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首页> 外文期刊>Journal of CO2 Utilization >CO2 sequestration coupled with enhanced gas recovery in shale gas reservoirs
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CO2 sequestration coupled with enhanced gas recovery in shale gas reservoirs

机译:CO2隔离与页岩气藏的增强气体回收相结合

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摘要

Carbon capture and storage in depleted shale gas reservoirs offers an opportunity to utilize CO2 for enhanced gas recovery while providing access to fossil fuels. To evaluate CO2 sequestration coupled with enhanced gas recovery (CO2-EGR), we have developed a model that takes into account all the major contributing mechanisms in shale gas dynamics including viscous flow, gas slippage, Knudsen diffusion, competitive adsorption of different components, pore size variation and real gas effect. The CO2-EGR process is divided into periods of primary production, CO2 injection, soaking and secondary simultaneous production of CO2 along with other natural gas components. Numerical simulations are conducted to study the feasibility of CO2 sequestration and enhanced gas recovery and analyze the response of the shale gas reservoir to input variables including reservoir pressure, temperature and intrinsic permeability. The results show that the stronger adsorption of CO2 over CH4 molecules to shale surface is the main influencing mechanism on CO2 sequestration. It is shown that 30-55% percent of the injected CO2 can be trapped as adsorbed phase in shale while providing 8-16% incremental gas recovery. Comparing trapping efficiency of CO2-EGR with other methods of accelerating CO2 dissolution in deep saline aquifers, adsorbed phase trapping is promising.
机译:耗尽页岩气藏中的碳捕获和储存提供了利用二氧化碳来增强气体回收的机会,同时提供对化石燃料的访问。为了评估与增强的气体回收(CO2-EGR)耦合的CO2隔离,我们开发了一种模型,考虑了页岩气动力学中的所有主要贡献机制,包括粘性流动,气体滑动,knudsen扩散,不同组分的竞争吸附,孔隙尺寸变化和实际气体效果。 CO2-EGR工艺分为初级生产,CO 2注射,浸泡和二次同时生产CO2以及其他天然气组分。进行数值模拟以研究CO2隔离和增强的气体回收率的可行性,并分析页岩气藏对输入变量的响应,包括储层压力,温度和内在渗透率。结果表明,CO2对CH4分子对页岩表面的强烈吸附是CO2封存的主要影响机制。结果表明,30-55%的注射二氧化碳可以被捕获为页岩中的吸附相,同时提供8-16%的增量气体回收。比较CO2-EGR与其他加速CO 2溶解的方法的诱捕效率在深盐含水层中,吸附相位诱捕是有前途的。

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