Matrix Heterogeneity Effects on Gas Transport and Adsorption in Coalbed and Shale Gas Reservoirs

In coalbeds and shales, gas transport and storage are important for accurate prediction of production rates and for the consideration of subsurface greenhouse gas sequestration. They involve coupled fluid phenomena in porous medium including viscous flow, diffusive transport, and adsorption. Standard approach to describe gas–matrix interactions is deterministic and neglects the effects of local spatial heterogeneities in porosity and material content of the matrix. In this study, adopting weak-noise and mean-field approximations and using a statistical approach in spectral domain, matrix heterogeneity effects are investigated in the presence of non-equilibrium adsorption with random partition coefficient. It is found that the local heterogeneities can generate non-trivial transport and kinetic effects which retard gas release from the matrix and influence the ultimate gas recovery adversely. Macro-transport shows 1/[1 + NPe/(1 + NPe)] dependence on the Péclet number, and persists at the diffusive ultra-low permeability limit. Macro-kinetics is directly related to Thiele modulus by the following expression: NTh/(1 + 2NPe). It leads to trapping of gas in the adsorbed phase during its release from the matrix, and to an adsorption threshold during the gas uptake by the matrix. Both effects are proportional to the initially available adsorbed gas amount and becomes more pronounced with the increasing variance of the porosity field. Consequently, a new upscaled deterministic gas mass balance is proposed for practical purposes. Numerical results are presented showing free and adsorbed gas distributions and fractional gas sorption curves for unipore coal matrix exhibiting Gaussian porosity distribution. This study is a unique approach for our further understanding of the coalbeds and gas shales, and it is important for the development of sound numerical gas production and sequestration models.

[1]  C. Boyer,et al.  Coalbed- and Shale-Gas Reservoirs , 2008 .

[2]  Brandon C. Nuttall,et al.  ANALYSIS OF DEVONIAN BLACK SHALES IN KENTUCKY FOR POTENTIAL CARBON DIOXIDE SEQUESTRATION AND ENHANCED NATURAL GAS PRODUCTION , 2003 .

[3]  L. Gelhar Stochastic Subsurface Hydrology , 1992 .

[4]  D. Do,et al.  A new model for the description of adsorption kinetics in heterogeneous activated carbon , 1998 .

[5]  R. E. Jessup,et al.  Nonequilibrium sorption of organic chemicals: elucidation of rate-limiting processes , 1991 .

[6]  S. Dana Weida,et al.  Challenging the Traditional Coalbed Methane Exploration and Evaluation Model , 2005 .

[7]  J. A. Schwarz,et al.  Micropore structure of template-derived carbons studied using adsorption of gases with different molecular diameters , 1995 .

[8]  John H. Cushman,et al.  Nonlocal Reactive Transport with Physical and Chemical Heterogeneity: Linear Nonequilibrium Sorption with Random Kd , 1995 .

[9]  L. Scriven,et al.  Stochastic-Perturbation Analysis of a One-Dimensional Dispersion-Reaction Equation: Effects of Spatially-Varying Reaction Rates , 1998 .

[10]  C. Karacan,et al.  An effective method for resolving spatial distribution of adsorption kinetics in heterogeneous porous media: application for carbon dioxide sequestration in coal , 2003 .

[11]  I. L'Heureux,et al.  Stochastic reaction-diffusion phenomena in porous media with nonlinear kinetics: effects of quenched porosity fluctuations. , 2004, Physical review letters.

[12]  Frank L. Williams,et al.  Diffusional Effects in the Recovery of Methane From Coalbeds , 1984 .

[13]  Eli Ruckenstein,et al.  Sorption by solids with bidisperse pore structures , 1971 .

[14]  Gregory R. King,et al.  Material-Balance Techniques for Coal-Seam and Devonian Shale Gas Reservoirs With Limited Water Influx , 1993 .