Petroleum Reservoir Evaluation and Development >
2024 , Vol. 14 >Issue 1: 91 - 101
DOI: https://doi.org/10.13809/j.cnki.cn32-1825/te.2024.01.013
Risk management system and application of CO2 flooding and sequestration leakage
Received date: 2023-05-22
Online published: 2024-03-05
CO2 flooding and sequestration technology can significantly improve crude oil recovery rates while enge. However, the oil displaceabling large-scale CO2 flooding and sequestration process is accompanied by various CO2 leakage risks. In response to the lack of previous CO2 leakage risk management systems, especially the absence of systems based on online monitoring that support dynamic risk management, research has been conducted on the construction of a CO2 flooding and sequestration leakage risk management system. Based on the construction of CO2 flooding and storage leakage risk management system, a dynamic CO2 leakage risk management system integrating multi-environment real-time risk identification and assessment, multi-space risk prediction, multi-level risk early warning and whole process risk control was developed and applied to the CO2 flooding and storage demonstration project of Yanchang Petroleum in Ordos Basin. Case studies demonstrate that the developed CO2 leakage risk management system can dynamically identify various leakage risks throughout the CO2 flooding and sequestration process across all spaces, effectively supporting the dynamic management of leakage risks. This provides comprehensive and timely safety assurance for CO2 flooding and sequestration projects, ensuring that potential risks are managed and mitigated effectively to maintain the integrity and success of these projects.
Zhisheng ZHANG , Xiangyang WU , Qian WU , Jixing WANG , Hanchi LIN , Junhong GUO , Rui WANG , Jinhua LI , Qianguo LIN . Risk management system and application of CO2 flooding and sequestration leakage[J]. Petroleum Reservoir Evaluation and Development, 2024 , 14(1) : 91 -101 . DOI: 10.13809/j.cnki.cn32-1825/te.2024.01.013
[1] | 张贤, 李阳, 马乔, 等. 我国碳捕集利用与封存技术发展研究[J]. 中国工程科学, 2021, 23(6): 70-80. |
[1] | ZHANG Xian, LI Yang, MA Qiao, et al. Development of carbon capture, utilization and storage technology in China[J]. Strategic Study of CAE, 2021, 23(6): 70-80. |
[2] | METZ B, DAVIDSON O, DE CONINCK H, et al. Special report on carbon dioxide capture and storage[R]. Cambridge, United Kingdom/ New York, NY, USA: IPCC, 2005, 442. |
[3] | YAN J, ZHANG Z. Carbon capture, utilization and storage (CCUS)[J]. Applied Energy, 2019, 235(FEB.1): 1289-1299. |
[4] | 刘志刚. CO2捕集技术的研究现状与发展趋势[J]. 石油与天然气化工, 2022, 51(4): 24-32. |
[4] | LIU Zhigang. Research status and development trend of CO2 capture technology[J]. Chemical Engineering of Oil & Gas, 2022, 51(4): 24-32. |
[5] | LI Q, CAI B, CHENG F, et al. Review of environmental risk assessment methods for carbon dioxide geological storage[J]. Environ Eng, 2019, 37(2): 16-24. |
[6] | 董沅武, 王睿, 王思瑶, 等. 特低渗砂岩油藏CO2-低界面张力黏弹流体协同驱油机理研究[J]. 石油与天然气化工, 2022, 51(6): 77-83. |
[6] | DONG Yuanwu, WANG Rui, WANG Siyao, et al. Study on synergistic oil displacement mechanism of CO2-low interfacial tension viscoelastic fluid alternating flooding in ultra-low permeability sandstone reservoir[J]. Chemical Engineering of Oil & Gas, 2022, 51(6): 77-83. |
