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Mechanical and flow behaviours and their interactions in coalbed geosequestration of CO2

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Pages 229-243 | Received 14 Mar 2012, Accepted 10 May 2013, Published online: 16 Jul 2013

References

  • Alexeev, A.D., Vasilenko, T.A. and Ulyanova, E.V., 1999. Closed porosity in fossil coals. Fuel, 78, 635–638.
  • Ates, Y. and Barron, K., 1988. The effect of gas sorption on the strength of coal. Mining Science and Technology, 6, 291–300.
  • Aziz, N.I. and Ming-Li, W., 1999. The effect of sorbed gas on the strength of coal – an experimental study. Geotechnical and Geological Engineering, 17, 387–402.
  • Bae, J.-S. and Bhatia, S.K., 2006. High-pressure adsorption of methane and carbon dioxide on coal. Energy and Fuels, 20, 2599–2607.
  • Balek, V. and Koranyi, A.D., 1990. Diagnostics of structural alterations in coal: Porosity changes with pyrolysis temperature. Fuel, 69, 1502–1506.
  • Botnen, L.S., Fisher, D.W., Dobroskok, A.A., Bratton, T.R., Greaves, K.H., McLendone, T.R., Steinerf, G., Sorensena, J.A., Steadmana, E.N. and Harjua, J.A., 2009. Field test of CO2 injection and storage in lignite coal seam in North Dakota. Energy Procedia, 2013–2019.
  • Busch, A., Krooss, B.M., Gensterblum, Y., VanBergen, F. and Pagnier, H. J. M., 2003a. High-pressure adsorption of methane, carbon dioxide and their mixtures on coals with a special focus on the preferential sorption behaviour. Journal of Geochemical Exploration, 78–79, 671–674.
  • Busch, A., Gensterblum, Y. and Krooss, B.M., 2003b. Methane and CO2 sorption and desorption measurements on dry Argonne premium coals: pure components and mixtures. International Journal of Coal Geology, 55, 205–224.
  • Busch, A., Gensterblum, Y., Krooss, B.M. and Littke, R., 2004. Methane and carbon dioxide adsorption–diffusion experiments on coal: upscaling and modeling. International Journal of Coal Geology, 60, 151–168.
  • Busch, A., Gensterblum, Y., Krooss, B.M. and Siemons, N., 2006. Investigation of high-pressure selective adsorption/desorption behaviour of CO2 and CH4 on coals: An experimental study. International Journal of Coal Geology, 66, 53–68.
  • Ceglarska-Stefanska, G. and Brzoska, K., 1998. The effect of coal methamorphism on methane desorption. Fuel, 77, 645–648.
  • Ceglarska-Stefanska, G. and Zarebska, K., 2005. Sorption of carbon dioxide-methane mixtures. International Journal of Coal Geology, 62, 211–222.
  • Charrière, D., Pokryszka, Z. and Behra, P., 2010. Effect of pressure and temperature on diffusion of CO2 and CH4 into coal from the Lorraine basin (France). International Journal of Coal Geology, 81 (4), 373–380.
  • Clarkson, C.R. and Bustin, R.M., 1997. Variation in permeability with lithotype and maceral composition of Cretaceous coals of the Canadian Cordillera. International Journal of Coal Geology, 33, 135–151.
  • Clarkson, C.R. and Bustin, R.M., 1999. The effect of pore structure and gas pressure upon the transport properties of coal: a laboratory and modeling study. 2. Adsorption rate modeling. Fuel, 78, 1345–1362.
  • Clarkson, C.R., Bustin, R.M. and Levy, J.H., 1997. Application of the mono/multilayer and adsorption potential theories to coal methane adsorption isotherms at elevated temperture and pressure. Carbon, 35, 1689.
  • Cui, X., Bustin, R.M. and Dipple, G., 2004. Selective transport of CO2, CH4, and N2 in coals: insights from modeling of experimental gas adsorption data. Fuel, 83, 293–303.
