TY - GEN
T1 - Global Sensitivity Analysis of CO2Circulated Geothermal Harvest from a Heterogeneous Reservoir
AU - Chen, Mingjie
AU - Al-Hashimi, Sulaiman
AU - Al-Saadi, Rasha
N1 - Publisher Copyright:
© 2024 The Authors.
PY - 2024
Y1 - 2024
N2 - As geothermal harvest using geologically stored CO2 is an emerging carbon utilization approach, coupled influences of formation heterogeneity, reservoir boundary, and well placement are still unclear. The aim of this study is to address this knowledge gap by a global sensitivity analysis using response surface method. Seven input parameters with specified ranges for both geostatistical and reservoir flow models form a 7-D parameter space, from which 100 input samples are drawn using Latin-Hypercube method. A set of CO2 circulation model with heterogeneous reservoirs are setup using the 100 input samples and simulated. Four performance indicators are defined and derived from each of model simulations. Response Surface (RS) model for each indicator is trained based on the 100 input-indicator dataset. Global sensitivity indices are calculated using RS models, based on which sensitive input parameters for each indicator is identified for continuous sensitivity analysis in 2-D slices of RSs. It is found that the impact of heterogeneity is almost negligible to the four indicators, though it affects fluid and heat spatial distribution. Larger well space can increase lifespan, CO2 storage, and total thermal recovery, but reduce power capacity. Higher injection overpressure can enhance power capacity, but shorten lifespan. Longer well perforation is beneficial to both power capacity and thermal recovery. Y boundary opening degree slightly and positively affects CO2 storage only.
AB - As geothermal harvest using geologically stored CO2 is an emerging carbon utilization approach, coupled influences of formation heterogeneity, reservoir boundary, and well placement are still unclear. The aim of this study is to address this knowledge gap by a global sensitivity analysis using response surface method. Seven input parameters with specified ranges for both geostatistical and reservoir flow models form a 7-D parameter space, from which 100 input samples are drawn using Latin-Hypercube method. A set of CO2 circulation model with heterogeneous reservoirs are setup using the 100 input samples and simulated. Four performance indicators are defined and derived from each of model simulations. Response Surface (RS) model for each indicator is trained based on the 100 input-indicator dataset. Global sensitivity indices are calculated using RS models, based on which sensitive input parameters for each indicator is identified for continuous sensitivity analysis in 2-D slices of RSs. It is found that the impact of heterogeneity is almost negligible to the four indicators, though it affects fluid and heat spatial distribution. Larger well space can increase lifespan, CO2 storage, and total thermal recovery, but reduce power capacity. Higher injection overpressure can enhance power capacity, but shorten lifespan. Longer well perforation is beneficial to both power capacity and thermal recovery. Y boundary opening degree slightly and positively affects CO2 storage only.
KW - CO geothermal
KW - CO storage
KW - heterogeneous reservoir
KW - response surface
KW - sensitivity analysis
UR - http://www.scopus.com/inward/record.url?scp=85214431869&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85214431869&partnerID=8YFLogxK
U2 - 10.3233/ATDE241080
DO - 10.3233/ATDE241080
M3 - Conference contribution
AN - SCOPUS:85214431869
T3 - Advances in Transdisciplinary Engineering
SP - 917
EP - 923
BT - Moving Integrated Product Development to Service Clouds in the Global Economy - Proceedings of the 21st ISPE Inc. International Conference on Concurrent Engineering, CE 2014
A2 - Wang, Zhaofeng
A2 - Yang, Enhui
A2 - Yang, Mijia
A2 - Lanzinha, Joao C.G.
A2 - Sheng, Roberto
PB - IOS Press BV
T2 - 9th International Technical Conference on Frontiers of Hydraulic and Civil Engineering Technology, HCET 2024
Y2 - 25 September 2024 through 27 September 2024
ER -