Applied thermal engineering2022,Vol.21517.DOI:10.1016/j.applthermaleng.2022.118919

The enhanced geothermal system heat mining prediction based on fracture propagation simulation of thermo-hydro-mechanical-damage coupling: Insight from the integrated research of heat mining and supercritical CO_2 fracturing

Wei Zhang Zenglin Wang Tiankui Guo Chunguang Wang Fengming Li Zhanqing Qu
Applied thermal engineering2022,Vol.21517.DOI:10.1016/j.applthermaleng.2022.118919

The enhanced geothermal system heat mining prediction based on fracture propagation simulation of thermo-hydro-mechanical-damage coupling: Insight from the integrated research of heat mining and supercritical CO_2 fracturing

Wei Zhang 1Zenglin Wang 2Tiankui Guo 2Chunguang Wang 1Fengming Li 3Zhanqing Qu2
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作者信息

  • 1. College of Energy and Mining Engineering, Shandong University of Science and Tenchnology
  • 2. Key Laboratory of Unconventional Oil & Gas Development (China University of Petroleum (East China)), Ministry of Education
  • 3. New-energy development center of Shengli Oilfield
  • 折叠

Abstract

Due to the two key stages involving the enhanced geothermal system (EGS) development: the HDR fracturing stage and the EGS heat mining stage after fracturing, it is necessary to conduct the integrated research of heat mining and EGS fracturing for the accurate prediction of EGS productivity. Based on the THM-D coupling, we carry out the field-scale fracture propagation of HDR, and then launch the research on heat mining evaluation based on the obtained fracture morphology. Firstly, the fracture morphology and the corresponding heat mining performance obtained by hydraulic and SCO_2 fracturing are compared by synchronous fracturing of doublet-well. Subsequently, the impact of fracturing procedure, duration, velocity and in-situ stress on fracture propagation of SCO_2 fracturing and the EGS heat mining performance after fracturing is studied. The results show that the SCO_2 fracturing can reduce the fracture connection time by 77.01% and increase the damage area of 16.1% compared with hydraulic fracturing. Compared with asynchronous fracturing, the synchronous fracturing can save the fracturing time by 51.2% and increase the fracture surface area by 5.99%. The increase of 10 MPa in horizontal stress difference enhances the fracture surface area by 1.37%, the corresponding heat mining rate increase by 7.01%.

Key words

Hot dry rock/SCO_2 fracturing/fracture propagation/heat mining performance/THM-D coupling

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量8
参考文献量61
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