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Gas relative permeability in unconventional reservoir rocks

Accurate modeling of gas relative permeability has practical applications in oil and gas exploration, production and recovery of unconventional reservoirs. In this study, we apply concepts from the effective-medium approximation (EMA) and universal power-law scaling from percolation theory. Although the EMA has been successfully used to estimate relative permeability in conventional porous media, to the best of our knowledge, its applications to unconventional reservoir rocks have not been addressed yet. The main objective of this study, therefore, is to evaluate the efficiency of EMA, in combination with universal power-law scaling from percolation theory, in estimating gas relative permeability from pore size distribution and pore connectivity. We presume that gas flow is mainly controlled by two main mechanisms contributing in parallel (1) hydraulic flow and (2) molecular flow. We then apply the EMA to determine effective conductances and, consequently, gas relative permeability at higher gas saturations, and the universal scaling from percolation theory at lower gas saturation values. Comparisons with two pore-network simulations and six experimental measurements from the literature show that, in the absence of microfractures, the proposed model estimates gas relative permeability reasonably well in shales and tight porous rocks. More specifically, we found that the crossover point, gas saturation at which transport crosses from percolation theory to the EMA, is non-universal. The value of crossover gas saturation is a function of pore space characteristics such as pore size distribution broadness and critical gas saturation. This means that one should expect the crossover gas saturation to vary from one rock sample to another.

preprint2020arXivOpen access
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