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Molecular Investigation of CO2/CH4 Competitive Adsorption and Confinement in Realistic Shale Kerogen

机译:真实页岩干酪根中CO2 / CH4竞争性吸附和封闭的分子研究

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摘要

The adsorption behavior and the mechanism of a CO /CH mixture in shale organic matter play significant roles to predict the carbon dioxide sequestration with enhanced gas recovery (CS-EGR) in shale reservoirs. In the present work, the adsorption performance and the mechanism of a CO /CH binary mixture in realistic shale kerogen were explored by employing grand canonical Monte Carlo (GCMC) and molecular dynamics (MD) simulations. Specifically, the effects of shale organic type and maturity, temperature, pressure, and moisture content on pure CH and the competitive adsorption performance of a CO /CH mixture were investigated. It was found that pressure and temperature have a significant influence on both the adsorption capacity and the selectivity of CO /CH . The simulated results also show that the adsorption capacities of CO /CH increase with the maturity level of kerogen. Type II-D kerogen exhibits an obvious superiority in the adsorption capacity of CH and CO compared with other type II kerogen. In addition, the adsorption capacities of CO and CH are significantly suppressed in moist kerogen due to the strong adsorption strength of H O molecules on the kerogen surface. Furthermore, to characterize realistic kerogen pore structure, a slit-like kerogen nanopore was constructed. It was observed that the kerogen nanopore plays an important role in determining the potential of CO subsurface sequestration in shale reservoirs. With the increase in nanopore size, a transition of the dominated gas adsorption mechanism from micropore filling to monolayer adsorption on the surface due to confinement effects was found. The results obtained in this study could be helpful to estimate original gas-in-place and evaluate carbon dioxide sequestration capacity in a shale matrix.
机译:页岩有机质中CO / CH混合物的吸附行为和机理在预测页岩气藏中二氧化碳的固存和提高气体采收率(CS-EGR)方面起着重要作用。在目前的工作中,通过使用大正则蒙特卡罗(GCMC)和分子动力学(MD)模拟,探索了页岩干酪根中CO / CH二元混合物的吸附性能和机理。具体来说,研究了页岩有机物类型和成熟度,温度,压力和水分含量对纯CH的影响以及CO / CH混合物的竞争吸附性能。发现压力和温度对CO / CH的吸附能力和选择性都有重要影响。模拟结果还表明,CO / CH的吸附能力随干酪根的成熟度增加而增加。与其他II型干酪根相比,II-D型干酪根在CH和CO的吸附能力上具有明显的优越性。此外,由于H O分子在干酪根表面上的强吸附力,因此在潮湿的干酪根中CO和CH的吸附能力得到显着抑制。此外,为了表征真实的干酪根孔结构,构建了狭缝状干酪根纳米孔。观察到,干酪根纳米孔在确定页岩储层中CO地下固存的潜力中起着重要作用。随着纳米孔尺寸的增加,由于限制效应,发现了主要的气体吸附机理从微孔填充过渡到表面上的单层吸附。这项研究中获得的结果可能有助于估算原始天然气,并评估页岩基质中的二氧化碳封存能力。

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