4.3 Article

Geothermal Energy Exploitation and Power Generation via a Single Vertical Well Combined with Hydraulic Fracturing

Journal

JOURNAL OF ENERGY ENGINEERING
Volume 148, Issue 1, Pages -

Publisher

ASCE-AMER SOC CIVIL ENGINEERS
DOI: 10.1061/(ASCE)EY.1943-7897.0000809

Keywords

Geothermal energy exploitation; Single vertical well; Hydraulic fracturing; Heat transfer in the wellbore and reservoir; Geothermal power generation; Economic analysis

Funding

  1. National Key Research and Development (R&D) Programs of China [2019YFB1504203, 2019YFB1504204]
  2. Fundamental Research Funds for the Central Universities, China University of Geosciences (Wuhan) [CUGGC09, CUG200637]
  3. Opening Fund of Key Laboratory of Unconventional Oil & Gas Development [China University of Petroleum (East China)], Ministry of Education [19CX05005A-201]
  4. Open Research Fund Program of Engineering Research Center of Rock-Soil Drilling & Excavation and Protection, Ministry of Education [202104]

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This study proposes a method of single vertical well combined with hydraulic fracturing to improve the efficiency of geothermal exploitation. The results show that significant net power outputs can be obtained by using single-flash, double-flash, and flash-organic Rankine cycle geothermal power generation systems under appropriate operating conditions. The study also highlights the important effects of mining methods, circulation flow rate, and characteristics of thermal-insulating tubings on heat mining.
A method of single vertical well combined with hydraulic fracturing is proposed to prevent short circuits and enhance heat mining. The technical and economic feasibilities of geothermal energy exploitation from a deep reservoir are analyzed based on this method. A simulation model was established to analyze the coupled heat transfer between wellbore and reservoir, and then thermodynamic performances and economic analyses of single-flash, double-flash, and flash-organic Rankine cycle geothermal power generation systems were carried out. Simulation results indicate that the heat mining rate can maintain above 3 MW after 40 years of exploitation from the reservoir with 235 degrees C using a water circulation rate of 432 m(3)/day. A combination of large horizontal permeability, high circulation flow rate, and excellent thermal-insulating tubings favors high heat mining. Thermodynamic cycle analyses show that the net power outputs from the single-flash, double-flash, and flash-organic Rankine cycle systems under the optimal condition are 513, 646, and 627.8 kW, respectively. Correspondingly, the geothermal power generation cost ranges from S0.086/kWh to $0.095/kWh, which is a little higher than the conventional power generation cost. Double-flash or flash-organic Rankine cycle is suggested to be installed for geothermal power generation if more electricity is needed. (C) 2021 American Society of Civil Engineers.

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