  • Czaplinski, A. and Holda, S., 1982. Changes in mechanical properties of coal due to sorption of carbon dioxide vapour. Fuel, 61, 1281–1282.
  • Day, S., Duffy, G., Sakurovs, R. and Weir, S., 2008a. Effect of coal properties on CO2 sorption capacity under supercritical conditions. International Journal of Greenhouse gas Control, 2, 342–352.
  • Day, S., Fry, R. and Sakurovs, R., 2008b. Swelling of Australian coals in supercritical CO2. International Journal of Coal Geology, 74, 41–52.
  • Day, S., Sakurovs R. and Weir, S., 2008c. Supercritical gas sorption on moist coals. International Journal of Coal Geology, 74, 203–214.
  • Dollimore, D., Spooner, P. and Turner, A., 1976. The BET method of analysis of gas adsorption data and its relevance to the calculation of surface areas. Surface Technology, 4, 121–160.
  • Durucan, S., Ahsan, M. and Shi, J., 2009. Matrix shrinkage and swelling characteristics of European coals. Energy Procedia, 1, 3055–3062.
  • Esterle, J.S., 2008. Mining and beneficiation. In: I. Suaŕez-Ruiz and J.C. Crelling, eds. Applied coal petrology. Burlington, MA: Elsevier, pp. 61–83.
  • Fitzgerald, J.E., Pan, Z., Sudibandriyo, M., Robinson, J.R.L., Gasem, K.A.M. and Reeves, S., 2005. Adsorption of methane, nitrogen, carbon dioxide and their mixtures on wet Tiffany coal. Fuel, 84, 2351–2363.
  • Flores, R.M., 2004. Coalbed methane in the Powder River Basin, Wyoming and Montana: An assessment of the Tertiary-Upper Cretaceous coalbed methane total petroleum system. U.S. Geological Survey Digital Data Series DDS–69–C. Denver, CO: U.S. Geological Survey.
  • Gamson, P.D., Beamish, B.B. and Johnson, D.P., 1993. Coal microstructure and micropermeability and their effects on natural gas recovery. Fuel, 72, 87–99.
  • Gan, H., Nandi, S.P. and Walker, P.L., 1972. Nature of the porosity in American coals. Fuel, 51, 272–277.
  • Gash, B. W., Volz, R.F., Potter, G. and Corgan, J.M., 1992. The effects of cleat orientation and confining pressure on cleat porosity, permeability and relative permeability in coal. In Proceedings of the SPWLA/SCA Symposium, Oklahoma City, OK, June 15–16, 1992. Oklahoma City: Society of Core Analysts.
  • Gentzis, T., 2000. Subsurface sequestration of carbon dioxide - an overview from an Alberta (Canada) perspective. International Journal of Coal Geology, 43, 287–305.
  • Gentzis, T., Deisman, N. and Chalaturnyk, R.J., 2007. Geomechanical properties and permeability of coals from the Foothills and Mountain regions of western Canada. International Journal of Coal Geology, 69, 153–164.
  • Goodman, A.L., Busch, A., Bustin, R.M., Chikatamarla, L., Day, S., Duffy, G.J., Fitzgerald, J.E., Gasem, K.A.M., Gensterblum, Y., Hartman, C., Jing, C., Krooss, B.M., Mohammed, S., Pratt, T., Robinson, Jr, R.L., Romanov, V., Sakurovs, R., Schroeder, K. and White, C.M., 2007. Inter-laboratory comparison II: CO2 isotherms measured on moisture-equilibrated Argonne Premium coals at 55 °C and up to 15 MPa. International Journal of Coal Geology, 72, 153–164.
  • Green, T. K., Pan, W.-P. and Clark, M., 1991. Glass transition temperature of modified coals. Preprints, Division of Fuel Chemistry, American Chemical Society, 36 (1), 814–819.
