Differences in desorption rate and composition of desorbed gases between undeformed and mylonitic coals in the Zhina Coalfield, Southwest China

Fuel - Tập 239 - Trang 905-916 - 2019
Yilin Chen1,2, Yong Qin1,2, Zhongping Li3, Qingmin Shi4, Chongtao Wei1,2, Caifang Wu1,2, Chunhui Cao3, Zhenghui Qu1,2
1Key Laboratory of Coalbed Methane Resources and Reservoir Formation Process of the Ministry of Education, China University of Mining and Technology, Xuzhou 221008, China
2School of Resources and Geosciences, China University of Mining and Technology, Xuzhou 221116, China
3Key Laboratory of Petroleum Resources Research, Institute of Geology and Geophysics, Chinese Academy of Sciences, Lanzhou 730000, China
4Geological Research Institute for Coal Green Mining, Xi'an University of Science and Technology, Xi'an, 710054, China

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Tài liệu tham khảo

Park, 2016, Biogenic methane production from coal: a review on recent research and development on microbially enhanced coalbed methane (MECBM), Fuel, 166, 258, 10.1016/j.fuel.2015.10.121

Tao, 2018, A model for characterizing the continuous distribution of gas storing space in low-rank coals, Fuel, 233, 552, 10.1016/j.fuel.2018.06.085

Tao, 2018, Material composition, pore structure and adsorption capacity of low-rank coals around the first coalification jump: a case of eastern Junggar Basin, China, Fuel, 211, 804, 10.1016/j.fuel.2017.09.087

Yang, 2018, Optimization methods of production layer combination for coalbed methane development in multi-coal seams, Petrol Explor Dev, 45, 312, 10.1016/S1876-3804(18)30034-X

Li, 2015, Evaluation of coalbed methane potential of different reservoirs in western Guizhou and eastern Yunnan, China, Fuel, 139, 257, 10.1016/j.fuel.2014.08.054

Li, 2017, Coal pore size distributions controlled by the coalification process: an experimental study of coals from the Junggar, Ordos and Qinshui basins in China, Fuel, 206, 352, 10.1016/j.fuel.2017.06.028

Moore, 2012, Coalbed methane: a review, Int J Coal Geol, 101, 36, 10.1016/j.coal.2012.05.011

Zhao, 2016, A comparative evaluation of coal specific surface area by CO2 and N2 adsorption and its influence on CH4 adsorption capacity at different pore sizes, Fuel, 183, 420, 10.1016/j.fuel.2016.06.076

Şenel, 2001, Characterization of pore structure of Turkish coals, Energ Fuel, 15, 331, 10.1021/ef000081k

Laxminarayana, 1999, Role of coal type and rank on methane sorption characteristics of Bowen Basin, Australia coals, Int J Coal Geol, 40, 309, 10.1016/S0166-5162(99)00005-1

Gentzis, 2000, Subsurface sequestration of carbon dioxide—an overview from an Alberta (Canada) perspective, Int J Coal Geol, 43, 287, 10.1016/S0166-5162(99)00064-6

Diamond, 1998, Measuring the gas content of coal: a review, Int J Coal Geol, 35, 311, 10.1016/S0166-5162(97)00040-2

Strąpoć, 2006, Carbon isotopic fractionation of CH4 and CO2 during canister desorption of coal, Org Geochem, 37, 152, 10.1016/j.orggeochem.2005.10.002

Jin, 2010, Coalbed gas desorption in canisters: consumption of trapped atmospheric oxygen and implications for measured gas quality, Int J Coal Geol, 81, 64, 10.1016/j.coal.2009.10.010

Weniger, 2012, Geochemical and stable carbon isotopic composition of coal-related gases from the SW Upper Silesian Coal Basin, Czech Republic, Org Geochem, 53, 153, 10.1016/j.orggeochem.2012.09.012

Niemann, 2017, Stable isotope systematics of coalbed gas during desorption and production, Geosci, 7, 1, 10.3390/geosciences7020043

Ryan, 1993, Coalbed methane canister desorption techniques, British Columbia geological survey geological fieldwork, 1994, 245

Duan, 2008, The impact of coal reservoir physical properties on carbon isotope fractionation of coalbed methane, Acta Geol Sin, 82, 1330

Gould, 1987, Variation in the composition of seam gases issuing from the coal, Australas Inst Min Metall Bull, 292, 69

Hu, 2007, Characteristics and implications of the carbon isotope fractionation of desorbed coalbed methane in Qinshui coalbed methane field, China, Earth Sci Front, 14, 267, 10.1016/S1872-5791(08)60015-9

