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- W2912469915 abstract "Abstract Gas flow in organic-rich shale reservoirs is complex due to the multiphysics that occur simultaneously. Theses physics include the geomechanical effect that reduces the pore size as gas is depleted during gas production, which leads to a decrease of intrinsic permeability, slip flow, and pore diffusion (Knudsen diffusion and Fickian-type diffusion), adsorption layer that shrinks the pore size, and the surface diffusion that exists between the adsorption layer and free gas phase. Slip flow, pore diffusion, and surface diffusion are believed to enhance shale gas apparent permeability, especially under low pressures. It is of practical importance to obtain a permeability evolution curve for accurate shale gas reservoir simulations. A workflow to integrate all the physics affecting the dynamic permeability evolution is introduced in this chapter, and impacts of the physics involved are evaluated. In addition, the unsteady-state gas transmission (pulse-decay) experiment is presented as a powerful approach to evaluate petrophysical properties of shale. The numerical model, along with analytical solutions describing the transient process with nonadsorptive gas and adsorptive gas by previous researchers is introduced. Results from the pulse-decay experiment conducted on shale matrix with various types of gas under different pressures are also presented. The complex relationships between apparent porosity, adsorption, and apparent permeability based on the pulse-decay experiment are described in detail in this chapter." @default.
- W2912469915 created "2019-02-21" @default.
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- W2912469915 date "2019-01-01" @default.
- W2912469915 modified "2023-09-25" @default.
- W2912469915 title "Multiphysical Flow Behavior in Shale and Permeability Measurement by Pulse-Decay Method" @default.
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- W2912469915 doi "https://doi.org/10.1016/b978-0-12-816698-7.00015-2" @default.
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