Research status on thermal simulation experiment and several issues of concern

Journal of Natural Gas Geoscience - Tập 3 - Trang 283-293 - 2018
Weilong Peng1,2,3, Guoyi Hu3, Quanyou Liu1,2, Nan Jia4, Chenchen Fang3, Deyu Gong3, Cong Yu3, Yue Lyu3, Pengwei Wang1, Ziqi Feng5
1Petroleum Exploration and Production Research Institute, SINOPEC, Beijing, 100083, China
2State Key Laboratory of Shale Oil and Gas Enrichment Mechanisms and Effective Development, SINOPEC, Beijing 100083, China
3Research Institute of Petroleum Exploration and Development, PetroChina, Beijing, 100083, China
4China National Offshore Oil Corporation Limited, Beijing 100010, China
5School of Geosciences, China University of Petroleum, Qingdao 266550, China

Tài liệu tham khảo

Tissot, 1984, 74 Hunt, 1979, 67 Xiao, 2008, An analysis of characteristics of hydrocarbon generation from pyrolysis of source rock, Nat. Gas Geosci., 19, 545 Lopatian, 1971, Temperature and geologic time as factors in coalification, Izv. Akad. Nauk SSSR Ser. Geol., 3, 95 Mi, 2009, Comparison of different hydrocarbon generation simulation approaches and key technique, Exp. Pet. Geol., 31, 409 Tang, 2013, A review on pyrolysis experimentation on hydrocarbon generation, J. SW. Petrol. Univ. (Science & Technology Edition), 35, 52 Jiang, 1996, Advance of pyrolysis experimentation on hydrocarbon genesis, Adv. Earth Sci., 11, 453 Lu, 2006, Comparison of simulation result from the closed and open experimental systems and its significance, Acta Sedmentologica Sinica, 24, 282 Wang, 2011, Characteristics and kinetic of coal pyrolysates with different thermal simulation apparatuses, Acta Pet. Sin., 32, 806 Guo, 2017, Thermal simulation experiment study of the hydrocarbon generation of low maturity shale, Earth Sci. Front., 24, 365 Mao, 2012, Study on the hydrocarbon generation characteristics of different coaly source rocks by gold-tube pyrolysis experiments, Nat. Gas Geosci., 23, 1127 Chen, 1997, Criteria for evaluating the hydrocarbon generating potential of organic matter in coal measures, Petrol. Explor. Dev., 24, 1 Gao, 2006, Quantitative modeling of hydrocarbon generation in resource assessment, Nat. Gas. Ind., 26, 6 Tong, 2017, Reevaluation of hydrocarbon resource potential in Nanwu sag of the South Yellow Sea Basin: based on the numerical modeling method of hydrocarbon generation kinetics, China Offshore Oil Gas, 29, 23 Zou, 2004, Experiments on petroleum generation—considerations and outlook, Exp. Pet. Geol., 26, 375 Jia, 2004, Kinetic study of hydrocarbon generation of oil asphaltene from Lunnan area, Tabei uplift, Chin. Sci. Bull., 49, 76 He, 2014, Hydrocarbon generation kinetics of type I organic matters in the Cretaceous lacustrine sequences, Songliao Basin, Oil Gas Geol., 35, 42 Xiong, 2002, Kinetic simulating experiment on the secondary hydrocarbon generation of kerogen, Sci. China (Series D), 45, 13, 10.1007/BF02879692 Henderson, 1968, Thermal alteration as contributory process to genesis of petroleum, Nature, 209, 1012, 10.1038/2191012a0 Brooks, 1969, The diagenesis of plant liquids during the formation of coal, petroleum and natural gas - II. Coalification and the formation of oil and gas in Gippsland Basin, Geochem. Cosmochim. Acta, 33, 1183, 10.1016/0016-7037(69)90040-4 Mi, 2015, Upper thermal maturity limit for gas generation from humic coal, Int. J. Coal Geol., 152, 123, 10.1016/j.coal.2015.08.009 Mi, 2014, Experimental investigations about the effect of pressure on gas generation from coal, Org. Geochem., 74, 116, 10.1016/j.orggeochem.2014.05.012 