Contribution to Gas Production from Minor Coal Seams and Adjacent Shales: Numerical Modelling Results for the Mannville Coal Measures, South Central Alberta
- 1 Department of Earth, Ocean and Atmospheric Sciences, The University of British Columbia, Vancouver, Canada
- 2 Department of Earth, Ocean and Atmospheric Sciences, The University of British Columbia, Vancouver, Canada
Abstract
The contribution to production of the gas stored within the coal and shale beds adjacent to the main coal seam in the Mannville Group, in which a lateral is drilled, was investigated through a series of numerical simulations. The results indicate that the added gas from the minor coal seams, with interbedded shales with no gas, results in 1.4 times (×) more produced gas and 3.0× more produced water after 25 years of production than when only the main Mannville coal seam is considered. Including gas in the shales results in 1.7× more produced gas and 2.5× more produced water after 25 years of production than when only the main coal seam is considered. The produced gas recovered from the shales exceeds the produced gas recovered from the coals after ~8.5 years, resulting in 2.1× more produced shale gas than coal gas after 25 years of production. Over half (56%) of the produced coal gas after 25 years of production is recovered from the main coal seam while a quarter (22%) is recovered from the L1 seam, which is the thickest and nearest minor coal seam to the horizontal wellbore located in the main seam. The results from the numerical simulations provide insights that are not intuitive or otherwise predictable in developing complex reservoirs. Although the results are specifically for the Mannville producing fairway, undoubtedly the production from minor coal seams and interbedded gas shales should be considered in other producing and potential coal gas reservoirs to identify higher producible reserves and optimize drilling and completions strategies.
- Bustin, A.M.M. and Bustin, R.M. (2016) Total Gas-in-Place Gas Composition and Reservoir Properties of Coal of the Mannville Coal Measures, Central Alberta. International Journal of Coal Geology, 153, 127-143. https://doi.org/10.1016/j.coal.2015.11.011
- Bustin, A.M.M. and Bustin, R.M. (2016) Contribution of Non-Coal Facies to the Total Gas-in-Place in Mannville Coal Measures, Central Alberta. International Journal of Coal Geology, 144-145, 69-81. https://doi.org/10.1016/j.coal.2015.12.002
- Gu, F. and Chalaturnyk, R.J. (2005) Analysis of Coalbed Methane Production by Reservoir and Geomechanical Coupling Simulation. Journal of Canadian Petroleum Technology, 44, 33-42. https://doi.org/10.2118/05-10-03
- Wong, S., Law, D., Deng, X., Robinson, J., Kadatz, B., Gunter, W.D., et al. (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. https://doi.org/10.1016/S1750-5836(06)00005-3
- Maricic, N., Mohaghegh, S.D. and Artun, E. (2008) A Parametric study on the Benefits of Drilling Horizontal and Multilateral Wells in Coalbed Methane Reservoirs. Society of Petroleum Engineers Reservoir Evaluation and Engineering, 11, 976-983. https://doi.org/10.2118/96018-PA
- Mora, C.A. and Wattattenbarger, R.A. (2009) Comparison of Computation Methods for CBM Performance. Journal of Canadian Petroleum Technology, 48, 42-48. https://doi.org/10.2118/09-04-42
- Ren, B., Sun, Y. and Bryant, S. (2014) Maximizing Local Capillary Trapping during CO2 Injection. Energy Procedia, 63, 5562-5576. https://doi.org/10.1016/j.egypro.2014.11.590
- Liu, P. and Zhang, X. (2015) Enhanced Oil Recovery by CO2-CH4 Flooding in Low Permeability and Rhythmic Hydrocarbon Reservoir. International Journal of Hydrogen Energy, 40, 12849-12853. https://doi.org/10.1016/j.ijhydene.2015.07.013
- Gentzis, T. and Bolen, D. (2008) The Use of Numerical Simulation in Predicting Coalbed Methane Producibility from the Gates Coals, Alberta Inner Foothills, Canada: Comparison with Mannville Coal CBM Production in the Alberta Syncline. International Journal of Coal Geology, 74, 215-236. https://doi.org/10.1016/j.coal.2007.12.003
- Bustin, A.M.M. and Bustin, R.M. (2011) Horseshoe Canyon and Belly River Coal Measures, South Central Alberta: Part 2 Modeling Reservoir Properties and Producible Gas. Journal of Canadian Petroleum Geology, 59, 235-260. https://doi.org/10.2113/gscpgbull.59.3.235