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引用次数: 0
摘要
本研究探索了气举系统在增强型地热系统(EGS)中提取地热流体的应用,该系统的储层温度超过\(400^{\circ }\) C (\(752^{\circ }\) F),深度可达15 km (9.3 mi)。使用经过验证的数值压力梯度模型,通过100多个比例实验测试了15种不同的3d打印气体喷射器设计。调查的重点是关键参数,包括淹没比、文丘里面积、孔口尺寸和孔口数量。最佳分离器的文丘里面积为95% and 51 orifices, which increased the flow rate by 24% and efficiency by 30% compared to a baseline design without a sparger. Although partial blockage of orifices reduced performance, it did not critically affect system operation, demonstrating the sparger's robustness. Numerical extrapolation to a 4000 ft deep EGS well indicated that optimized spargers could increase the pressure gradient by 10% on average, resulting in a 30% boost in water production at the same wellhead pressure and injection flow rate as a setup without a sparger. These results highlight the potential for gas lift systems with optimized spargers as an efficient, low-maintenance alternative to conventional pumps in harsh EGS geothermal environments.
Extraction of geothermal fluids from enhanced geothermal systems: optimization of a gas lift sparger
This study explores the application of a gas lift system for extracting geothermal fluids from enhanced geothermal systems (EGS) with reservoir temperatures exceeding \(400^{\circ }\)C (\(752^{\circ }\)F) and depths up to 15 km (9.3 mi). Using a validated numerical pressure gradient model, 15 different 3D-printed gas sparger designs were tested through over 100 scaled experiments. The investigation focused on critical parameters, including the submergence ratio, venturi area, orifice size, and orifice count. The optimal sparger featured a venturi area of 95% and 51 orifices, which increased the flow rate by 24% and efficiency by 30% compared to a baseline design without a sparger. Although partial blockage of orifices reduced performance, it did not critically affect system operation, demonstrating the sparger's robustness. Numerical extrapolation to a 4000 ft deep EGS well indicated that optimized spargers could increase the pressure gradient by 10% on average, resulting in a 30% boost in water production at the same wellhead pressure and injection flow rate as a setup without a sparger. These results highlight the potential for gas lift systems with optimized spargers as an efficient, low-maintenance alternative to conventional pumps in harsh EGS geothermal environments.
Geothermal EnergyEarth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
5.90
自引率
7.10%
发文量
25
审稿时长
8 weeks
期刊介绍:
Geothermal Energy is a peer-reviewed fully open access journal published under the SpringerOpen brand. It focuses on fundamental and applied research needed to deploy technologies for developing and integrating geothermal energy as one key element in the future energy portfolio. Contributions include geological, geophysical, and geochemical studies; exploration of geothermal fields; reservoir characterization and modeling; development of productivity-enhancing methods; and approaches to achieve robust and economic plant operation. Geothermal Energy serves to examine the interaction of individual system components while taking the whole process into account, from the development of the reservoir to the economic provision of geothermal energy.