Liu, 2007, Characterization of pyrolysates from maceral components of Tarim coals in closed system experiments and implications to natural gas generation, Org. Geochem., 38, 921, 10.1016/j.orggeochem.2007.02.002 Behar, 1995, Experimental simulation of gas generation from coals and a marine kerogen, Chem. Geol., 126, 247, 10.1016/0009-2541(95)00121-2 Bertrand, 1986, Composition of potential oil from humic coals in relation to their petrographic nature, Org. Geochem., 10, 601, 10.1016/0146-6380(86)90056-2 Boreham, 1991, Variation in pyrolysate composition of sediments from the Jurassic Walloon coal measures, eastern Australia as a function of thermal maturation, Org. Geochem., 17, 723, 10.1016/0146-6380(91)90016-D 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 Wang, 1992, Biomarkers from pindiquan (P2) shale by thermal modelling experiments, Xinjing Pet. Geol., 13, 240 Lu, 2008, Effect of uranium substance on hydrocarbon generation from mudstone by hydrous pyrolysis, Acta Sedmentologica Sinica, 26, 324 Liang, 2002, Comparison of geochemistry character between mudstones from deep lacustrine facies and coal measures by hydrous pyrolysis, Acta Sedmentologica Sinica, 20, 165 Reynolds, 1991, Analysis of oil shale and petroleum source rock pyrolysis by triple quadrupole mass spectrometry: comparisons of gas evolution at the heating rate of 10 ºC/min, Energy Fuel., 5, 507, 10.1021/ef00027a025 Kong, 2006, Thermal simulation of Ordovician source rock of foreland basin in western Ordos, Nat. Gas Geosci., 17, 187 Behar, 1991, Experimental simulation in a confined system and kinetic modelling of kerogen and oil cracking, Org. Geochem., 19, 173 Berner, 1996, Expirical carbon isotope/maturity relationships for gases from algal kerogens and terrigenous organic matter, based on dry, open-system pyrolysis, Org. Geochem., 24, 947, 10.1016/S0146-6380(96)00090-3 Behar, 2000, Nitrogen distribution in the pyrolysis products of a type II kerogen (Cenomanian, Italy), timing of molecular nitrogen production versus other gases, Energy Fuel., 14, 431, 10.1021/ef990157g Gao, 2009, Pyrolysis on crude oil and characteristics of Sha 4 member cracking gas, Dongying Depression, Nat. Gas Geosci., 20, 32 Chen, 2016, Rearranged hopanes compositions in pyrolysis experiment of crude oil and geochemical significance, Geoscience, 30, 871 Zhang, 2005, The influence of coal formation maceral to natural gases carbon isotopic composition and its application, Nat. Gas Geosci., 16, 792 Cai, 2017, Effects of inorganic minerals in source rocks on hydrocarbon generation from organic matter, Exp. Pet. Geol., 39, 253 Cai, 2017, Formation conditions and main controlling factors of uranium in marine source rocks, Adv. Earth Sci., 32, 199 Cai, 2005, The effect of magnetite on the products and isotopic fractions of gaseous hydrocarbons, Nat. Gas Geosci., 16, 792 He, 2018, Pyrolysis involving n-hexadecane, water and minerals: insight into the mechanisms and isotope fractionation for water-hydrocarbon reaction, J. Anal. Appl. Pyrol., 130, 198, 10.1016/j.jaap.2018.01.009 Sun, 2015, The effect of water medium on the products of different pyrolysis system, Nat. Gas Geosci., 26, 524 Lewan, 2011, Role of water in hydrocarbon generation from type I kerogen in Mahogany oil shale of the Green River Formation, Org. Geochem., 42, 31, 10.1016/j.orggeochem.2010.10.004 Zheng, 2011, Formation water of near-critical properties and its effects on the processes of hydrocarbon generation and expulsion, Earth Sci. J. China Univ. Geosci., 36, 