An efficient optimization of well placement and control for a geothermal prospect under geological uncertainty

•An efficient optimization framework is developed for a realistic geothermal site.•Optimization under various geological uncertainties leads to different results.•Permeability of formation where wells are perforated is most sensitive for optimization.•Water circulation is the primary heat transfer m...

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Bibliographic Details
Published inApplied energy Vol. 137; no. C; pp. 352 - 363
Main Authors Chen, Mingjie, Tompson, Andrew F.B., Mellors, Robert J., Abdalla, Osman
Format Journal Article
LanguageEnglish
Published United Kingdom Elsevier Ltd 01.01.2015
Elsevier
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Summary:•An efficient optimization framework is developed for a realistic geothermal site.•Optimization under various geological uncertainties leads to different results.•Permeability of formation where wells are perforated is most sensitive for optimization.•Water circulation is the primary heat transfer method during production. This study applies an efficient optimization technique based on a multivariate adaptive regression spline (MARS) technique to determine the optimal design and engineering of a potential geothermal production operation at a prospect near Superstition Mountain in Southern California, USA. The faster MARS-based statistical model is used as a surrogate for higher-fidelity physical models within the intensive optimization process. Its use allows for the exploration of the impacts of specific engineering design parameters in the context of geologic uncertainty as a means to both understand and maximize profitability of the production operation. The MARS model is initially developed from a training dataset generated by a finite set of computationally complex hydrothermal models applied to the prospect. Its application reveals that the optimal engineering design variables can differ considerably assuming different choices of hydrothermal flow properties, which, in turn, indicates the importance of reducing the uncertainty of key geologic properties. The major uncertainty sources in the natural-system are identified and ranked first by an efficient MARS-enabled total order sensitivity quantification, which is then used to assist evaluating the effect of geological uncertainties on optimized results. At the Southern California prospect, this parameter sensitivity analysis suggests that groundwater circulation through high permeable structures, rather than heat conduction through impermeable granite, is the primary heat transfer method during geothermal extraction. Reservoir histories simulated using optimal parameters with different constraints are analyzed and compared to investigate the longevity and maximum profit of the geothermal resources. The comparison shows that the longevity and profit are very likely to be overestimated by optimizations without appropriate constraints on natural conditions. In addition to geothermal energy production, this optimization approach can also be used to manage other geologic resource operations, such as hydrocarbon production or CO2 sequestration, under uncertain reservoir conditions.
Bibliography:USDOE Office of Energy Efficiency and Renewable Energy (EERE), Renewable Power Office. Geothermal Technologies Office
AC52-07NA27344; EE24675
ISSN:0306-2619
1872-9118
DOI:10.1016/j.apenergy.2014.10.036