New algorithm of three-phase equilibrium calculations for CO2-hydrocarbon-water systems

0 ENERGY & FUELS
Ruixiao Sun , Huanquan Pan , Hamdi Tchelepi
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引用次数: 0

Abstract

In this century, global warming caused by the accumulation of atmospheric carbon dioxide has become an essential concern. The industry has two main decarbonization options: CO2 capture for permanent storage in geological formations and CO2 utilization for enhancing oil recovery (EOR). Both methods require accurate reservoir simulation to correctly describe the fluids flowing process and design an optimal injection plan. However, existing reservoir simulation practices often neglect the interaction and dissolution of CO2 and hydrocarbon components in water, leading to inaccurate predictions. Neglecting CO2 dissolution in water undermines storage estimation for capture and results in unreliable EOR descriptions. Therefore, to address this, our study focuses on developing a reliable and accurate phase equilibrium calculation package for hydrocarbon-CO2-water three-phase systems, which meets the demanding efficiency and robustness criteria of reservoir simulation. In this paper, we first introduce the methodology of the three-phase equilibrium calculation algorithm, then illustrate the numerical techniques employed to improve computational efficiency and finally demonstrate superior robustness of this algorithm through comprehensive case studies. Our research contributes three key improvements. First, we have increased the reliability of phase behavior descriptions by considering the dissolution of CO2 and hydrocarbon components in water. Second, we have enhanced the robustness of the three-phase equilibrium calculations algorithm, enabling accurate determination of three-phase statuses and fluid behaviors where standard commercial software may fail. Third, our algorithm exhibits notable efficiency improvements, ensuring its suitability for three-phase compositional simulations. The findings of this research provide valuable insights into the accurate modeling of hydrocarbon-CO2-water three-phase systems and offer practical solutions for designing effective CO2 reduction strategies.
二氧化碳-烃-水系统三相平衡计算的新算法
本世纪以来,大气中二氧化碳的积累所导致的全球变暖已成为人们关注的焦点。工业界有两种主要的脱碳方案:一种是捕获二氧化碳,将其永久封存在地质构造中;另一种是利用二氧化碳提高石油采收率(EOR)。这两种方法都需要精确的储层模拟,以正确描述流体流动过程并设计最佳注入方案。然而,现有的储层模拟实践往往忽视二氧化碳和碳氢化合物成分在水中的相互作用和溶解,导致预测不准确。忽略二氧化碳在水中的溶解会影响捕获的储量估算,并导致不可靠的 EOR 描述。因此,针对这一问题,我们的研究重点是为碳氢化合物-CO2-水三相系统开发可靠、准确的相平衡计算软件包,以满足储层模拟对效率和稳健性的苛刻要求。在本文中,我们首先介绍了三相平衡计算算法的方法,然后说明了为提高计算效率而采用的数值技术,最后通过综合案例研究证明了该算法的卓越鲁棒性。我们的研究有三项重要改进。首先,我们通过考虑二氧化碳和碳氢化合物成分在水中的溶解,提高了相行为描述的可靠性。其次,我们增强了三相平衡计算算法的稳健性,从而能够在标准商业软件可能失效的情况下准确确定三相状态和流体行为。第三,我们的算法明显提高了效率,确保其适用于三相组成模拟。这项研究成果为碳氢化合物-二氧化碳-水三相系统的精确建模提供了宝贵的见解,并为设计有效的二氧化碳减排战略提供了实用的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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