Optimizing Deep Geothermal Drilling for Energy Sustainability in the Appalachian Basin

被引:0
|
作者
Fathi, Ebrahim [1 ]
Dongho, Georges Brown Liwuitekong [1 ]
Heidari, Babak [1 ]
Carr, Timothy R. [2 ]
Belyadi, Fatemeh [3 ]
Bilgesu, Ilkin [1 ]
机构
[1] West Virginia Univ, Dept Petr & Nat Gas Engn, Morgantown, WV 26506 USA
[2] West Virginia Univ, Dept Geol & Geog, Morgantown, WV 26506 USA
[3] Obsertelligence LLC, Aubrey, TX 76227 USA
关键词
geothermal well drilling; geomechanical modeling; Appalachian Basin; drilling optimization; energy sustainability;
D O I
10.3390/su16188053
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study investigates the geological and geomechanical characteristics of the MIP 1S geothermal well in the Appalachian Basin to optimize drilling and address the wellbore stability issues encountered. Data from well logs, sidewall core analysis, and injection tests were used to derive elastic and rock strength properties, as well as stress and pore pressure profiles. A robust 1D-geomechanical model was developed and validated, correlating strongly with wellbore instability observations. This revealed significant wellbore breakout, widening the diameter from 12 1/4 inches to over 16 inches. Advanced technologies like Cerebro Force (TM) In-Bit Sensing were used to monitor drilling performance with high accuracy. This technology tracks critical metrics such as bit acceleration, vibration in the x, y, and z directions, Gyro RPM, stick-slip indicators, and bending on the bit. Cerebro Force (TM) readings identified hole drag caused by poor hole conditions, including friction between the drill string and wellbore walls and the presence of cuttings or debris. This led to higher torque and weight on bit (WOB) readings at the surface compared to downhole measurements, affecting drilling efficiency and wellbore stability. Optimal drilling parameters for future deep geothermal wells were determined based on these findings.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Assessing the Environmental Sustainability of Deep Geothermal Heat Plants
    Maar, Lilli
    Seifermann, Stefan
    ENERGIES, 2023, 16 (19)
  • [32] Active Cooling of Downhole Instrumentation for Drilling in Deep Geothermal Reservoirs
    Pennewitz, E.
    Schilling, M.
    Kruspe, T.
    Jung, S.
    Ruehs, A.
    2012 IEEE INTERNATIONAL INSTRUMENTATION AND MEASUREMENT TECHNOLOGY CONFERENCE (I2MTC), 2012, : 600 - 603
  • [33] Iceland Deep Drilling Project, Exploration of Supercritical Geothermal Resources
    Stefansson, Bjorn
    Palsson, Bjarni
    Frioleifsson, Guomundur Omar
    2008 IEEE POWER & ENERGY SOCIETY GENERAL MEETING, VOLS 1-11, 2008, : 116 - 122
  • [34] ThermoDrill - Development of an alternative drilling technology for deep geothermal applications
    Stoxreiter, Thomas
    Rehatschek, Karin
    Hofstatter, Herbert
    World of Mining - Surface and Underground, 2019, 71 (05): : 276 - 282
  • [35] DEEP-SEA DRILLING PROJECT GEOTHERMAL MEASUREMENTS - A REVIEW
    HYNDMAN, RD
    LANGSETH, MG
    VONHERZEN, RP
    REVIEWS OF GEOPHYSICS, 1987, 25 (08) : 1563 - 1582
  • [36] Why deep drilling in the Colonia Basin (Brazil)?
    Ledru, M. -P.
    Reimold, W. U.
    Ariztegui, D.
    Bard, E.
    Crosta, A. P.
    Riccomini, C.
    Sawakuchi, A. O.
    SCIENTIFIC DRILLING, 2015, 20 : 33 - 39
  • [37] DEEP WELL-DRILLING IN THE MICHIGAN BASIN
    HARRISON, WB
    BARNES, DA
    LUNDGREN, CE
    WIECZOREK, LA
    AGA 1989 OPERATING SECTION PROCEEDINGS, 1989, : 585 - 592
  • [38] DEEP DRILLING SURGE HITS ANADARKO BASIN
    MCCASLIN, JC
    OIL & GAS JOURNAL, 1980, 78 (31) : 91 - 91
  • [39] The sun affects deep geothermal energy
    He, Jifu
    Li, Kewen
    Wen, Dongguang
    Chen, Yang
    Shi, Yanxin
    Wu, Haidong
    Hao, Wenjie
    Jin, Cong
    RENEWABLE ENERGY, 2025, 245
  • [40] Deep geothermal energy as model for success
    Reinicke, Kurt M.
    Reichetseder, Peter
    Euroheat and Power/Fernwarme International, 2020, 2020 (10): : 14 - 17