Utah FORGE 2-2404: The University of Oklahoma, Application of Advanced Techniques for Determination of Reservoir-Scale Stress State at Utah FORGE - Final Report
This final report summarizes the work done on Utah FORGE project 2-2404. The project aimed to develop a methodology integrating alternative well bore and core-based methods and reservoir-scale focal mechanisms (FM) to better estimate the reservoir stress at FORGE. The project objectives were to apply anelastic strain recovery, differential strain curve analysis, fracture mechanics analysis of drilling-induced cracks and combined them with other wellbore-based sources of stress data available from FORGE (DFIT, flowback, image logs of injection intervals, injection pressure record) to better estimate the near- wellbore stress distribution. Then, the resulting stress field would be inverted together with the reservoir-scale in-situ stress data obtained from a novel interpretation of focal mechanisms to characterize the stress and pore pressure distribution within the reservoir. Integrating these multiple sources of stress data would yield a more reliable estimate of the stress state at the km-scale for use in different FORGE reservoir development activities. The developed methodology can readily be applied to future EGS projects.
Citation Formats
TY - DATA
AB - This final report summarizes the work done on Utah FORGE project 2-2404. The project aimed to develop a methodology integrating alternative well bore and core-based methods and reservoir-scale focal mechanisms (FM) to better estimate the reservoir stress at FORGE. The project objectives were to apply anelastic strain recovery, differential strain curve analysis, fracture mechanics analysis of drilling-induced cracks and combined them with other wellbore-based sources of stress data available from FORGE (DFIT, flowback, image logs of injection intervals, injection pressure record) to better estimate the near- wellbore stress distribution. Then, the resulting stress field would be inverted together with the reservoir-scale in-situ stress data obtained from a novel interpretation of focal mechanisms to characterize the stress and pore pressure distribution within the reservoir. Integrating these multiple sources of stress data would yield a more reliable estimate of the stress state at the km-scale for use in different FORGE reservoir development activities. The developed methodology can readily be applied to future EGS projects.
AU - Ghassemi, Ahmad
DB - Geothermal Data Repository
DP - Open EI | National Laboratory of the Rockies
DO -
KW - geothermal
KW - energy
KW - Utah FORGE
KW - EGS
KW - well bore
KW - core-based
KW - focal mechanisms
KW - reservoir stress
KW - final report
KW - technical report
KW - anelastic strain recovery
KW - differential strain curve
KW - fracture mechanics
KW - drilling-induced cracks
KW - near-wellbore stress
LA - English
DA - 2025/06/30
PY - 2025
PB - The University of Oklahoma
T1 - Utah FORGE 2-2404: The University of Oklahoma, Application of Advanced Techniques for Determination of Reservoir-Scale Stress State at Utah FORGE - Final Report
UR - https://gdr.openei.org/submissions/1811
ER -
Ghassemi, Ahmad. Utah FORGE 2-2404: The University of Oklahoma, Application of Advanced Techniques for Determination of Reservoir-Scale Stress State at Utah FORGE - Final Report. The University of Oklahoma, 30 June, 2025, Geothermal Data Repository. https://gdr.openei.org/submissions/1811.
Ghassemi, A. (2025). Utah FORGE 2-2404: The University of Oklahoma, Application of Advanced Techniques for Determination of Reservoir-Scale Stress State at Utah FORGE - Final Report. [Data set]. Geothermal Data Repository. The University of Oklahoma. https://gdr.openei.org/submissions/1811
Ghassemi, Ahmad. Utah FORGE 2-2404: The University of Oklahoma, Application of Advanced Techniques for Determination of Reservoir-Scale Stress State at Utah FORGE - Final Report. The University of Oklahoma, June, 30, 2025. Distributed by Geothermal Data Repository. https://gdr.openei.org/submissions/1811
@misc{GDR_Dataset_1811,
title = {Utah FORGE 2-2404: The University of Oklahoma, Application of Advanced Techniques for Determination of Reservoir-Scale Stress State at Utah FORGE - Final Report},
author = {Ghassemi, Ahmad},
abstractNote = {This final report summarizes the work done on Utah FORGE project 2-2404. The project aimed to develop a methodology integrating alternative well bore and core-based methods and reservoir-scale focal mechanisms (FM) to better estimate the reservoir stress at FORGE. The project objectives were to apply anelastic strain recovery, differential strain curve analysis, fracture mechanics analysis of drilling-induced cracks and combined them with other wellbore-based sources of stress data available from FORGE (DFIT, flowback, image logs of injection intervals, injection pressure record) to better estimate the near- wellbore stress distribution. Then, the resulting stress field would be inverted together with the reservoir-scale in-situ stress data obtained from a novel interpretation of focal mechanisms to characterize the stress and pore pressure distribution within the reservoir. Integrating these multiple sources of stress data would yield a more reliable estimate of the stress state at the km-scale for use in different FORGE reservoir development activities. The developed methodology can readily be applied to future EGS projects.},
url = {https://gdr.openei.org/submissions/1811},
year = {2025},
howpublished = {Geothermal Data Repository, The University of Oklahoma, https://gdr.openei.org/submissions/1811},
note = {Accessed: 2026-05-09}
}
Details
Data from Jun 30, 2025
Last updated Jan 23, 2026
Submitted Jan 22, 2026
Organization
The University of Oklahoma
Contact
Ahmad Ghassemi
Authors
Keywords
geothermal, energy, Utah FORGE, EGS, well bore, core-based, focal mechanisms, reservoir stress, final report, technical report, anelastic strain recovery, differential strain curve, fracture mechanics, drilling-induced cracks, near-wellbore stressDOE Project Details
Project Name Utah FORGE
Project Lead Lauren Boyd
Project Number EE0007080

