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Hydraulic Modeling of Thermal Dynamics in a Generic Reservoir During Pumped Hydropower Operation
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Fluid and Experimental Mechanics.ORCID iD: 0009-0007-0545-5177
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Fluid and Experimental Mechanics.ORCID iD: 0000-0001-9789-6293
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Fluid and Experimental Mechanics.ORCID iD: 0000-0002-8360-9051
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Fluid and Experimental Mechanics.ORCID iD: 0000-0002-1033-0244
2026 (English)In: Environmental Modelling and Assessment, ISSN 1420-2026, E-ISSN 1573-2967, Vol. 31, p. 123-137Article in journal (Refereed) Published
Abstract [en]

In this study, a three-dimensional hydrodynamic model is developed to investigate diurnal thermal dynamics induced by pumped hydropower storage operations. At this stage, the focus is on thermal mixing in a generic reservoir, with the aim of providing a methodology that can be adapted to various reservoir scenarios. Key issues include enhancing the understanding of how numerical grid resolution impacts modeling results and demonstrating a method for conducting mesh studies in standing water bodies influenced by flow fields, such as those generated by pumping. The model, being implemented in Delft3D FM, is designed to simulate the upper reservoir of a pumped hydropower plant under initial conditions of thermal stratification. A systematic mesh study was conducted by varying cell sizes in different directions to evaluate their influence on the modeling results. A Richardson analysis shows that the longitudinal resolution, along the main reservoir direction, has minimal impact, while the vertical and the lateral resolutions are critical to avoid thin layers in the mesh and prevent oscillations and numerical inaccuracies. The research demonstrates that pumped hydropower operations alter the thermal regime in the upper reservoir, leading to thinning and temperature fluctuations in the epilimnion, as well as weakening the thickness and strength of the thermocline. Additionally, these operations promote the formation of a large-scale recirculation zone. The adaptable model framework allows for changes in bathymetry, initial stratification conditions, and pumping scenarios, enabling new insights into general temperature dynamics and mixing patterns. 

Place, publisher, year, edition, pages
Springer Nature, 2026. Vol. 31, p. 123-137
Keywords [en]
Thermal stability, Water temperature, Mesh resolution, Numerical effects
National Category
Fluid Mechanics
Research subject
Fluid Mechanics
Identifiers
URN: urn:nbn:se:ltu:diva-114401DOI: 10.1007/s10666-025-10067-5ISI: 001566153800001Scopus ID: 2-s2.0-105015356104OAI: oai:DiVA.org:ltu-114401DiVA, id: diva2:1991225
Funder
Luleå University of Technology
Note

Full text: CC BY license;

Funder: European Regional Development Fund and the Green Transition North-smart energy systems-project (GTN-SE) (no.20359797);

This article has previously appeared as a manuscript in a thesis.

Available from: 2025-08-22 Created: 2025-08-22 Last updated: 2026-06-30Bibliographically approved
In thesis
1. Hydrodynamic Modeling of Pumped Hydropower Reservoirs: Thermal Dynamics and Ecological Impacts
Open this publication in new window or tab >>Hydrodynamic Modeling of Pumped Hydropower Reservoirs: Thermal Dynamics and Ecological Impacts
2025 (English)Licentiate thesis, comprehensive summary (Other academic)
Abstract [en]

Hydropower remains a flexible and stabilizing component of the energy system, offering substantial storage capacity through large reservoirs and regulated rivers. However, the increasing share of intermittent electricity production from wind and solar in Sweden and neighboring countries challenges Northern Europe’s storage capacity, highlighting the need for new technologies and innovative solutions to secure a sustainable electricity system. Pumped hydropower storage (PHS) is a highly flexible and efficient storage method, yet it is currently only applied at a few locations in Sweden, with an overall minimal installed capacity to date. This implies a potential for future utilization, and thereby a need to investigate the environmental impacts associated with its implementation in detail.

Thermal stratification is a key determinant of lake ecosystem health. Even small shifts in its onset or breakdown can significantly alter ecological processes, influencing nutrient and carbon recycling and, in turn, all higher trophic levels. To investigate how exactly PHS operations affect the temperature regime, a three-dimensional hydrodynamic model was developed to simulate diurnal thermal dynamics induced by pumping. Implemented in Delft3D FM, the model represents the upper reservoir of a PHS plant under initial conditions of thermal stratification. Paper A presents a methodology for setting up a generic model for Swedish PHS reservoirs, making it a versatile tool for comparative studies in Sweden and internationally.

Using this framework, Paper B numerically analyzes how PHS operations influence thermal stratification and examines how the initial thermocline phenology shapes ecological effects. It demonstrates that thermocline phenology may influence the ecological response of the reservoir by determining the extent of vertical mixing and thereby nutrient redistribution and oxygen availability. Further, in Paper C, a full factorial experimental design is employed to systematically assess the relative influence of initial thermal conditions, pumping characteristics such as flow rate, elevation and temperature and reservoir morphometry.

The results provide new insights into the thermal responses of PHS reservoirs and their potential ecological impacts on aquatic ecosystems. This understanding supports the identification of ecological worst-case scenarios and informs strategies for the design and management of PHS systems to minimize environmental impacts while enhancing energy system resilience.

Place, publisher, year, edition, pages
Luleå: Luleå University of Technology, 2025
Series
Licentiate thesis / Luleå University of Technology, ISSN 1402-1757
Keywords
Numerical Modeling, Ecohydraulics, Thermal Dynamics, Lake Ecosystem, Thermal Stratification, Hydraulic Modeling
National Category
Fluid Mechanics
Research subject
Fluid Mechanics
Identifiers
urn:nbn:se:ltu:diva-114404 (URN)978-91-8048-877-8 (ISBN)978-91-8048-878-5 (ISBN)
Presentation
2025-10-17, E632, Luleå University of Technology, Luleå, 09:00 (English)
Opponent
Supervisors
Available from: 2025-08-22 Created: 2025-08-22 Last updated: 2025-10-21Bibliographically approved

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Sattelmeier, MelinaAndersson, Anders G.Hellström, J. Gunnar I.Lundström, T. Staffan

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