Cui, 2006, Controls of coal fabric on coalbed gas production and compositional shift in both field production and canister desorption tests, SPE J, 11, 111, 10.2118/89035-PA

Spears, 2014, Desorbed canister gas sampling and gas isotopic analysis procedures and practices: a case study of two coalbed methane wells from the lower Saxony Basin, Germany, Petrophysics, 55, 38

Beamish, 1998, Instantaneous outbursts in underground coal mines: An overview and association with coal type, Int J Coal Geol, 35, 27, 10.1016/S0166-5162(97)00036-0

Cao, 2003, The influence of tectonic deformation on some geochemical properties of coals-a possible indicator of outburst potential, Int J Coal Geol, 53, 69, 10.1016/S0166-5162(02)00077-0

Qu, 2010, Experimental study on the porous structure and compressibility of tectonized coals, Energy Fuel, 24, 2964, 10.1021/ef9015075

Hou, 2012, Structure and coalbed methane occurrence in tectonically deformed coals, Sci China Earth Sci, 55, 1755, 10.1007/s11430-012-4493-1

Li, 2001, Pore structure of sheared coals and related coalbed methane, Environ Geol, 40, 1455, 10.1007/s002540100339

Li, 2003, Mechanism of methane flow through sheared coals and its role on methane recovery, Fuel, 82, 1271, 10.1016/S0016-2361(03)00020-6

Wang, 1980, Some characteristics of coal seams with outburst hazard, J China Coal Soc, 1, 47

Fu, 2008, Gas emission feature of tectonically deformed coal, J China Coal Soc, 33, 775

Wang, 2017, Experiment on pore characteristics and gas desorption law of structural coal and primary structure coal, Coal Sci Technol, 45, 84

Xu, 2016, Selection of suitable engineering modes for CBM development in zones with multiple coalbeds: a case study in western Guizhou Province, Southwest China, J Nat Gas Sci Eng, 36, 1264, 10.1016/j.jngse.2016.06.025

Chen, 2018, Porosity changes in progressively pulverized anthracite subsamples: implications for the study of closed pore distribution in coals, Fuel, 225, 612, 10.1016/j.fuel.2018.03.164

Guo, 2017, Geochemical characteristics of water produced from CBM wells and implications for commingling CBM production: a case study of the Bide-Santang Basin, western Guizhou China, J Petrol Sci Eng, 159, 666, 10.1016/j.petrol.2017.09.068

Clarkson, 1996, Variation in micropore capacity and size distribution with composition in bituminous coal of the Western Canadian Sedimentary Basin: implications for coalbed methane potential, Fuel, 75, 1483, 10.1016/0016-2361(96)00142-1

Niu, 2017, The evolution and formation mechanisms of closed pores in coal, Fuel, 200, 555, 10.1016/j.fuel.2017.03.084

Clarkson, 1999, The effect of pore structure and gas pressure upon the transport properties of coal: a laboratory and modeling study. 1. Isotherms and pore volume distributions, Fuel, 78, 1333, 10.1016/S0016-2361(99)00055-1

Ryu, 1999, Characterization of pore size distributions on carbonaceous adsorbents by DFT, Carbon, 37, 1257, 10.1016/S0008-6223(98)00322-4

Mastalerz, 2012, Porosity of coal and shale: Insights from gas adsorption and SANS/USANS techniques, Energ Fuel, 26, 5109, 10.1021/ef300735t

Sing, 1985, Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity (Recommendations 1984), Pure Appl Chem, 57, 603, 10.1351/pac198557040603

Groen, 2003, Pore size determination in modified micro- and mesoporous materials. Pitfalls and limitations in gas adsorption data analysis, Micropor Mesopor Mat, 60, 1, 10.1016/S1387-1811(03)00339-1

Yao, 2008, Fractal characterization of adsorption-pores of coals from North China: an investigation on CH4 adsorption capacity of coals, Int J Coal Geol, 73, 27, 10.1016/j.coal.2007.07.003

Liu, 2009, Coal reservoir characteristics and coalbed methane resource assessment in Huainan and Huaibei coalfields, Southern North China, Int J Coal Geol, 79, 97, 10.1016/j.coal.2009.05.001

Cai, 2013, Pore structure and its impact on CH4 adsorption capacity and flow capability of bituminous and subbituminous coals from Northeast China, Fuel, 103, 258, 10.1016/j.fuel.2012.06.055

Nie, 2015, Pore structure characterization of different rank coals using gas adsorption and scanning electron microscopy, Fuel, 158, 908, 10.1016/j.fuel.2015.06.050