  • Gruszkiewicz, M.S., Naney, M.T., Blencoe, J.G., Cole, D.R., Pashin, J.C. and Carroll, R.E., 2009. Adsorption kinetics of CO2, CH4, and their equimolar mixture on coal from the Black Warrior basin, West-Central Alabama. International Journal of Coal Geology, 77, 23–33.
  • Gürdal, G. and Yalçin, M.N., 2001. Pore volume and surface area of the Carboniferous coals from the Zonguldak basin (NW Turkey) and their variations with rank and maceral composition. International Journal of Coal Geology, 48, 133–144.
  • Haenel, M.W., 1992. Recent progress in coal structure research. Fuel, 71, 1211–1223.
  • Hall, P.J., Brown, S.D.and Calo, J.M., 2000. The pore structure of the Argonne coals as interpreted from contrast matching small angle neutron scattering. Fuel, 79, 1327–1332.
  • Harpalani, S., Prusty, B.K. and Dutta, P., 2006. Methane/CO2 sorption modeling for coalbed methane production and CO2 sequestration. Energy and Fuels, 20, 1591–1599.
  • Harpalani, S. and Zhao, X., 1991. Microstructure of coal and its influence on flow of gas. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 13, 229–242.
  • Harris, L.A. and Yust, C.S., 1976. Transmission electron microscope observations of porosity in coal. Fuel, 55, 233–236.
  • He, J., Shi, Y., Ahn, S., Kang, J.W. and Lee, C.-H., 2010. Adsorption and desorption of CO2 on Korean coal under subcritical to supercritical conditions. The Journal of Physical Chemistry B, 114, 4854–4861.
  • Henderson, N., Flores, E., Sampaio, M., Freitas, L. and Platt, G.M., 2005. Supercritical fluid flow in porous media: modeling and simulation. Chemical Engineering Science, 60, 1797–1808.
  • Ishihara, A., Qian, E.W., Sutrisna, I.P. and Kabe, Y., 2004. Coal and coal-related compounds: structures, reactivity and catalytic reactions. Oxford: Elsevier Science and Technology Books.
  • Jodłowski, G.S., Baran, P., Wojcik, M., Nodzenski, A., Porada, St. and Milewska-Duda, J., 2007. Sorption of methane and carbon dioxide mixtures in Polish hard coals considered in terms of adsorption-absorption model. Applied Surface Science, 253, 5732–5735.
  • Krooss, B.M., Van Bergen, F., Gensterblum, Y., Siemons, N., Pagnier, H.J.M. and David, P., 2002. High-pressure methane and carbon dioxide adsorption on dry and moisture-equilibrated Pennsylvanian coals. International Journal of Coal Geology, 51, 69–92.
  • Larsen, J.W., 2004. The effects of dissolved CO2 on coal structure and properties. International Journal of Coal Geology, 57, 63–70.
  • Larsen, J.W., Hall, P. and Wernett, P.C., 1995. Pore structure of Argonne Premium coals. Energy and Fuels, 9, 324–330.
  • Larsen, J.W. and Wernett, P.C., 1992. The Argonne coals do not have an extended inter-connected pore network. symposium on chemistry, structure and reactivity of coals, tar sands and oil shale. San Francisco, CA: American Chemical Society Symposium, Division of Fuel Chemistry.
  • Laubach, S.E., Marrett, R.A., Olson, J.E. and Scott, A.R., 1998. Characteristics and origins of coal cleat: a review. International Journal of Coal Geology, 35, 175–207.
  • Laxminarayana, C. and Crosdale, P. J., 1999. Role of coal type and rank on methane sorption characteristics of Bowen Basin, Australia coals. International Journal of Coal Geology, 40, 309–325.
  • Li, D., Liu, Q., Weniger, P., Gensterblum, Y., Busch, A. and Krooss, B.M., 2010. High-pressure sorption isotherms and sorption kinetics of CH4 and CO2 on coals. Fuel, 89, 569–580.
