TY - GEN
T1 - Progress on Geological Thermal Energy Storage Analysis
AU - McTigue, Joshua
AU - Barney, Rebecca
AU - Witter, Erik
AU - Akindipe, Dayo
AU - Atkinson, Trevor
AU - Colldeweih, Rachael
AU - Sonnenthal, Eric
AU - Dwivedi, Dipankar
AU - Adams, Derek
AU - Perez, Gustavo
AU - Umbro, Mike
AU - Lederhos, Jim
AU - Zhu, Guangdong
N1 - Publisher Copyright:
© GRC 2025.All rights reserved.
PY - 2025
Y1 - 2025
N2 - Geological thermal energy storage (GeoTES) utilizes subsurface reservoirs to store thermal energy for power generation and direct-use heating and cooling. GeoTES has emerged as a promising long-duration, grid-scale solution, providing stability and security through flexible operations and valuable grid services. This approach significantly enhances the use of low-temperature reservoirs, which would otherwise be unsuitable for geothermal power plants. It also leverages depleted oil and gas reservoirs, concentrating solar power, variable renewables (photovoltaic and wind), and geothermal-related power cycles. Previous work has indicated that GeoTES has low marginal costs of energy storage capacity, making it particularly competitive for seasonal, grid-scale dispatch. In this article, we will describe progress made by a consortium of national laboratories and industry organizations on the analysis and development of GeoTES. The article will describe the latest techno-economic models which evaluate the cost, performance, and energy storage potential of GeoTES, as well as "demand-led" models that evaluate the potential for long-duration energy storage systems in different energy mix scenarios. We discuss progress made on Thermal-Hydraulic-Mechanical-Chemical subsurface models of specific sites of interest to industry developers and introduce concepts that can be used to develop experimental procedures for analyzing geochemical aspects. We describe industry perspectives which have categorized and characterized a range of risks and mitigation strategies that may impact the deployment of GeoTES.
AB - Geological thermal energy storage (GeoTES) utilizes subsurface reservoirs to store thermal energy for power generation and direct-use heating and cooling. GeoTES has emerged as a promising long-duration, grid-scale solution, providing stability and security through flexible operations and valuable grid services. This approach significantly enhances the use of low-temperature reservoirs, which would otherwise be unsuitable for geothermal power plants. It also leverages depleted oil and gas reservoirs, concentrating solar power, variable renewables (photovoltaic and wind), and geothermal-related power cycles. Previous work has indicated that GeoTES has low marginal costs of energy storage capacity, making it particularly competitive for seasonal, grid-scale dispatch. In this article, we will describe progress made by a consortium of national laboratories and industry organizations on the analysis and development of GeoTES. The article will describe the latest techno-economic models which evaluate the cost, performance, and energy storage potential of GeoTES, as well as "demand-led" models that evaluate the potential for long-duration energy storage systems in different energy mix scenarios. We discuss progress made on Thermal-Hydraulic-Mechanical-Chemical subsurface models of specific sites of interest to industry developers and introduce concepts that can be used to develop experimental procedures for analyzing geochemical aspects. We describe industry perspectives which have categorized and characterized a range of risks and mitigation strategies that may impact the deployment of GeoTES.
KW - borehole thermal energy storage
KW - Geological thermal energy storage
KW - reservoir thermal energy storage
UR - https://www.scopus.com/pages/publications/105029842704
M3 - Conference contribution
AN - SCOPUS:105029842704
T3 - Transactions - Geothermal Resources Council
SP - 810
EP - 824
BT - 2025 Geothermal Rising Conference
PB - Geothermal Resources Council
T2 - 2025 Geothermal Rising Conference: Using the Earth to Save the Earth, GRC 2025
Y2 - 26 October 2025 through 29 October 2025
ER -