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Multiscale simulations of shale gas transport in micro/nano-porous shale matrix considering pore structure influence

机译:考虑孔隙结构影响的微/纳多射流矩阵中的页岩气输送的多尺度模拟

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Unravelling the transport characteristic of shale gas in actual extraction process is significantly important to improve the gas recovery efficiency and production. But the geological complexity of shale formations in particular makes it challenging to comprehensively cognize the transport mechanisms at multiscale. Traditional shale gas transport model based on circle nanopores system would be failed to capture the realistic transport process of shale gas in the matrix consisting of abundant micro/nano-pores with complex pore structures. Towards this end, herein multiscale simulations were performed to investigate the transport characteristic and mechanism of shale gas in micro/nano-porous shale matrix combining the molecular dynamics (MD) simulations, analytical model and pore network model. MD simulations of shale gas (methane) transport in nanopores demonstrated that the transport behavior is determined by the competition between gas-wall interaction (gas diffusion) and gas-gas intermolecular interaction (viscous flow). Considering different pore structures (e.g., circle, square, triangular, and slit), we proposed a multiscale analytical model with the coupling of continuum flow theory and diffusion effect (Knudsen diffusion and surface diffusion), which is well verified by results from MD simulations and exhibits the practicability of predicting shale gas transport from nanoscale to macroscale. Furthermore, with the aid of pore network model, micro/nano-porous structure was constructed to simulate gas transport in shale matrix. It was found that traditional simulations of shale gas transport in matrix based on circular nanopores would underestimate the transport capacity, for example, that of slit nanopore system is enhanced by as much as 126%. In particular, shale gas transport in shale matrix can be remarkably influenced by the reservoir pressure. At early stage of exploitation, the shale gas transport in matrix is mainly contributed by macropores (H 100 nm) with the dominant transport characteristic of viscous flow. With the decrease of pressure in continuous exploitation, nanopores (H 10 nm) will become the primary flow paths due to the enormously enhanced diffusion effect. The intrinsic tendency of our simulated multiscale transport may be useful for understanding the transport behavior and extraction of shale gas in porous shale formations.
机译:在实际提取过程中解开页岩气的运输特性对于提高气体回收效率和生产显着重要。但是,页岩地层的地质复杂性特别使得全面认识到多尺度的运输机制挑战。基于圆形纳米孔系统的传统页岩气输送模型将无法捕获由具有复杂孔结构的丰富的微/纳米孔组成的基质中的页岩气的现实运输过程。迄今为止,在此进行多尺度模拟,以研究微/纳米多孔岩矩阵中的页岩气的传输特性和机理组合分子动力学(MD)模拟,分析模型和孔网模型。纳米孔中的页岩气(甲烷)运输的MD模拟证明了运输行为由气壁相互作用(气体扩散)和气体分子间相互作用(粘性流动)之间的竞争确定。考虑到不同的孔结构(例如,圆形,平方,三角形和狭缝),我们提出了一种多尺度分析模型,其耦合连续um流动理论和扩散效果(knudsen扩散和表面扩散),通过MD模拟结果良好地验证并且展示了从纳米级到宏观方式预测页岩气运输的实用性。此外,借助于孔网络模型,构建微/纳米多孔结构以模拟页岩基质的气体输送。结果发现,基于圆形纳米孔的基质中的转向气体输送的传统模拟将低估狭缝纳米孔系统的运输能力,高达126%。特别地,页岩基质中的页岩气体输送可以受到储层压力的显着影响。在剥削的早期阶段,基质中的页岩气输送主要由大孔(H> 100nm)具有粘性流动的主要传输特性。随着连续剥削的压力降低,由于巨大增强的扩散效应,纳米孔(H< 10nm)将成为主要流动路径。我们模拟多尺度运输的内在趋势可能是有用的,可用于了解多孔岩层中的页岩气的运输行为和提取。

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