  • Liu, H. and Rutqvist, J., 2010. A new coal-permeability model: internal swelling stress and fracture–matrix interaction. Transport in Porous Media, 82, 157–171.
  • Lucht, L.M., Lamon J.M. and Peppas, N.A., 1987. Macromolecular structure of coals. 9. Molecular structure and glass transition temperature. Energy and Fuels, 1, 56–58.
  • Mahieux, C.A., 1999. A systematic stiffness-temperature model for polymers and applications to the prediction of composite behavior. Thesis (PhD). Virginia Polytechnic Institute and State University.
  • Marzec, A., 1985. Macromolecular and molecular structure of coal and the possible role of pyrolysis-field desorption mass spectrometry in its elucidation. Journal of Analytical and Applied Pyrolysis, 8, 241–254.
  • Masoudian, M.S., Airey, D.W. and El-Zein, A., 2012. The effect of CO2 on micro structure and mechanical properties of Australian black coal. 11th Australia and New Zealand Conference on Geomechanics (ANZ 2012), July 15–18, 2012. Melbourne: Australian Geomechanics Society, pp. 728–733.
  • Masoudian, M.S., Airey, D.W. and El-Zein, A., 2013. A chemo-hydro-mechanical model for sequestration of CO2 in coalbeds. Geotechnique, 63(3), 235–243.
  • Masoudian, M.S., Airey, D.W., Gainey, A., Morris, T. and Berger, J., 2011. The mechanical properties of CO2-saturated coal specimens 12th International Congress on Rock Mechanics (ISRM), October 18–21, 2011. Beijing, China. Leiden: CRC Press, 338–341.
  • Mazumder, S., VanHemert, P., Busch, A., Wolf, K.-H.A.A. and Tejera-Cuesta, P., 2006. Flue gas and pure CO2 sorption properties of coal: a comparative study. International Journal of Coal Geology, 67, 267–279.
  • Mazumder, S. and Wolf, K.H., 2008. Differential swelling and permeability change of coal in response to CO2 injection for ECBM. International Journal of Coal Geology, 74, 123–138.
  • Medhurst, T.P. and Brown, E.T., 1998. A study of the mechanical behaviour of coal for pillar design. International Journal of Rock Mechanics and Mining Science, 35, 1087–1105.
  • Melnichenko, Y.B., Radlinski, A.P., Mastalerz, M., Cheng, G. and Rupp, J., 2009. Characterization of the CO2 fluid adsorption in coal as a function of pressure using neutron scattering techniques (SANS and USANS). International Journal of Coal Geology, 77, 69–79.
  • Nishioka, M., 1993. Investigation of coal structure. Pittsburg, CA: U.S. Department of Energy.
  • Olague, N.E. and Smith, D.M., 1989. Diffusion of gases in American coals. Fuel, 68, 1381–1387.
  • Ottiger, S., Pini, R., Storti, G., Mazzotti, M., Bencini, R., Quattrocchi, F., Sardu, G. and Deriu, G., 2006. Adsorption of pure carbon dioxide and methane on dry coal from the sulcis coal province (SW Sardinia, Italy). Environmental Progress, 25, 355–364.
  • Ozdemir, E., 2004. Chemistry of the adsorption of carbon dioxide by Argonne Premium coals and a model to simulate CO2 sequestration in coal seams. Thesis (PhD). University of Pittsburgh.
  • Ozdemir, E., Morsi, B.I. and Schroeder, K., 2004. CO2 adsorption capacity of argonne premium coals. Fuel, 83, 1085–1094.
  • Palmer, I. 2009. Permeability changes in coal: Analytical modeling. International Journal of Coal Geology, 77, 119–126.
  • Palmer, I. and Mansoori, J. 1996. How permeability depends on stress and pore pressure in coalbeds: a new model. 1996 SPE annual technical conference and exhibition, October 6–9, 1996. Denver, CO: Society of Petroleum Engineers, pp. 557–564.
