论文标题

使用超临界二氧化碳和水作为工作流体从Soultz-sous-Forêts地热场提取热量的比较研究的数值模拟

Numerical simulation of a comparative study on heat extraction from Soultz-sous-Forêts geothermal field using supercritical carbon dioxide and water as a working fluid

论文作者

Singh, Mrityunjay, Mahmoodpour, Saeed, Ershadnia, Reza, Soltanian, Mohamad Reza, Sass, Ingo

论文摘要

地热能是当前人类社会的无限能源。从深度地下提取能量需要使用在井双线之间循环的工作流体进行工程。由于其热特性,CO2是作为传热液的理想选择。通过使用CO2,与其他工作流体相比,工作流体损失是一个优势。这项研究开发了一种现场尺度的水力热模型,以检查以二氧化碳作为工作流体的soultz-sous-forêts的热萃取潜力。将结果与水流与工作流体相同的情况进行比较。通过考虑储层响应和井眼热交换,可以更好地理解对热提取机制的理解。对不同的注射温度和流速进行了50年的敏感性分析。结果表明,井眼效应比储层对生产温度的响应高多次。此外,降低注入温度会在地下下降到较小的温度降低,从而增强了整体热提取潜力,对热突破的影响很小。注射孔周围发生的冷区域可能会影响生产流体温度,因为它靠近生产井眼。为了达到较高的萃取效率,必须使用足够的井眼间距。 CO2可以用作工作流体超过50年,因为它在研究条件下没有显示出储层中的明显热突破和温度羽流的演化。二氧化碳显示所有注射率和50年操作温度的温度降低。

Geothermal energy is an infinite energy source for the present human society. Energy extraction from the deep subsurface requires engineering using a working fluid that circulates between well doublet. Due to its thermal properties, CO2 is an ideal option as a heat transfer fluid. By using CO2, working fluid loss is an advantage compared to other working fluids. This study developed a field-scale hydro-thermal model to examine the heat extraction potential from Soultz-sous-Forêts with CO2 as the working fluid. Results are compared for the same scenario with water as the working fluid. A better understanding of the heat extraction mechanism is established by considering the reservoir response and the wellbore heat exchange. Sensitivity analyses are performed for different injection temperatures and flow rates for 50 years. Results show that the wellbore effect is multiple times higher than the reservoir response to the production temperature. Furthermore, lowering the injection temperature eventuates to a smaller temperature reduction at the subsurface, enhancing the overall heat extraction potential with a minor impact on thermal breakthrough. The cold region developed around the injection wellbore may affect the production fluid temperature due to its proximity to the production wellbore. To reach higher heat extraction efficiency, it is essential to use sufficient wellbore spacing. CO2 can be used as working fluid for over 50 years as it does not show significant thermal breakthrough and temperature plume evolution in the reservoir under studied conditions. CO2 shows lower temperature reduction for all injection rates and temperatures for 50 years of operation.

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