Field-Validated Two-Phase CFD Modelling of a Utility-Scale Geothermal Steam Ejector : Operational Boundaries and Performance Scaling

dc.contributor.authorMuguruza, Ximena Guardia
dc.contributor.authorGroves, Christine
dc.contributor.authorTesfahunegn, Yonatan Afework
dc.contributor.authorSaevarsdottir, Gudrun Arnbjorg
dc.contributor.authorGudjonsdottir, Maria Sigridur
dc.contributor.departmentDepartment of Engineering
dc.date.accessioned2026-10-09T11:18:01Z
dc.date.available2026-10-09T11:18:01Z
dc.date.issued2026-09
dc.descriptionPublisher Copyright: © 2026 by the authors.en
dc.description.abstractSupersonic ejectors offer a promising solution for extending low-pressure well life and increasing total power output in geothermal plants by entraining low-pressure fluid using a high-pressure primary flow. While steam supersonic ejectors are widely used in industrial applications such as refrigeration, their deployment in geothermal power generation remains largely unexplored, leaving a critical gap in field-validated numerical models for utility-scale two-phase systems. To address this, this study presents a 3D Computational Fluid Dynamics (CFD) framework validated against industrial-scale field tests conducted at the Theistareykir Geothermal Power Plant in Iceland (connecting wells ThG-11 and ThG-15). Four RANS turbulence models (Standard (Formula presented.), RNG (Formula presented.), Realizable (Formula presented.), and (Formula presented.)) were evaluated in ANSYS Fluent using a homogeneous Eulerian wet-steam formulation. The Realizable (Formula presented.) model demonstrated superior accuracy, achieving the lowest absolute error (6.4%) against field data. While non-equilibrium thermodynamic relaxation caused a systematic 8.9–12.6% overprediction in primary motive flow, secondary entrainment predictions closely tracked physical performance, with entrainment ratio errors reaching 0.00% under stable operation. Crucially, the model identifies operational boundaries: while field data places the physical backflow limit at an inlet pressure ratio of (Formula presented.) ((Formula presented.) difference), numerical divergence near zero-entrainment establishes a conservative modelling threshold at (Formula presented.). By defining these physical and numerical limits while quantifying nozzle-sizing safety margins, this work provides a verified benchmark for scaling up CFD models for full-capacity geothermal ejector networks.en
dc.description.versionPeer revieweden
dc.format.extent5063765
dc.format.extent
dc.identifier.citationMuguruza, X G, Groves, C, Tesfahunegn, Y A, Saevarsdottir, G A & Gudjonsdottir, M S 2026, 'Field-Validated Two-Phase CFD Modelling of a Utility-Scale Geothermal Steam Ejector : Operational Boundaries and Performance Scaling', Energies, vol. 19, no. 18, 4478. https://doi.org/10.3390/en19184478en
dc.identifier.doi10.3390/en19184478
dc.identifier.issn1996-1073
dc.identifier.other251157469
dc.identifier.otherc5cc8df9-e20c-487d-b17b-4be38320f959
dc.identifier.other105051958976
dc.identifier.urihttps://hdl.handle.net/20.500.11815/8626
dc.language.isoen
dc.relation.ispartofseriesEnergies; 19(18)en
dc.relation.urlhttps://www.scopus.com/pages/publications/105051958976en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.subjectComputational Fluid Dynamicsen
dc.subjectexperimental validationen
dc.subjectgeothermal applicationsen
dc.subjectnumerical modelsen
dc.subjectsupersonic ejectoren
dc.subjecttwo-phase flowen
dc.subjectRenewable Energy, Sustainability and the Environmenten
dc.subjectFuel Technologyen
dc.subjectEngineering (miscellaneous)en
dc.subjectEnergy Engineering and Power Technologyen
dc.subjectEnergy (miscellaneous)en
dc.subjectControl and Optimizationen
dc.subjectElectrical and Electronic Engineeringen
dc.titleField-Validated Two-Phase CFD Modelling of a Utility-Scale Geothermal Steam Ejector : Operational Boundaries and Performance Scalingen
dc.type/dk/atira/pure/researchoutput/researchoutputtypes/contributiontojournal/articleen

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