油页岩
残余油
材料科学
微型多孔材料
水冷
石油工程
提高采收率
页岩油
残余物
环境科学
冷却能力
断层摄影术
磁导率
电流(流体)
生物医学工程
复合材料
化石燃料
石油生产
信号(编程语言)
核工程
作者
Xu Dong,Jing Lu,Bo Liu,Jiahui Zhang,Junlei Su,Kun Liu,Junchen Wu,Xueying Shi
标识
DOI:10.30632/spwla-2025-0022
摘要
CO₂ cooling damage significantly impairs reservoir recovery near the wellbore in a spatially non-uniformity way. Nuclear Magnetic Resonance (NMR) T2 tomography, an advanced technique for studying non- uniform fluid mobilization, was employed in this study. We first optimize the T2 tomography sequence to address challenges of low SNR and loss of microporous signals through short echo time (TE) scanning, achieving superior microporous imaging compared to conventional methods. Subsequent cyclic CO₂ huff-n-puff experiments on shale plugs, with controlled puff-rate adjustments, were conducted to investigate how CO₂ cooling influences oil mobilization in pores. Results demonstrated that: (1) The non-uniformity of cooling manifests as stronger temperature reduction closer to the bottom-end, leading to an overall 36% production decline during the first HnP cycle. (2) Faster puff-rates intensify cooling in plug's bottom-end, elevating residual oil saturation. (3) While rapid gas release enhances initial marginal recoveries, it later triggers severe pore blockage as cooled oil droplets from smaller pores migrate and accumulate in larger pores (T2 >1 ms), severely impairing long-term recovery. (4) Slower puff-rates enhance total recovery, as mild cooling exerts a weaker inhibitory effect on late-stage oil mobilization. This research provides critical insights for mitigating CO₂ cooling damage and optimizing gas injection strategies in shale reservoir development. Keywords: shale, CO₂ cooling effect, NMR, tomography
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