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气体组成、压力和温度对二氧化碳强化采油中界面张力动力学的影响。

Impact of gas composition, pressure, and temperature on interfacial Tension dynamics in CO₂-Enhanced oil recovery.

作者信息

Gajbhiye Rahul

机构信息

King Fahd University of Petroleum & Minerals, Dhahran, 31261, Saudi Arabia.

出版信息

Sci Rep. 2025 Jan 30;15(1):3821. doi: 10.1038/s41598-025-88333-5.

Abstract

Climate change policies are driving the oil and gas industry to explore CO injection for carbon dioxide storage in reservoirs. In the United States, a substantial portion of oil production relies on CO-enhanced-oil-recovery (CO-EOR), demonstrating a growing interest in using CO to address various production challenges like condensate mitigation, pressure maintenance, and enhancing productivity in tight reservoirs. CO injection introduces gases like natural gas and N, either pre-existing or as impurities in the injected CO gas. These gases alter the interaction of CO with the oil or condensate in the reservoir, with interfacial tension playing a crucial role in governing miscibility, mobilization, and phase distribution. Effectively implementing gas injection techniques requires a precise understanding of interfacial tension between injected gases and reservoir fluid under reservoir conditions. This study aims to evaluate the effects of oil composition, gas composition, pressure, and, temperature on interfacial tension and provides a comprehensive understanding of IFT dynamics for CO-EOR implementation. The study utilizes the pendant drop analysis technique to assess the impact of pressure, temperature, and gas composition on crude oil and condensate interfacial tension. Measurements span a range of temperature (30-85 C), pressure (0.7-7 MPa), and mixture composition (CO: N ratios of 90:10 and 10:90), including pure CO and N with crude oil and condensate. Accurate measurement of interfacial tension incorporates changes in oil and gas density as functions of pressure and temperature. Results show that interfacial tension is significantly influenced by pressure, temperature, and gas composition. It decreases with increasing pressure at constant temperature and gas composition for both crude oil and condensate. While temperature-induced reductions in interfacial tension occur, they are overshadowed by the more pronounced effect of pressure. Gas composition significantly affects system interfacial tension; an increase in CO mole fraction decreases it, while an increase in N mole fraction causes an upturn. Changes in CO mole fraction result in concave downward trends, whereas changes in N mole fraction lead to concave upward trends. These findings are crucial for understanding the interaction of injected gas with reservoir fluid and can be applied to model interfacial tension with hydrocarbon fluid. This study offers an in-depth understanding of interfacial tension dynamics in CO-EOR, a process that is increasingly attracting global attention for CO utilization. The research stands out for its innovative experimentation and detailed analysis, which focus on evaluating the impact of individual parameters crucial for modeling. Additionally, it sheds light on the combined effects of these parameters, which are essential for practical field applications. This knowledge is instrumental in designing processes such as CO-EOR and condensate banking, incorporating the effects of pressure, temperature, and gas composition at the reservoir scale.

摘要

气候变化政策促使石油和天然气行业探索注入二氧化碳以在储层中进行碳封存。在美国,很大一部分石油生产依赖于二氧化碳强化采油(CO-EOR),这表明人们越来越有兴趣利用二氧化碳来应对各种生产挑战,如减轻凝析油问题、维持压力以及提高致密储层的产能。注入二氧化碳会引入天然气和氮气等气体,这些气体要么是预先存在的,要么是注入的二氧化碳气体中的杂质。这些气体会改变二氧化碳与储层中石油或凝析油的相互作用,而界面张力在控制混溶性、驱替和相分布方面起着关键作用。有效实施气体注入技术需要精确了解储层条件下注入气体与储层流体之间的界面张力。本研究旨在评估油成分、气体成分、压力和温度对界面张力的影响,并全面了解用于CO-EOR实施的界面张力动态变化。该研究利用悬滴分析技术来评估压力、温度和气体成分对原油和凝析油界面张力的影响。测量范围涵盖一系列温度(30 - 85℃)、压力(0.7 - 7MPa)和混合成分(CO:N比例为90:10和10:90),包括纯二氧化碳和氮气与原油和凝析油的情况。准确测量界面张力时要考虑油和气的密度随压力和温度的变化。结果表明,界面张力受压力、温度和气体成分的显著影响。在恒温及气体成分不变的情况下,原油和凝析油的界面张力均随压力升高而降低。虽然温度升高会导致界面张力降低,但压力的影响更为显著。气体成分对系统界面张力有显著影响;二氧化碳摩尔分数增加会使其降低,而氮气摩尔分数增加则会导致其上升。二氧化碳摩尔分数的变化导致向下凹的趋势,而氮气摩尔分数的变化导致向上凹的趋势。这些发现对于理解注入气体与储层流体的相互作用至关重要,可用于模拟与烃类流体的界面张力。本研究深入了解了CO-EOR中的界面张力动态变化,这一过程因二氧化碳的利用而日益受到全球关注。该研究以其创新的实验和详细的分析脱颖而出,重点评估了对建模至关重要的各个参数的影响。此外,它还揭示了这些参数的综合影响,这对于实际现场应用至关重要。这些知识有助于设计诸如CO-EOR和凝析油聚集等过程,并在储层尺度上纳入压力、温度和气体成分的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0451/11782577/9308ae282c56/41598_2025_88333_Fig1_HTML.jpg

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