83 Savage, 1999, Organic chemical reactions in supercritical water, Chem. Rev., 99, 603, 10.1021/cr9700989 Lewan, 1997, Experiments on the role of water in petroleum formation, Geochem. Cosmochim. Acta, 61, 3691, 10.1016/S0016-7037(97)00176-2 Yang, 1983, Simulation experiment of thermo-coalificative natural gas genesis and its significance, Petrol. Explor. Dev., 10, 29 Wang, 1982, Simulation experiment of crude oil pyrolysis gas, Nat. Gas. Ind., 2, 28 Zhang, 1987, A discussion on several major problems of petroleum geochemistry from the results of simulating experiment, Geochimica, 2 Mi, 2018, The upper thermal maturity limit of primary gas generated from marine organic matters, Mar. Petrol. Geol., 89, 120, 10.1016/j.marpetgeo.2017.06.045 He, 2014, The speciation of aqueous sulfate and its implication on the initiation mechanisms of TSR at different temperatures, Appl. Geochem., 43, 121, 10.1016/j.apgeochem.2014.02.001 Zhang, 2013, Synthesis of hydrocarbon gases from four different carbon sources and hydrogen gas using a gold-tube system by Fischer–Tropsch method, Chem. Geol., 349−350, 27, 10.1016/j.chemgeo.2013.03.016 Takahashi, 2017, Semi-open and closed system pyrolysis of Paleogene coal for evaluating the timing of hydrocarbon gas expulsion, Int. J. Coal Geol., 178, 100, 10.1016/j.coal.2017.05.004 Fusetti, 2010, New insights into secondary gas generation from the thermal cracking of oil: methylated monoaromatics. A kinetic approach using 1, 2, 4-trimethylbenzene. Part I: a mechanistic kinetic model, Org. Geochem., 41, 146, 10.1016/j.orggeochem.2009.10.013 Fusetti, 2010, New insights into secondary gas generation from the thermal cracking of oil: methylated monoaromatics. A kinetic approach using 1, 2, 4-trimethylbenzene. Part III: an isotopic fractionation model, Org. Geochem., 41, 431, 10.1016/j.orggeochem.2010.02.008 Cramer, 2001, Reaction kinetics of stable carbon isotope in natural gas-insights from dry, open system pyrolysis experiments, Energy Fuel., 15, 517, 10.1021/ef000086h Mi, 2007, Study on the gas generating ability of coal in different systems, Nat. Gas Geosci., 18, 245 Halla, 1999, Sci. Total Environ., 1, 269, 10.1016/S0048-9697(99)00204-1 Chen, 2015, An experimental method to evaluate the hydrocarbon generation and expulsion efficiency in the Songliao Baisn, Nat. Gas Geosci., 26, 915 Hill, 2007, Modeling of gas generation from the Barnett shale, fort worth Basin, Texas, AAPG Bull., 91, 501, 10.1306/12060606063 Lewan, 1979, Generation of oil-like pyrolyzates from organic-rich shales, Science, 203, 897, 10.1126/science.203.4383.897 Tian, 2002, The properties and chemical application of supercritical water, Chemistry, 65, 396 Wang, 2006, Thermal simulation experimental study on the effect of water on the formation of gaseous hydrocarbon in organic matter during the thermal evolution, Prog. Nat. Sci., 16, 1275 Qin, 2002, Hydrocarbon yield and geochemical parameters affected by heating time and added water amount in the simulation test, Exp. Pet. Geol., 24, 152 Dai, 2004, Origins of partially reversed alkane δ13C values for biogenic gases in China, Org. Geochem., 35, 405, 10.1016/j.orggeochem.2004.01.006 Dai, 2016, Secondary origin of negative carbon isotopic series in natural gas, J. Nat. Gas Geosci., 1, 1 Tilley, 2013, Isotope reversals and universal stages and trends of gas maturation in sealed, self-contained petroleum systems, Chem. Geol., 339, 194, 10.1016/j.chemgeo.2012.08.002 Xia, 2013, Isotopic reversals with respect to maturity trends due to mixing of primary and