Adsorption of methane and carbon dioxide on gas shale and pure mineral samples

Robert Heller1, Mark Zoback1
1Department of Geophysics, Stanford University, Stanford, CA, United States

Tài liệu tham khảo

Bustin, R.M., Bustin, A.M.M., Cui, A., Ross, D., Pathi, V.M., 2008, Impact of shale properties on pore Structure and storage characteristics: SPE Shale Gas Production Conference. Chalmers, 2008, Lower Cretaceous gas shales in northeastern British Columbia, Part I: geological controls on methane sorption capacity, Bull. Can. Pet. Geol., 56, 1, 10.2113/gscpgbull.56.1.1 Cui, 2009, Measurements of gas permeability and diffusivity of tight reservoir rocks: different approaches and their applications, Geofluids, 9, 208, 10.1111/j.1468-8123.2009.00244.x Dubinin, 1960, The potential theory of adsorption of gases and vapors for adsorbents with energetically nonuniform surfaces, Chem. Rev., 60, 235, 10.1021/cr60204a006 Heller, 2014, Experimental investigation of matrix permeability of gas shales, AAPG Bull., 98, 975, 10.1306/09231313023 Hol, 2011, Applied stress reduces the CO2 sorption capacity of coal, Int. J. Coal Geol., 85, 128, 10.1016/j.coal.2010.10.010 Kang, 2010, Carbon dioxide storage capacity of organic-rich shales, SPE, 134583, 1 Kowalczyk, 2010, Carbon dioxide adsorption-induced deformation of microporous carbons, J. Phys. Chem. C, 114, 5126, 10.1021/jp911996h Langmuir, 1916, The constitution and fundamental properties of solids and liquids: Part I, Solids, J. Am. Chem. Soc., 38, 2221, 10.1021/ja02268a002 Lin, 2007, Sorption-induced permeability change of coal during gas-injection processes Loucks, 2009, Morphology, genesis, and distribution of nanometer-scale pores in siliceous mudstones of the Mississippian Barnett Shale, J. Sediment. Res., 79, 848, 10.2110/jsr.2009.092 Lu, 1995, Adsorption measurements in Devonian shales, Fuel, 74, 599, 10.1016/0016-2361(95)98364-K Menon, 1968, Adsorption at high pressures, Chem. Rev., 68, 277, 10.1021/cr60253a002 Montgomery, 2005, Mississippian Barnett Shale, Fort Worth basin, north-central Texas: Gas-shale play with multi–trillion cubic foot potential, AAPG Bull., 89, 155, 10.1306/09170404042 NIST, 2007, NIST Reference Fluid Thermodynamic and Transport Properties Database (REFPROP): Version 9.0. Nuttall, B. C., Eble, C. F., Drahovzal, J. A., Bustin, R. M., 2005. Analysis of Devonian black shales in Kentucky for potential carbon dioxide sequestration and enhanced natural gas production. Report Kentucky Geological Survey/University of Kentucky (DE-FC26-02NT41442). Passey, Q., Bohacs, K., Esch, W., Klimentidis, R., Sinha, S. (2010, June). From oil-prone source rock to gas-producing shale reservoir-geologic and petrophysical characterization of unconventional shale gas reservoirs. In International Oil and Gas Conference and Exhibition in China. Peters, 1993, vol. 363 Ross, 2007, Impact of mass balance calculations on adsorption capacities in microporous shale gas reservoirs, Fuel, 86, 2696, 10.1016/j.fuel.2007.02.036 Ross, 2009, The importance of shale composition and pore structure upon gas storage potential of shale gas reservoirs, Mar. Pet. Geol., 26, 916, 10.1016/j.marpetgeo.2008.06.004 Schettler, P. D., Parmely, C. R., & Juniata, C. (1991). Contributions to total storage capacity in Devonian shales. SPE paper, 23422. Sondergeld, C.H., Ambrose, R.J., Rai, C.S., Moncrieff, J., 2010, Micro-structural studies of gas shales: SPE Unconventional Gas Conference. Tsai, 1985, Adsorption of gas mixture on activated carbon, Carbon, 23, 167, 10.1016/0008-6223(85)90008-9 Valko, P., Lee, W. (2010, September). A better way to forecast production from unconventional gas wells. In SPE Annual Technical Conference and Exhibition. Wang, F.P., Reed, R.M., 2009, Pore networks and fluid flow in gas shales: SPE Annual Technical Conference and Exhibition.