[7] | 李阳, 黄文欢, 金勇, 等. 双碳愿景下中国石化不同油藏类型CO2驱提高采收率技术发展与应用[J]. 油气藏评价与开发, 2021, 11(6): 793-804. |
[7] | LI Yang, HUANG Wenhuan, JIN Yong, et al. Different reservoir types of CO2flooding in Sinopec EOR technology development and application under “dual carbon” vision[J]. Reservoir Evaluation and Development, 2021, 11(6): 793-804. |
[8] | NORDBOTTEN J M, CELIA M A, BACHU S, DAHLE H K. Semi-analytical solution for CO2 leakage through an abandoned well[J]. Environmental Science & Technology. 2005, 39(2): 602-611. |
[9] | LIU J, YANG F, CHONG S, et al. Numerical simulation of CO2 leakage in a shallow subsurface layer from a CO2 geological storage site[J]. Hydrogeology journal, 28(7): 2439-2455. |
[10] | BEAUBIEN S E, CIOTOLI G, COOMBS P, et al. The impact of a naturally occurring CO2 gas vent on the shallow ecosystem and soil chemistry of a Mediterranean pasture (Latera, Italy) - ScienceDirect[J]. International Journal of Greenhouse Gas Control, 2008, 2(3): 373-387. |
[11] | 谢健, 魏宁, 吴礼舟, 等. CO2地质封存泄漏研究进展[J]. 岩土力学, 2017, 38(增刊1): 181-188. |
[11] | XIE Jian, WEI Ning, WU Lizhou, et al. Progress in leakage study of geological CO2 storage[J]. Rock and Soil Mechanics, 2017, 38(suppl.1):181-188. |
[12] | 刘玉梅. 二氧化碳驱油与地质封存环境风险分析[D]. 北京: 中国石油大学(北京), 2020. |
[12] | LIU Yumei. Environmental risk analysis of carbon dioxide flooding and geological storage[D]. Beijing: China University of Petroleum(Beijing), 2020. |
[13] | 白云云, 师洋阳, 卢美娟, 等. 双碳目标下CO2地质封存泄漏途径及监测方法研究进展[J]. 榆林学院学报, 2021, 31(6): 43-46. |
[13] | BAI Yunyun, SHI Yangyang, LU Meijuan, et al. Research progress of CO2 geological storage leakage path and monitoring method under dual carbon targets[J]. Journal of Yulin University, 2021, 31(6): 43-46. |
[14] | ARTS R, EIKEN O, CHADWICK A, et al. Monitoring of CO2 injected at Sleipner using time-lapse seismic data[J]. Energy, 2004, 29(9/10): 1383-1392. |
[15] | JENKINS C R, COOK P J, ENNIS-KING J, et al. Safe storage and effective monitoring of CO2 in depleted gas fields[J]. Proceedings of the National Academy of Sciences of the Untied States of America, 2012, 109(2): 35-41. |
[16] | ZALUSKI W, EL-KASEEH G, LEE S Y, et al. Monitoring technology ranking methodology for CO2-EOR sites using the Weyburn-Midale Field as a case study[J]. International Journal of Greenhouse Gas Control, 2016, 54: 466-478. |
[17] | WHITTAKER S, ROSTRON B, HAWKES C, et al. A decade of CO2 injection into depleting oil fields: Monitoring and research activities of the IEA GHG Weyburn-Midale CO2 monitoring and storage project[J]. Energy Procedia, 2011, 4: 6069-6076. |
[18] | SHARMA S, COOK P, JENKINS C, et al. The CO2CRC Otway Project: Leveraging experience and exploiting new opportunities at Australia's first CCS project site[J]. Energy Procedia, 2011, 4: 5447-5454. |
[19] | 张二勇. 澳大利亚Otway盆地二氧化碳地质封存示范工程[J]. 水文地质工程地质, 2012, 39(2): 131-137. |
[19] | ZHANG Eryong. Introduction to the CO2 geo sequestration demonstration project in the Otway Basin in Australia[J]. Hydrogeology & Engineering Geology, 2012, 39(2): 131-137. |
[20] | LAKEMAN B, GUNTER W D, BACHU S, et al. Advancing the deployment of CO2 monitoring technologies through the Pembina Cardium CO2 Monitoring Project[J]. Energy Procedia, 2009, 1(1): 2293-2300. |
