Numerical Investigations on the Doublet Huff and Puff Technology to Extract Heat from the Geothermal Reservoirs and Storing of CO2

Manojkumar Gudala, Zeeshan Tariq, B. Yan, Shuyu Sun
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Abstract

In this work, we studied the implementation of huff and puff technology to extract heat from the geothermal reservoir. Two-dimensional numerical investigations were carried out using a fully coupled two-phase thermo-hydro-mechanical model with dynamic rock and fluid properties. COMSOL Multiphysics (a finite element solver) was utilized to build the model. The CO2 geofluid is injected in a supercritical state in a water-saturated geothermal reservoir. The results were showing promising for the extraction of heat and storing of CO2. In the simulation model, we designed a well pair (two-vertical wells) system with two different operating perforations in the same well with huff and puff cycle operation, and this technology is named as Doublet Huff and Puff (DHP). Injection wells operating at the top of the formation and production wells are operating at the bottom. The injection well-1 and production well-1 are operating at same time (i.e., 2 years). During this period, injection well-2 and production well-2 are ideal, and injection well-1 and production well-1 are ideal while operating injection well-2 and production well-2. This process is continued till the whole reservoir is saturated with the injected CO2 and/or the reservoir temperature reaches 60 % (i.e., geothermal reservoir life) of its original temperature. The CO2 plume expanding throughout the reservoir effectively while extracting heat from the reservoir. The sensitivity of well distance, injection temperature, injection velocity, and perforation length on the production temperature was investigated. The production temperature stays stable and high for a long time and no influence on the production temperature. Thus, the proposed technique (DHP) can be implemented for sequestering large amounts of CO2 along with heat extraction in geothermal reservoirs.
地热储层抽热与CO2封存的双态吞吐技术数值研究
在本工作中,我们研究了利用吞吐技术从地热储层中提取热量。采用具有岩石和流体动态特性的完全耦合的两相热-水-力学模型进行了二维数值研究。利用有限元求解器COMSOL Multiphysics建立模型。在饱和水地热储层中以超临界状态注入CO2地流体。研究结果显示,该技术在提取热量和储存二氧化碳方面前景广阔。在模拟模型中,我们设计了一对井(两直井)系统,在同一口井中使用两个不同的作业射孔,并进行了吞吐循环作业,该技术被命名为双重吞吐(DHP)技术。注水井在地层顶部作业,生产井在地层底部作业。注水井1和生产水井1同时运行(即2年)。在此期间,注2井和生产井为理想状态,注1井和生产井为理想状态,注2井和生产井为理想状态。这一过程一直持续到整个储层被注入的二氧化碳饱和和/或储层温度达到其原始温度的60%(即地热储层寿命)。二氧化碳羽流在整个储层中有效膨胀,同时从储层中提取热量。研究了井距、注入温度、注入速度和射孔长度对生产温度的敏感性。生产温度长时间保持高稳定,对生产温度无影响。因此,所提出的技术(DHP)可以用于在地热储层中隔离大量的二氧化碳和提取热量。
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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