Geothermal field development optimization under geomechanical constraints and geological uncertainty: Application to a reservoir with stacked formations

Publication date

2024-11

Authors

Szklarz, S. P.
Barros, E. G.D.
Khoshnevis Gargar, N.
Peeters, S. H.J.
van Wees, J.-D.ISNI 0000000388349372
van Pul-Verboom, V.

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by_nc_nd

Abstract

In this work, numerical optimization based on stochastic gradient methods is used to assist geothermal operators in finding improved field development strategies that are robust to accounted geological uncertainties. Well types, production rate targets and well locations are optimized to maximize the economics of low-enthalpy heat recovery in a real-life case with stacked reservoir formations. Significant improvements are obtained with respect to the strategy designed by engineers. Imposing fault stability constraints impacts significantly the optimal configurations, with coordinated well rates and placement playing a key role to boost efficiency of geothermal production while keeping stress change effects to acceptable limits.

Keywords

Constrained optimization, Fault stability constraints, Field development planning, Optimization under uncertainty, Stacked reservoirs, Renewable Energy, Sustainability and the Environment, Geotechnical Engineering and Engineering Geology, Geology, SDG 7 - Affordable and Clean Energy

Citation

Szklarz, S P, Barros, E G D, Khoshnevis Gargar, N, Peeters, S H J, van Wees, J-D & van Pul-Verboom, V 2024, 'Geothermal field development optimization under geomechanical constraints and geological uncertainty : Application to a reservoir with stacked formations', Geothermics, vol. 123, 103094. https://doi.org/10.1016/j.geothermics.2024.103094