[21] | PRUESS K. Formation dry-out from CO2 injection into saline aquifers: 1. Effects of solids precipitation and their mitigation[J]. Water Resources Research, 2009, 45(3). |
[22] | OLDENBURG C M, UNGER A A J. Coupled subsurface-surface layer gas transport and dispersion for geologic carbon sequestration seepage simulation[C]// TOUGH Symposium 2003, May 12-14, 2003, Lawrence Berkeley National Laboratory, Berkeley, California. |
[23] | FLETT M, GURTON R, WEIR G. Heterogeneous saline formations for carbon dioxide disposal: Impact of varying heterogeneity on containment and trapping[J]. Journal of Petroleum Science and Engineering, 2007, 57(1-2): 106-118. |
[24] | 赵兴雷, 马瑞, 李国涛, 等. 神华咸水层CO2封存监测安全评价体系的研究[J]. 化工进展, 2016, 35(增刊2): 389-395. |
[24] | ZHAO Xinglei, MA Rui, LI Guotao, et al. Studies on multi-factor safety system in the monitoring process for Shenhua CO2 saline lavers storage project[J]. Chemical Industry and Engineering Progress, 2016, 35(suppl.2):389-395. |
[25] | 王保登, 赵兴雷, 崔倩, 等. 中国神华煤制油深部咸水层CO2地质封存示范项目监测技术分析[J]. 环境工程, 2018, 36(2): 33-36. |
[25] | WANG Baodeng, ZHAO Xinglei, CUI Qian, et al. Environmental monitoring analysis of injected CO2 in saline layer for Shenhua CO2 storage project[J]. Environmental Engineering, 2018, 36(2): 33-36. |
[26] | 张媛媛, 张煜, 张建, 等. CO2驱油封存区域土壤气监测技术及应用[J]. 油气田环境保护, 2014, 24(4): 49-51. |
[26] | ZHANG Yuanyuan, ZHANG Yu, ZHANG Jian, et al. Soil gas monitoring technology of CO2 enhanced oil recovery and its application analysis[J]. Environmental Protection of Oil & Gas Fields, 2014, 24(4): 49-51. |
[27] | MA J, WANG X, GAO R, et al. Jingbian CCS Project, China: Second year of injection, measurement, monitoring and verification[J]. Energy Procedia, 2014, 63: 2921-2938. |
[28] | 汤沭成, 林千果, 王昊, 等. 黄土塬地区CO2驱油封存泄漏土壤监测体系研究[J]. 安全与环境工程, 2020, 27(6): 112-118. |
[28] | TANG Shucheng, LIN Qianguo, WANG Hao, et al. Study on soil monitoring system for CO2 leakage of CO2-EOR and storage in loess tableland region[J]. Safety and Environmental Engineering, 2020, 27(6): 112-118. |
[29] | 王昊, 林千果, 郭军红, 等. 黄土塬地区CO2驱油封存泄漏地下水监测体系研究[J]. 环境工程, 2021, 39(8): 217-226. |
[29] | WANG Hao, LIN Qianguo, GUO Junhong, et al. Development of a groundwater monitoring system for CO2 leakage of CO2-EOR storage in loess tableland region[J]. Environmental Engineering, 2021, 39(8): 217-226. |
[30] | 胡叶军, 王媛, 任杰. 咸水层封存CO2沿断层带泄漏的影响因素分析[J]. 中国科技论文, 2016, 11(13): 1437-1444. |
[30] | HU Yejun, WANG Yuan, REN Jie. Analysis of factors affecting the leakage of CO2 along the fault zone in deep saline aquifers[J]. China Sciencepaper, 2016, 11(13): 1437-1444. |
[31] | 张新平. CO2盐水层埋存数值模拟研究[D]. 青岛: 中国石油大学(华东), 2011. |
[31] | ZHANG Xinping. Numerical simulation of sequestration mechanism in saline aquifers for geological CO2 storage[D]. Qingdao: China University of Petroleum(East China), 2011. |
[32] | 张立松, 蒋梦罡, 李文杰, 等. 考虑地质断层激活后的CO2封存流体泄漏模型及数值分析[J]. 油气藏评价与开发, 2022, 12(5): 754-763. |
[32] | ZHANG Lisong, JIANG Menggang, LI Wenjie, et al. Mathematical model and numerical analysis for leakage of fluid along geological fault during CO2 storage[J]. Reservoir Evaluation and Development, 2022, 12(5): 754-763. |
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