Shan, 2015, Characterization of the micropore systems in high-rank coal reservoirs of the southern Sichuan Basin, China, AAPG Bull, 99, 2099, 10.1306/07061514240

Li, 2015, Multifractal analysis of Hg pore size distributions of tectonically deformed coals, Int J Coal Geol, 144, 138, 10.1016/j.coal.2015.04.011

Xue, 2012, Deformed coal types and pore characteristics in Hancheng coalmines in Eastern Weibei coalfields, Int J Min Sci Technol, 22, 681, 10.1016/j.ijmst.2012.08.015

Gregg, 1982, 303

Qu, 2015, Micropore properties and its origin of tectonically deformed coals, J China Coal Soc, 40, 1093

Cui, 2004, Selective transport of CO2, CH4, and N2 in coals: insights from modeling of experimental gas adsorption data, Fuel, 83, 293, 10.1016/j.fuel.2003.09.001

Scott, 2002, Hydrogeologic factors affecting gas content distribution in coal beds, Int J Coal Geol, 50, 363, 10.1016/S0166-5162(02)00135-0

Faiz, 2007, Evaluating geological sequestration of CO2 in bituminous coals: the southern Sydney Basin, Australia as a natural analogue, Int J Grednh Gas Con, 1, 223, 10.1016/S1750-5836(07)00026-6

Fitzgerald, 2005, Adsorption of methane, nitrogen, carbon dioxide and their mixtures on wet Tiffany coal, Fuel, 84, 2351, 10.1016/j.fuel.2005.05.002

Shimada, 2005, Displacement behavior of CH4 adsorbed on coals by injecting pure CO2, N2, and CO2-N2 mixture, Environ Geol, 49, 44, 10.1007/s00254-005-0057-4

Saghaf, 2007, CO2 storage and gas diffusivity properties of coals from Sydney Basin, Australia, Int J Coal Geol, 70, 240, 10.1016/j.coal.2006.03.006

Battistutta, 2010, Swelling and sorption experiments on methane, nitrogen and carbon dioxide on dry Selar Cornish coal, Int J Coal Geol, 84, 39, 10.1016/j.coal.2010.08.002

Connell, 2011, History matching of enhanced coal bed methane laboratory core flood tests, Int J Coal Geol, 87, 128, 10.1016/j.coal.2011.06.002

Merkel, 2015, Competitive sorption of CH4, CO2 and H2O on natural coals of different rank, Int J Coal Geol, 150–151, 181, 10.1016/j.coal.2015.09.006

Wang, 2016, Experimental study on the adsorption of binary gas CH4-C2H6 in heavy hydrocarbon coal, J China Coal Soc, 41, 2800

Zhao, 2016, Molecular simulation of CO2/CH4 self-and transport diffusion coefficients in coal, Fuel, 165, 19, 10.1016/j.fuel.2015.10.035

Ruppel, 1974, Adsorption of methane on dry coal at elevated pressure, Fuel, 53, 152, 10.1016/0016-2361(74)90002-7

Smith, 1984, Diffusion models for gas production from coals: Application to methane content determination, Fuel, 63, 251, 10.1016/0016-2361(84)90046-2

Crosdale, 1998, Coalbed methane sorption related to coal composition, Int J Coal Geol, 35, 147, 10.1016/S0166-5162(97)00015-3

Xu, 2003, Permeability of polyimides derived from non-coplanar diamines and 4,4′-(hexafluoroisopropylidene) diphthalic anhydride, Polymer, 44, 4715, 10.1016/S0032-3861(03)00430-0

Busch, 2004, Methane and carbon dioxide adsorption–diffusion experiments on coal: upscaling and modeling, Int J Coal Geol, 60, 151, 10.1016/j.coal.2004.05.002

Bhowmik, 2013, Adsorption rate characteristics of methane and CO2 in coal samples from Raniganj and Jharia coalfields of India, Int J Coal Geol, 113, 50, 10.1016/j.coal.2013.02.005

Pillai, 2008, Adsorption of carbon dioxide, methane, nitrogen, oxygen and argon in NaETS-4, Microporous Mesoporous Mater, 113, 268, 10.1016/j.micromeso.2007.11.042

Liu, 2015, High throughput development of one carbon molecular sieve for many gas separations, Micropor Mesopor Mat, 206, 207, 10.1016/j.micromeso.2014.11.030

Nandi, 1975, Activated diffusion of methane from coals at elevated pressures, Fuel, 54, 81, 10.1016/0016-2361(75)90061-7

Cai, 2014, Pore structure of selected Chinese coals with heating and pressurization treatments, Sci China Earth Sci, 57, 1567, 10.1007/s11430-014-4855-y