4.3 Article

Pore-scale simulation of transport properties of carbonate rocks using FIB-SEM 3D microstructure: Implications for field scale solute transport simulations

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ELSEVIER SCI LTD
DOI: 10.1016/j.jngse.2017.02.044

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FIB-SEM; Pore-scale; Tortuosity; Effective diffusivity; Thermochemical sulfate reduction

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Pore-scale simulations using a nanoscale FIB-SEM three dimensional microstructure have been used to estimate the absolute permeability and diffusive tortuosity of a representative limestone sample collected from the Arab Formation (Jurassic) carbonate gas reservoir of Abu Dhabi, United Arab Emirates. Estimated absolute permeability (k) values are in excellent agreement with reported experimental permeability values. However, estimated diffusive tortuosity (tau(d)) values required to calculate effective diffusivity (D-eff) values of multiple species involved in thermochemical sulfate reduction (TSR) are unrealistically larger than hydraulic tortuosity (rh) values. Widely employed empirical correlations (e.g. tau(d) = phi D-m/D-eff) which include only porosity as the factor affecting,tau(d) of natural porous media yield unrealistically smaller values than 1.0. Realistic tau(d) values were only obtained if a constrictivity factor (5) was included in the estimation of tau(d). Given the difficulty in estimating both delta and tau(d) values simultaneously, it is proposed that Deff values for reactive transport simulations of TSR, which are commonly calculated as function of phi and tau(d)(e.g. D-eff = (phi/tau(d))D-m), should be instead estimated as function of a formation factor (F) (D-eff = FDm). In the proposed expression F accounts for the combined effect of porosity, tortuosity and constrictivity (F = delta phi/tau(d)). Our pore -scale simulation results shows that F can be accurately estimated from pore -scale simulations using FIB-SEM 3D images. (C) 2017 Elsevier B.V. All rights reserved.

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