  • Pan, Z. and Connell, L.D., 2007. A theoretical model for gas adsorption-induced coal swelling. International Journal of Coal Geology, 69, 243–252.
  • Pan, Z. and Connell, L.D., 2012. Modelling permeability for coal reservoirs: A review of analytical models and testing data. International Journal of Coal Geology, 92, 1–44.
  • Pan, Z., Connell, L.D., Camilleri, M. and Connelly, L. 2010. Effects of matrix moisture on gas diffusion and flow in coal. Fuel, 89 (11), 3207–3217.
  • Parkash, S. and Chakrabartty, S.K., 1986. Microporosity in Alberta Plains coals. International Journal of Coal Geology, 6, 55–70.
  • Pashin, J.C., 2008. Coal as a petroleum source rock and reservoir rock. In: I. Suaŕez-Ruiz and J.C. Crelling, eds. Applied coal petrology. Burlington, MA: Elsevier, pp. 227–262.
  • Pekot, L.J. and Reeves, S.R., 2003. Modeling the effects of matrix shrinkage and differential swelling on coalbed methane recovery and carbon sequestration. International coalbed methane symposium, 5–9 May 2003. Tuscaloosa, AL: Advanced Resources International, pp. 1–15.
  • Pinetown, K.L., Faiz, M.M., Saghafi, A., Stalker, L. and VanHolst, J., 2008. Coal seam gas distribution in the Hunter coalfield, Sydney basin. PESA eastern Australasian basins symposium III, September 14–17, 2008 Sydney: Petroleum Exploration Society of Australia, pp. 1–24.
  • Pini, R., Ottiger, S., Burlini, L., Storti, G. and Mazzotti, M., 2010. Sorption of carbon dioxide, methane and nitrogen in dry coals at high pressure and moderate temperature. International Journal of Greenhouse Gas Control, 4, 90–101.
  • Pomeroy, C.D. and Morgans, W.T.A., 1956. The tensile strength of coal. British Journal of Applied Physics, 7, 243–246.
  • Pone, J.D.N., Hile, M., Halleck, P.M. and Mathews, J.P., 2009a. Three-dimensional carbon dioxide-induced strain distribution within a confined bituminous coal. International Journal of Coal Geology, 77, 103–108.
  • Pone, J.D.N., Hallecka, P.M. and Mathews, J.P., 2009b. Methane and carbon dioxide sorption and transport rates in coal at in-situ conditions. Energy Procedia, 1, 3121–3128.
  • Prusty, B.K., 2008. Sorption of methane and CO2 for enhanced coalbed methane recovery and carbon dioxide sequestration. Journal of Natural Gas Chemistry, 17, 29–38.
  • Radlinski, A.P., Mastalerz, M., Hinde, A.L., Hainbuchner, M., Rauch, H., Baron, M., Lin, J.S., Fan, L. and Thiyagarajan, P., 2004. Application of SAXS and SANS in evaluation of porosity, pore size distribution and surface area of coal. International Journal of Coal Geology, 59, 245–271.
  • Radovic, L.R., Menon, V.C., Leon, C.A., Leon, Y., Kyotani, T., Danner, R.E., Anderson, S. and Hatcher, P.G., 1997. On the porous structure of coals: evidence for an interconnected but constricted micropore system and implications for coalbed methane recovery. Adsorption, 3, 221–232.
  • Reeves, S.R., 2001. Geological sequestration of CO2 in deep, unmineable coalbeds: an integrated research and commercial-scale field demonstration project. SPE annual technical conference and exhibition. New Orleans, LA: SPE 71749.
  • Reeves, S.R., Taillefert, A., Pekot, L. and Clarkson, C., 2003. The Allison unit CO2 – ECBM pilot: a reservoir modeling study. Topical report. Houston, TX: Advanced Resources International.
  • Reucroft, P.J. and Patel, H., 1986. Gas-induced swelling in coal. Fuel, 65, 816–820.
