Hydrocarbon generation kinetics and in-situ conversion temperature conditions of Chang 7 Member shale in the Ordos Basin, China
Tài liệu tham khảo
Du, 2019, The types, potentials and prospects of continental shale oil in China, Chin. Pet. Explor., 24, 560
Connan, 1974, Time-temperature relation in oil genesis: geologic notes, Am. Assoc. Pet. Geol. Bull., 58, 2516
Tissot, 1987, Thermal history of sedimentary basins, maturation indices, and kinetics of oil and gas generation, Am. Assoc. Pet. Geol. Bull., 71, 1445
Tissot, 1984
Ungerer, 1987, Extrapolation of the kinetics of oil and gas formation from laboratory experiments to sedimentary basins, Nature, 327, 52, 10.1038/327052a0
Shen, 2009, Reservoir simulation study of an in-situ conversion pilot of Green-River oil shale
Yang, 2017, Selection of pilot areas for testing in-situ conversion/upgrading processing in lacustrine shale: a case study of Yanchang-7 member in Ordos Basin, J. Shenzhen Univ. Sci. Eng., 34, 221
Zhao, 2018, Connotation and strategic role of in-situ conversion processing of shale oil underground in the onshore China, Pet. Explor. Dev., 45, 537, 10.1016/S1876-3804(18)30063-6
Cui, 2018, Shale in-situ mining technology status quo of challenges and opportunities, Unconv. Oil Gas, 5, 103
Wang, 2014, The hydrocarbon generation process of the Mesozoic Chang 7 lacustrine shale in south of Ordos Basin, Unconv. Oil Gas, 1, 2
Liao, 2016
Han, 2014, Hydrocarbon generation kinetics of lacustrine Yanchang shale in southeast Ordos Basin, North China, Energy Fuels, 28, 5632, 10.1021/ef501011b
Huang, 2013, Hydrocarbon generation kinetics and simulation result analysis of source rocks in Yanchang Formation of the southern Ordos Basin, J. Pet. Nat. Gas, 35, 21
Qi, 2019, Comparative analysis of hydrocarbon generation kinetics of dark shale and black shale of Chang 7 in southern Ordos Basin, Geoscience, 33, 863
S. L. Wellington, I. E. Berchenko, E. P. D. Rouffignac, T. D. Fowler, J. M. Karanikas, R. C. Ryan, In Situ Thermal Processing of an Oil Shale Formation to Produce a Desired Product:US2003136558. 2005-04-19.
Fan, 2010, Numerical simulation of the in-situ upgrading of oil shale, SPE J., 15, 368, 10.2118/118958-PA
Li, 2019, Discussion on prospecting potential of shale oil in the 3rd sub-member of the Triassic Chang 7 Member in Binchang block, southwestern Ordos Basin, Oil Gas Geol., 40, 558
Yang, 2017, Geochemical characteristics of source rocks and oil-source correlation of Yanchang Formation in southern Ordos Basin, China, Nat. Gas Geosci., 28, 550
Yang, 2005, Leading effect of the seventh member high-quality source rock of Yanchang Formation in Ordos Basin during the enrichment of low-penetrating oil-gas accumulation, Geochimica, 34, 147
Ma, 2020, Generation and expulsion process of the Chang 7 oil shale in the Ordos Basin based on temperature-based semi-open pyrolysis: implications for in-situ conversion process, J. Pet. Sci. Eng., 190, 107035, 10.1016/j.petrol.2020.107035
Arrhenius, 1889, Über die Reaktionsgeschwindigkeit bei der Inversion von Rohrzucker durch Säuren, Z. Phys. Chem., 4, 226
Coats, 1964, Kinetic parameters from thermogravimetric data, Nature, 201, 68, 10.1038/201068a0
Dieckmann, 2005, Modelling petroleum formation from heterogeneous source rocks: the influence of frequency factors on activation energy distribution and geological prediction, Mar. Pet. Geol., 22, 375, 10.1016/j.marpetgeo.2004.11.002
Shih, 1980, Nonisothermal determination of the intrinsic kinetics of oil generation from oil shale, Ind. Eng. Chem. Process Des. Dev., 19, 420, 10.1021/i260075a016
Pitt, 1962, Oxidation of phenylpyruvates to aromatic aldehydes and oxalate, Nature, 196, 272, 10.1038/196272a0
Quigley, 1988, The temperatures of oil and gas formation in the sub-surface, Nature, 333, 549, 10.1038/333549a0
Lu, 1997, Chemical kinetic models of generation of gas by various groups in crude oil and their calibration, Acta Geol. Sin., 7, 367
Wang, 2011, Comparison on hydrocarbon generation kinetic model, J. China Univ. Pet. Ed. Nat. Sci., 35, 12
Lakshmanan, 1991, Implications of multiplicity in kinetic parameters to petroleum exploration: distributed activation energy models, Energy Fuels, 5, 110, 10.1021/ef00025a019
Behar, 2008, Role of NSO compounds during primary cracking of a Type II kerogen and a Type III lignite, Org. Geochem., 39, 1, 10.1016/j.orggeochem.2007.10.007
Burnham, 2017
Zhang, 2019, Kinetic simulation of hydrocarbon generation and its application to in-situ conversion of shale oil, Pet. Explor. Dev., 46, 1212, 10.1016/S1876-3804(19)60282-X
Ma, 2017, Impact of different experimental heating rates on calculated hydrocarbon generation kinetics, Energy Fuels, 31, 10378, 10.1021/acs.energyfuels.7b01035
He, 2018, The evolution of chemical groups and isotopic fractionation at different maturation stages during lignite pyrolysis, Fuel, 211, 492, 10.1016/j.fuel.2017.09.085
Shen, 2004, Relationship of least distribution values of activation energy of source rocks and organic matter maturity, J. Chengdu Univ. Technol. Sci. Technol. Ed., 31, 723
Lu, 2007, Study on chemical kinetics of secondary hydrocarbon generation from organic matter in carbonate rocks and its significance, Sci. China Ser. D Earth Sci., 37, 178
Li, 2014, Chemical kinetics study on organic matter in source rocks in Huangqiao area, China Min. Mag., 23, 92
Romero-sarmiento, 2016, Artificial thermal maturation of source rocks at different thermal maturity levels: application to the Triassic Montney and Doig formations in the Western Canada Sedimentary Basin, Org. Geochem., 97, 148, 10.1016/j.orggeochem.2016.05.002
Romero-sarmiento, 2019, Lacustrine type I kerogen characterization at different thermal maturity levels: application to the late Cretaceous Yacoraite formation in the Salta Basin-Argentina, Int. J. Coal Geol., 23, 15, 10.1016/j.coal.2019.01.004
Kang, 2020, Review of oil shale in-situ conversion technology, Appl. Energy, 269, 115121, 10.1016/j.apenergy.2020.115121