二氧化碳羽流地热和热液系统的概率研究:北达科他州威利斯顿盆地不同储层条件的敏感性研究

Eng Pub Date : 2024-07-10 DOI:10.3390/eng5030074
Emmanuel Gyimah, O. Tomomewo, Luc Yvan Nkok, S. O. Bade, Ebenezer Asare Ofosu, Maxwell Collins Bawuah
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引用次数: 0

摘要

近年来,在减少温室气体排放和向可持续能源过渡的迫切需要的推动下,替代能源的探索获得了巨大的发展。在这些替代能源中,二氧化碳羽流地热和热液系统因其提供清洁、可再生能源的潜力而成为前景广阔的选择。本研究对北达科他州威利斯顿盆地各种储层条件下二氧化碳羽流地热和热液系统的敏感性进行了概率调查。除了阐明储层条件对系统性能的影响外,该研究还利用概率方法来评估二氧化碳羽流地热和热液系统的能量输出。从概率调查中得出的见解为威利斯顿盆地及其他地区的工作流体选择、系统设计和优化提供了宝贵的指导。敏感性分析的结果揭示了储层条件对二氧化碳羽流地热和热液系统的行为和效率的深刻影响。我们对红河地层和枯木地层的案例研究表明,根据不同的储层条件,热量提取可能分别增加 34% 和减少 32%。我们在红河地层中的海狸小屋油田进行的调查得出的二氧化碳最佳资源量、热液资源量和二氧化碳最差资源量的算术平均值分别为 6.36 × 1018 J、4.75 × 1018 J 和 3.24 × 1018 J。总之,这项研究有助于加深对二氧化碳羽流地热和热液系统的认识和理解,将其作为实现可持续能源生产和碳封存的可行途径。通过强调这些系统对储层条件的敏感性,该研究提供了宝贵的见解,可为决策过程和未来的研究工作提供信息,从而促进向低碳能源景观的过渡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Probabilistic Study of CO2 Plume Geothermal and Hydrothermal Systems: A Sensitivity Study of Different Reservoir Conditions in Williston Basin, North Dakota
The exploration of alternative energy sources has gained significant traction in recent years, driven by the urgent need to mitigate greenhouse gas emissions and transition towards sustainable energy. Among these alternatives, CO2 plume geothermal and hydrothermal systems have emerged as promising options due to their potential for providing clean, renewable energy. This study presents a probabilistic investigation into the sensitivity of CO2 plume geothermal and hydrothermal systems under various reservoir conditions in the Williston Basin, North Dakota. In addition to elucidating the impact of reservoir conditions on system performance, the study utilizes probabilistic methods to assess energy output of CO2 plume geothermal and hydrothermal systems. Insights derived from this probabilistic investigation offer valuable guidance for the working fluid selection, systems design and optimization in the Williston Basin and beyond. Results from the sensitivity analysis reveal the profound influence of reservoir conditions on the behavior and efficiency of CO2 plume geothermal and hydrothermal systems. Our case study on Red River Formation and Deadwood Formations shows a potential of 34% increase and 32% decrease in heat extraction based on varying reservoir conditions. Our investigations in the Beaver Lodge field within the Red River Formation yielded arithmetic mean values for CO2 best case resources, hydrothermal resources and the CO2 worst case as 6.36 × 1018 J, 4.75 × 1018 J and 3.24 × 1018 J, respectively. Overall, this research contributes to advancing the knowledge and understanding of CO2 plume geothermal and hydrothermal systems as viable pathways towards sustainable energy production and carbon sequestration. By highlighting the sensitivity of these systems to reservoir conditions, the study provides valuable insights that can inform decision-making processes and future research endeavours aimed at fostering the transition to a low-carbon energy landscape.
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Eng
Eng
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