  • Robertson, E.P., 2009. Economic analysis of carbon dioxide sequestration in Powder River basin coal. International Journal of Coal Geology, 77, 234–241.
  • Robertson, E.P. and Christiansen, R.L., 2005. Modeling permeability in coal using sorption-induced strain data. In: Proceeding of the 2005 SPE annual technical conference and exhibition, October 9–12, 2005, Dallas, Texas. paper SPE 97068. Society of Petroleum Engineers. http://www.onepetro.org/mslib/servlet/onepetropreview?id=SPE-97068-MS
  • Ruckenstein, E., Vaidyanathan, A.S. and Youngquist, G.R., 1971. Sorption by solids with bidisperse pore structures. Chemical Engineering Science, 26, 1305–1318.
  • Saghafi, A., 2010. Potential for ECBM and CO2 storage in mixed gas Australian coals. International Journal of Coal Geology, 82, 240–251.
  • Saghafi, A., Faiz, M. and Roberts, D., 2007. CO2 storage and gas diffusivity properties of coals from Sydney basin, Australia. International Journal of Coal Geology, 70, 240–254.
  • Saghafi, A., Pinetown, K.L., Grobler, P.G. and van Heerden, J.H.P., 2008. CO2 storage potential of South African coals and gas entrapment enhancement due to igneous intrusions. International Journal of Coal Geology, 73, 74–87.
  • Sakurovs, R., Day, S. and Weir, S., 2010. Relationships between the critical properties of gases and their high pressure sorption behavior on coals. Energy and Fuels, 24, 1781–1787.
  • Sakurovs, R., Day, S., Weir, S. and Duffy, G., 2007. Application of a modified Dubinin–Radushkevich equation to adsorption of gases by coals under supercritical conditions. Energy and Fuels, 21, 992–997.
  • Sawyer, W.K., Paul, G.W. and Schraufnagel, R.A., 1990. Development and application of a 3D coalbed simulator. CIM/SPE international technical conference, June 10–13, 1990. Calgary. Society of Petroleum Engineers, 1–10, doi: 10.2118/90-119.
  • Seidle, J.P. and Huitt, L.G., 1995. Experimental measurement of coal matrix shrinkage due to gas desorption and implications for cleat permeability increases. Beijing, China: SPE.
  • Seidle, J.P., Jeansonne, M.W. and Erickson, D.J., 1992. Application of matchstick geometry to stress dependent permeability in coals. SPE rocky mountain regional meeting. Casper, Wyoming: SPE.
  • Sereshki, F., 2005. Improving coal mine safety by identifying factors that influence the sudden release of gases in outburst prone zones. Thesis (PhD). University of Wollongong.
  • Sharma, A., Kyotani, T. and Tomita, A., 2000. Direct observation of layered structure of coals by a transmission electron microscope. Energy and Fuels, 14, 515–516.
  • Shi, J.Q. and Durucan, S., 2003. A bidisperse pore diffusion model for methane displacement desorption in coal by CO2 injection. Fuel, 82, 1219–1229.
  • Shi, J.Q. and Durucan, S., 2005. A model for changes in coalbed permeability during primary and enhanced methane recovery. SPE Reservoir Evaluation and Engineering, 291–300.
  • Shimada, S. and Yamaguchi, K., 2009. Economic assessment of enhaced coalbed methane recovery for low rank coal seam. Energy Procedia, 1, 1699–1704.
  • Siemons, N., Wolf, K.-H.A. and Bruining, J., 2007. Interpretation of carbon dioxide diffusion behavior in coals. International Journal of Coal Geology, 72, 315–324.
  • Smyth, M. and Buckley, M.J., 1993. Statistical analysis of the microlithotype sequences in the Bulli seam, Australia, and relevance to permeability for coal gas. International Journal of Coal Geology, 22, 167–187.
  • Somerton, W.H., Soylemezoglu, I.M. and Dudley, R.C., 1975. Effect of stress on permeability of coal. International Journal of Rock Mechanics and Mining Science and Geomechanical Abstracts, 12, 129–145.
