Analysis of gas transport behavior in organic and inorganic nanopores based on a unified apparent gas permeability model

被引:0
作者
Qi Zhang [1 ]
Wen-Dong Wang [2 ]
Yilihamu Kade [3 ]
Bo-Tao Wang [4 ]
Lei Xiong [5 ]
机构
[1] Key Laboratory of Tectonics and Petroleum Resources,China University of Geosciences
[2] School of Petroleum Engineering, China University of Petroleum (East China)
[3] Institute of Ground Engineering, Engineering Technology Research Institute of PetroChina Xinjiang Oilfield Company
[4] Oil Production Plant 5 of PetroChina Changqing Oilfield Company
[5] Oil Production Plant 1 of PetroChina Xinjiang Oilfield Company
基金
中国国家自然科学基金; 中央高校基本科研业务费专项资金资助;
关键词
Gas transport; Apparent gas permeability model; Gas adsorption; Surface diffusion; Stress dependence;
D O I
暂无
中图分类号
TE311 [油气层物理];
学科分类号
082002 ;
摘要
Different from the conventional gas reservoirs, gas transport in nanoporous shales is complicated due to multiple transport mechanisms and reservoir characteristics. In this work, we presented a unified apparent gas permeability model for real gas transport in organic and inorganic nanopores, considering real gas effect, organic matter(OM) porosity, Knudsen diffusion, surface diffusion, and stress dependence. Meanwhile, the effects of monolayer and multilayer adsorption on gas transport are included.Then, we validated the model by experimental results. The influences of pore radius, pore pressure, OM porosity, temperature,and stress dependence on gas transport behavior and their contributions to the total apparent gas permeability(AGP) were analyzed.The results show that the adsorption effect causes Kn(OM) > Kn(IM) when the pore pressure is larger than 1 MPa and the pore radius is less than 100 nm. The ratio of the AGP over the intrinsic permeability decreases with an increase in pore radius or pore pressure. For nanopores with a radius of less than 10 nm, the effects of the OM porosity, surface diffusion coefficient,and temperature on gas transport cannot be negligible. Moreover, the surface diffusion almost dominates in nanopores with a radius less than 2 nm under high OM porosity conditions. For the small-radius and low-pressure conditions, gas transport is governed by the Knudsen diffusion in nanopores. This study focuses on revealing gas transport behavior in nanoporous shales.
引用
收藏
页码:168 / 181
页数:14
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