Geochemical characteristics and exploration significance of ultra-deep Sinian oil and gas from Well Tashen 5, Tarim Basin, NW China
暂无分享,去创建一个
[1] Li Dong,et al. Characteristics and geochemical implications of light hydrocarbons from ultra-deep Ordovician oils in the North Shuntuoguole area, Tarim Basin , 2022, Frontiers of Earth Science.
[2] Jianfeng Zheng,et al. Tectonic-lithofacies paleogeography, large-scale source-reservoir distribution and exploration zones of Cambrian subsalt formation, Tarim Basin, NW China , 2021, Petroleum Exploration and Development.
[3] Wangpeng Li,et al. Diamondoids in oils from the ultra-deep Ordovician in the North Shuntuoguole area in the Tarim Basin, NW China , 2021 .
[4] A. Milkov,et al. Deepest oil in Asia: Characteristics of petroleum system in the Tarim basin, China , 2020 .
[5] G. Zhu,et al. The origin and accumulation of multi-phase reservoirs in the east Tabei uplift, Tarim Basin, China , 2018, Marine and Petroleum Geology.
[6] G. Etiope,et al. Revised genetic diagrams for natural gases based on a global dataset of >20,000 samples , 2018, Organic Geochemistry.
[7] G. Zhu,et al. Discovery of the lower Cambrian high-quality source rocks and deep oil and gas exploration potential in the Tarim Basin, China , 2018, AAPG Bulletin.
[8] Zhijun Jin,et al. Detection and significance of higher thiadiamondoids and diamondoidthiols in oil from the Zhongshen 1C well of the Tarim Basin, NW China , 2018, Science China Earth Sciences.
[9] Wang Xiaobo,et al. New indexes and charts for genesis identification of multiple natural gases , 2017 .
[10] M. Abrams. Evaluation of Near-Surface Gases in Marine Sediments to Assess Subsurface Petroleum Gas Generation and Entrapment , 2017 .
[11] Jizhi Zhang,et al. Origin and differential accumulation of hydrocarbons in Cambrian sub-salt dolomite reservoirs in Zhongshen Area, Tarim Basin, NW China , 2017 .
[12] A. Ma. Advancement in application of diamondoids on organic geochemistry , 2016 .
[13] C. Cai,et al. Sulfur isotopic compositions of individual organosulfur compounds and their genetic links in the Lower Paleozoic petroleum pools of the Tarim Basin, NW China , 2016 .
[14] Shuichang Zhang,et al. Palaeozoic oil–source correlation in the Tarim Basin, NW China: A review , 2016 .
[15] Li Meijun,et al. Geochemistry and possible origin of the hydrocarbons from Wells Zhongshen1 and Zhongshen1C, Tazhong Uplift , 2016 .
[16] A. Ma. Kinetics of oil-cracking for different types of marine oils from Tahe Oilfield, Tarim Basin, NW China , 2016 .
[17] Baoshou Zhang,et al. Application of sulfur and carbon isotopes to oil–source rock correlation: A case study from the Tazhong area, Tarim Basin, China , 2015 .
[18] Z. Ke,et al. Discovery and Exploration of Cambrian Subsalt Dolomite Original Hydrocarbon Reservoir at Zhongshen-1 Well in Tarim Basin , 2014 .
[19] Haijun Yang,et al. Geochemistry of Palaeozoic marine petroleum from the Tarim Basin, NW China: Part 3. Thermal cracking of liquid hydrocarbons and gas washing as the major mechanisms for deep gas condensate accumulations , 2011 .
[20] P. Mankiewicz,et al. Natural occurrence of higher thiadiamondoids and diamondoidthiols in a deep petroleum reservoir in the Mobile Bay gas field , 2011 .
[21] X. Xiao,et al. Oil cracking to gases: Kinetic modeling and geological significance , 2006 .
[22] Yongge Sun,et al. Source facies of the Paleozoic petroleum systems in the Tabei uplift, Tarim Basin, NW China: implications from aryl isoprenoids in crude oils , 2003 .
[23] D. Waples. The kinetics of in-reservoir oil destruction and gas formation: constraints from experimental and empirical data, and from thermodynamics , 2000 .
[24] K. Peters,et al. Diamondoid hydrocarbons as indicators of natural oil cracking , 1999, Nature.
[25] Jiamo Fu,et al. Diamondoid hydrocarbon ratios: novel maturity indices for highly mature crude oils , 1996 .
[26] O. Stasová,et al. Geochemistry of Selected Oils and Rocks from the Central Portion of the West Siberian Basin, Russia , 1993 .
[27] H. Chung,et al. Origin of gaseous hydrocarbons in subsurface environments: Theoretical considerations of carbon isotope distribution , 1988 .
[28] Alfred A. Christy,et al. Maturity determination of organic matter in coals using the methylphenanthrene distribution , 1987 .
[29] K. Thompson. Classification and thermal history of petroleum based on light hydrocarbons , 1983 .
[30] J. Brooks,et al. Natural gas seepage in the Gulf of Mexico , 1976 .
[31] Jun Ying,et al. Mechanism and geological significance of anomalous negative δ13Ckerogen in the Lower Cambrian, NW Tarim Basin, China , 2022 .
[32] G. Zhu,et al. TSR-altered oil with high-abundance thiaadamantanes of a deep-buried Cambrian gas condensate reservoir in Tarim Basin , 2016 .
[33] Sinopec Northwest. Characteristics of Cambrian source rocks in well XH1,Shaya Uplift,Tarim Basin , 2014 .
[34] C. Beaumont,et al. Estimation of the kinetics of geochemical reactions with geophysical models of sedimentary basins and applications , 1984 .
[35] D. Welte,et al. Geochemical study on a well in the Western Canada Basin: relation of the aromatic distribution pattern to maturity of organic matter , 1982 .
[36] J. Connan,et al. Properties of gases and petroleum liquids derived from terrestrial kerogen at various maturation levels , 1980 .