secondary products in source rocks, Chem. Geol., 339, 205, 10.1016/j.chemgeo.2012.07.025 Burruss, 2009, Carbon and hydrogen isotopic reversals in deep basin gas: evidence of limits to the stability of hydrocarbons, Org. Geochem., 41, 1285, 10.1016/j.orggeochem.2010.09.008 Dai, 2017, Geochemical characteristics of gases from the largest tight sand gas field (Sulige) and shale gas field (Fuling) in China, Mar. Petrol. Geol., 79, 426, 10.1016/j.marpetgeo.2016.10.021 Ni, 2011, Carbon isotopic fractionations during the Fischer-Tropsch synthesis, Petrol. Explor. Dev., 38, 249, 10.1016/S1876-3804(11)60031-1 Chen, 1993, Isotopic characteristics and application of thermal simulation results of hydrocarbon generation in sedimentary rocks, Sci. China (Series B), 23, 209 Lu, 2007, Chemical kinetics study of hydrocarbon regeneration from organic matter in carbonate source rocks and its significance, Sci. China D Earth Sci., 50, 536, 10.1007/s11430-007-2058-5 Wang, 2005, Kinetic method for determining the main gas generation period of marine organic matters and its application, Petrol. Explor. Dev., 32, 153 Liu, 2006, Application of hydrocarbon generation kinetics and isotopic distillation kinetics to the study of hydrocarbon source rocks, Geol. Bull. China, 25, 1201 Rao, 2010, Hydrocarbon generation kinetic parameters of organic matter: review and outlook, Prog. Geophys., 25, 1424 Hao, 2002, Reserch advances and frontier areas of mechanisms of petroleum accumulation, Geol. Sci. Technol. Inf., 21, 7 Hao, 2002, Evolution of overpressured systems in sedimentary basins and conditions for deep oil/gas accumulation, Earth Sci. J. China Univ. Geosci., 27, 610 Zou, 2015, Formation, distribution, potential and prediction of global conventional and unconventional hydrocarbon resources, Petrol. Explor. Dev., 42, 14, 10.1016/S1876-3804(15)60002-7 Zou, 2014, Conventional and unconventional petroleum “orderly accumulation”: concept and practical significance, Petrol. Explor. Dev., 41, 14, 10.1016/S1876-3804(14)60002-1 Peng, 2017, Natural gas geochemical characteristics and genetic analysis: a case study of the Dongsheng gas field in the Ordos basin of China, J. China Inst. Min. Technol., 46, 74 Peng, 2018, Origin of Paleogene natural gases and discussion of abnormal carbon isotopic composition of heavy alkanes in the Liaohe Basin, NE China, Mar. Petrol. Geol., 92, 670, 10.1016/j.marpetgeo.2017.11.028 Liu, 1999, 1 He, 2010, 1 Qin, 2004, Discussion on the evaluation standards of carbonate source rocks, Exp. Pet. Geol., 26, 281 Qin, 2009, Study of forming condition on marine excellent source rocks and its evaluation, Exp. Pet. Geol., 31, 366 Qin, 2010, Tenger, Ultramicroscopic organic petrology and potential of hydrocarbon Generation and expulsion of quality marine source rocks in South China, Oil Gas Geol., 31, 826 Li, 1999, Discussion on quantitative evaluation criterion for high-matured carbonate gas source rocks, Oil Gas Geol., 20, 354 Zhong, 1995, 130 Zhao, 2005, Gas formation mechanism of marine carbonate source rocks in China, Sci. China Earth Sci., 48, 441, 10.1360/04yd0111 Zhao, 2011, Large-scale hydrocarbon accumulation factors and characteristics of marine carbonate reservoirs in three large onshore cratonic basins in China, Acta Pet. Sin., 32, 806 Hao, 2006, Kinetics of organic matter maturation and hydrocarbon generation in overpressure environment, Acta Pet. Sin., 27, 9 Hao, 2004, Differential retardation of organic matter maturation by overpressure, Sci. China D Earth Sci., 47, 783, 10.1360/03yd0331