 2016, Applied spectroscopy.
[22] N. Qiu,et al. Overpressure compartments in the central paleo-uplift, Sichuan Basin, southwest China , 2016 .
[23] L. Coogan,et al. Early hydrothermal carbon uptake by the upper oceanic crust: Insight from in situ U-Pb dating , 2016 .
[24] Wo Yujin,et al. Hydrocarbon accumulation characteristics and exploration domains of ultradeep marine carbonates in China , 2016 .
[25] Zhongsheng Li,et al. A RaMM study of thermal maturity of dispersed organic matter in marine source rocks , 2015 .
[26] X. Duan,et al. Formation and evolution of Weiyuan-Anyue tensional corrosion trough in Sinian system, Sichuan Basin , 2015 .
[27] Xuefeng Zhang,et al. The fate of CO2 derived from thermochemical sulfate reduction (TSR) and effect of TSR on carbonate porosity and permeability, Sichuan Basin, China , 2015 .
[28] Shenghong Hu,et al. "Wave" signal-smoothing and mercury-removing device for laser ablation quadrupole and multiple collector ICPMS analysis: application to lead isotope analysis. , 2015, Analytical chemistry.
[29] X. Xiao,et al. Thermal maturity evaluation from inertinites by Raman spectroscopy: The ‘RaMM’ technique , 2014 .
[30] C. Zou,et al. Formation, distribution, resource potential, and discovery of Sinian–Cambrian giant gas field, Sichuan Basin, SW China , 2014 .
[31] X. Xiao,et al. Sample maturation calculated using Raman spectroscopic parameters for solid organics: Methodology and geological applications , 2013 .
[32] Liu Shu-ge. Xingkai taphrogenesis and petroleum exploration from Upper Sinian to Cambrian Strata in Sichuan Basin,China , 2013 .
[33] I. Uysal,et al. Accessory phases from the Soultz monzogranite, Soultz-sous-Forêts, France: Implications for titanite destabilisation and differential REE, Y and Th mobility in hydrothermal systems , 2013 .
[34] Keyu Liu,et al. Quantitative estimation of overpressure caused by oil generation in petroliferous basins , 2011 .
[35] Fang Jing. Thermal History Reconstruction and Hydrocarbon Accumulation Period Discrimination of Jinhu Depression in Subei Basin , 2011 .
[36] V. Hurai. Fluid inclusion geobarometry: Pressure corrections for immiscible H2O–CH4 and H2O–CO2 fluids , 2010 .
[37] Huang Wen-mingb. Petroleum Formed Condition and Process Research for Sinian to Low Paleozoic at Dingshan Structure in Southeast of Sichuan Basin , 2010 .
[38] Z. Xue-feng. Distribution and further exploration of the large-medium sized gas fields in Sichuan Basin , 2010 .
[39] J. Pironon,et al. Petroleum accumulation and leakage in a deeply buried carbonate reservoir, Níspero field (Mexico) , 2010 .
[40] Wenxuan Hu,et al. Using in situ REE analysis to study the origin and diagenesis of dolomite of Lower Paleozoic, Tarim Basin , 2009 .
[41] Liu Shu-gen. Paleo-fluid geochemical evaluation of hydrocarbon preservation in marine carbonate rock areas: Taking lower association in central Sichuan Basin as an example , 2009 .
[42] Shan Gao,et al. In situ analysis of major and trace elements of anhydrous minerals by LA-ICP-MS without applying an internal standard , 2008 .
[43] Liu Shun. Tectonic Uplifting and Gas Pool Formation since Late Cretaceous Epoch,Sichuan Basin , 2008 .
[44] Zhiping Zeng,et al. Hierarchies of overpressure retardation of organic matter maturation: Case studies from petroleum basins in China , 2007 .
[45] Cai Li-guo. Inheritance and Innovation of Marine Petroleum Geological Theory in China , 2007 .
[46] Yang Chun. FORMATION CONDITIONS AND MAIN CONTROLLING FACTORS OF LARGE GAS FIELDS IN CHINA , 2007 .
[47] Zhenhao Duan,et al. A thermodynamic model for calculating methane solubility, density and gas phase composition of methane-bearing aqueous fluids from 273 to 523 K and from 1 to 2000 bar , 2006 .
[48] R. Bodnar,et al. In situ quantitative analysis of individual H2O–CO2 fluid inclusions by laser Raman spectroscopy , 2006 .
[49] J. Girard,et al. Pressure–temperature–time–composition (P–T–t–X) constraints of multiple petroleum charges in the Hild field, Norwegian North Sea , 2004 .
[50] B. Kamber,et al. Rare earth element geochemistry of Late Devonian reefal carbonates, Canning Basin, Western Australia : Confirmation of a seawater REE proxy in ancient limestones , 2004 .
[51] Sheng He,et al. Heat flow and thermal maturity modelling in the Northern Carnarvon Basin, North West Shelf, Australia , 2002 .
[52] E. Stenby,et al. How to determine the pressure of a methane-containing gas mixture by means of two weak Raman bands, v(3) and 2v(2) , 2002 .
[53] L. Diamond. Review of the systematics of CO2–H2O fluid inclusions , 2001 .
[54] R. Goldstein,et al. Fluid inclusions in sedimentary and diagenetic systems , 2001 .
[55] M. Swar. Mechanisms for Generating Overpressure in Sedimentary Basins: A Reevaluation: Reply , 1997 .
[56] M. Evans. Fluid inclusions in veins from the Middle Devonian shales: A record of deformation conditions and fluid evolution in the Appalachian Plateau , 1995 .
[57] P. Dulski,et al. Comparative study of yttrium and rare-earth element behaviours in fluorine-rich hydrothermal fluids , 1995 .
[58] J. C. Seitz,et al. Raman spectroscopic characterization of gas mixtures; I, Quantitative composition and pressure determination of CH 4 , N 2 and their mixtures , 1993 .
[59] Charles W. Spencer,et al. Hydrocarbon Generation as a Mechanism for Overpressuring in Rocky Mountain Region , 1987 .
[60] R. Goldstein. Reequilibration of fluid inclusions in low-temperature calcium-carbonate cement , 1986 .
[61] S. Tlig,et al. A comparative study of the Rare Earth Element (REE) distributions within the Lower Cretaceous dolomites and limestones of Central Tunisia , 1985 .
[62] W. Dickinson,et al. Conceptual Model for Origin of Abnormally Pressured Gas Accumulations in Low-Permeability Reservoirs , 1985 .
[63] D. Peng,et al. A New Two-Constant Equation of State , 1976 .
[64] M. C. Powers. Fluid-Release Mechanisms in Compacting Marine Mudrocks and Their Importance in Oil Exploration , 1967 .