Geo-temperature response to reinjection in sandstone geothermal reservoirs

IF 2.9 2区 地球科学 Q3 ENERGY & FUELS Geothermal Energy Pub Date : 2023-12-09 DOI:10.1186/s40517-023-00277-z
Jialong Li, Fengxin Kang, Tong Bai, Zhenhan Li, Qiang Zhao, Pingping Zhang, Tingting Zheng, Haibo Sui
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Abstract

To study the evolution rules and behaviors of heat transport in a sandstone geothermal reservoir caused by cooled water reinjection, this research focuses on the quantitative relationship among reinjection parameters and the thermal breakthrough time of production wells. The permeation, tracer, and reinjection tests were conducted in a simulation model using a large sand tank in conjunction with the numerical simulation method based on COMSOL Multiphysics. Subsequently, sensitivity analysis and nonlinear fitting were performed to investigate the effects of fluid viscosity and density on the reinjection process, and to analyze the impact of reinjection parameters on the thermal breakthrough time of production wells, along with their underlying mechanisms and law. The results indicate that the migration velocity of reinjection water is greater in coarse sand layer compared to that in medium sand layer, and the thermal breakthrough time t is linearly correlated with reinjection rate (Q) raised to the power of − 0.85, temperature difference (ΔT) raised to the power of − 0.21, and spacing between the production and reinjection wells (R) raised to the power of 1.4. The correlation equation and analysis show that when the temperature difference between production and reinjection ΔT is more than 30 ℃, the influence of ΔT on the thermal breakthrough time of production well becomes weak, because ΔT exerts an effect on the thermal breakthrough time of production well t by influencing the relative position of the 18.5 ℃ isotherm in the temperature transition region. The error in reinjecting high-temperature fluid into low-temperature fluid may be corrected by introducing a viscosity correction coefficient αμ.

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砂岩地热储层回注的地质温度响应
为研究冷却水回注导致砂岩地热储层热输运的演化规律和行为,本研究重点关注回注参数与生产井热突破时间之间的定量关系。在模拟模型中使用大型砂罐结合基于 COMSOL Multiphysics 的数值模拟方法进行了渗透、示踪和回注试验。随后进行了敏感性分析和非线性拟合,研究了流体粘度和密度对回注过程的影响,分析了回注参数对生产井热突破时间的影响及其内在机理和规律。结果表明,与中砂层相比,粗砂层的回注水迁移速度更大,热突破时间 t 与回注速度 (Q) 的幂次为 -0.85、温差 (ΔT) 的幂次为 -0.21、生产井与回注井间距 (R) 的幂次为 1.4 呈线性相关。相关方程和分析表明,当生产井和回注井温差 ΔT 大于 30 ℃ 时,ΔT 对生产井热突破时间的影响变弱,因为 ΔT 通过影响 18.5 ℃ 等温线在温度转变区的相对位置来影响生产井 t 的热突破时间。高温流体回注低温流体的误差可以通过引入粘度修正系数 αμ 来纠正。
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来源期刊
Geothermal Energy
Geothermal Energy Earth 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.
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