Mechanism and calculation model of EOR by CO2 flooding
- Issue 5, Pages: 734-740(2022)
Published:2022
DOI: 10.13809/j.cnki.cn32-1825/te.2022.05.004
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Published:2022
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中国天然气探明储量巨大
但实现天然气长期规模稳产
面临复杂气藏提高采收率等系列挑战
尤以页岩气、煤层气和致密气等非常规资源为甚。碳中和背景下
驱气类CCUS(碳捕集、利用与封存)技术具有广阔应用前景。将CO
2
驱提高天然气藏采收率的主要机理总结为优势吸附置换、连续对流排驱、补充气藏能量3种类型
并认为吸附态、游离态和溶解态这3种天然气的赋存状态划分适用于所有类型气藏
推导获得了CO
2
驱提高气藏采收率效果预测方法。应用该方法进行测算认为
CO
2
驱有望提高页岩气采收率20个百分点以上。为突破大幅度提高天然气采收率技术
建议针对具有较好碳封存条件的气藏开展CO
2
驱提高天然气采收率潜力评价
优选目标气藏进行经济可行性评估
并开展多种类型的CO
2
驱提高气藏采收率重大开发试验
检验烟气组分协同驱替效果和扩大CO
2
波及体积技术。
The proved reserves of natural gas in place in China is huge. However
realizing the long-term large scale stable production of natural gas faces a series of challenges such as enhanced gas recovery(EGR) of complex gas reservoirs
especially for those unconventional resources such as shale gas
coalbed methane and tight sand gas. Under the background of carbon neutralization
CCUS-EGR technology has broad application prospects due to owing the functions of increasing gas rate and carbon reduction. The main EGR mechanisms for CO
2
flooding are summarized into three types: s
ubstitution due to dominant adsorption of carbon dioxide
continuous convective displacement and gas reservoir energy supplement. Under the consideration that the classification of occurrence states of the adsorbed
free and dissolved natural gas are applicable to all types of the gas reservoirs. The prediction method of increased natural gas ultimate recovery factor by CO
2
flooding is further deduced. It is found that CO
2
flooding is expected to improve shale gas recovery of more than 20 percentage points by this method. In order to break through the technology of greatly improving natural gas recovery
it is suggested to evaluate the potential of CO
2
flooding to improve natural gas recovery for gas reservoirs with good geological sequestration conditions
assess the economic feasibility of CCUS-EGR technology applying in target gas reservoirs
and carry out major pilot tests of CO
2
flooding in various types of gas reservoirs. The synergistic displacement effect of flue gas components and the technology of expanding CO
2
sweeping volume should be focused especially.
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