  • Spears, D.A. and Caswell, S.A., 1986. Mineral matter in coals: cleat minerals and their origin in some coals from the English Midlands. International Journal of Coal Geology, 6, 107–125.
  • Speight, J.G., 2005. Handbook of Coal Analysis, New Jersey, John Wiley and Sons, Inc.
  • Stacy, W.O. and Jones, J.C., 1986. The swelling and adsorption characteristics of Victorian brown coals. Fuel, 65, 1171–1173.
  • Su, X., Feng, Y. Chen, J. and Pan, J., 2001. The characteristics and origins of cleat in coal from Western North China. International Journal of Coal Geology, 47, 51–62.
  • Suuberg, E.M., Deevi, S.C. and Yunt, Y., 1995. Elastic behaviour of coals studied by mercury porosimetry. Fuel, 74, 1522–1530.
  • Szabo, T.L., 1981. A representative poisson’s ratio for coal. International Journal of Rock Mechanics and Mining Science and Geomechanical Abstracts, 18, 531–533.
  • Szwilski, A.B., 1985. Relation between the structural and physical properties of coal. Mining Science and Technology, 2, 181–189.
  • Van Bergen, F., Spiers, C., Floor, G. and Bots, P., 2009. Strain development in unconfined coals exposed to CO2, CH4 and Ar: effect of moisture. International Journal of Coal Geology, 77, 43–53.
  • Van Bergen, F., Pagnier, H. and Krzystolik, P., 2006. Field experiment of enhanced coalbed methane-CO2 in the upper Silesian basin of Poland. Environmental Geoscience, 13, 201–224.
  • Viete, D.R. and Ranjith, P.G., 2006. The effect of CO2 on the geomechanical and permeability behaviour of brown coal: implications for coal seam CO2 sequestration. International Journal of Coal Geology, 66, 204–216.
  • Walker, P.L., Verma, S.K., Rivera-Utrilla, J. and Khan, M.R., 1988. A direct measurement of expansion in coals and macerals induced by carbon dioxide and methanol. Fuel, 67, 719–726.
  • Ward, C.R. and Suarez-Ruiz, I., 2008. Introduction to applied coal petrology. In: I. Suaŕez-Ruiz and J.C. Crelling, eds. Applied coal petrology. Burlington, MA: Elsevier, pp. 1–18.
  • Webb, S., 2006. Gas transport mechanisms. In: C. Ho and S. Webb, eds. Gas transport in porous media. Theory and Applications of Transport in Porous Media. Dordrecht: Springer, pp. 5–26.
  • White, J.M. and Mazurkiewicz, M., 1989. Effect of moisture content on mechanical properties of Nemo coal, Moberly, Missouri, U.S.A. Mining Science and Technology, 9, 181–185.
  • Wong, S., Law, F., Deng, X., Robinson, J., Kadatz, B., Gunter, W.D., Jianping, Y., Sanil, F. and Zhiqiang, F., 2007. Enhanced coalbed methane and CO2 storage in anthracitic coals - micro-pilot test at South Qinshui, Shanxi, China. International Journal of Greenhouse gas Control, 1, 215–222.
  • Yamaguchi, S., Ohga, K., Fujioka, M. and Masao, N., 2006. Field test and history matching of the CO2 sequestration project in coal seams in Japan. International Journal of Society of Material Engineering Resources, 13 (2), 64–69.
  • Yamazaki, T., Aso, K. and Chinju, J., 2006. Japanese potential of CO2 sequestration in coal seams. Applied Energy, 83, 911–920.
  • Yu, H., Zhou, L., Guo, W., Cheng, J. and Hu, Q., 2008. Predictions of the adsorption equilibrium of methane/carbon dioxide binary gas on coals using Langmuir and ideal adsorbed solution theory under feed gas conditions. International Journal of Coal Geology, 73, 115–129.

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