Impact of Geothermal District Heating System on Flexibility of Microgrid in Tuttle, Oklahoma: Preprint
Flexibility is the capability of the power grid to maintain a balance between electricity generation and variable demand. This study presents preliminary results evaluating the impact of geothermal district heating systems on the flexibility of a conceptual microgrid in Tuttle, Oklahoma. Heating demand profiles were modeled using EnergyPlus for the district that includes two schools and 250 single-family houses. Then, geothermal energy production was modeled using GEOPHIRES to estimate how much heating demand in the district can be supplied by five different geothermal system scenarios. The results indicated that geothermal energy production varied depending on the resource temperature at different depths, system configurations, and flow rates. For the grid flexibility analysis, electricity consumptions in the five geothermal systems were estimated for pump operations to circulate water from the wells to radiators, while electricity consumption by air-source heat pump in the base case was estimated to supply the same heating load. Electricity consumption in the geothermal systems was significantly lower than those in base cases. The electricity saved by the geothermal system was then incorporated into the microgrid electrical load profiles where variable renewable electricity generation is significantly high. The results visually showed that geothermal district heating system can improve grid flexibility as a baseload during the winter season. The results also highlighted potential opportunities to save energy costs that will be further analyzed in future study.
Citation Formats
TY - DATA
AB - Flexibility is the capability of the power grid to maintain a balance between electricity generation and variable demand. This study presents preliminary results evaluating the impact of geothermal district heating systems on the flexibility of a conceptual microgrid in Tuttle, Oklahoma. Heating demand profiles were modeled using EnergyPlus for the district that includes two schools and 250 single-family houses. Then, geothermal energy production was modeled using GEOPHIRES to estimate how much heating demand in the district can be supplied by five different geothermal system scenarios. The results indicated that geothermal energy production varied depending on the resource temperature at different depths, system configurations, and flow rates. For the grid flexibility analysis, electricity consumptions in the five geothermal systems were estimated for pump operations to circulate water from the wells to radiators, while electricity consumption by air-source heat pump in the base case was estimated to supply the same heating load. Electricity consumption in the geothermal systems was significantly lower than those in base cases. The electricity saved by the geothermal system was then incorporated into the microgrid electrical load profiles where variable renewable electricity generation is significantly high. The results visually showed that geothermal district heating system can improve grid flexibility as a baseload during the winter season. The results also highlighted potential opportunities to save energy costs that will be further analyzed in future study.
AU - Oh, Hyunjun
A2 - Ho, Jonathan
A3 - Marroquin, Isaias
A4 - Bonnema, Eric
A5 - Hu, Zeming
A6 - Salehi, Saeed
A7 - Nygaard, Runar
DB - C-MIX - Community Microgrid Information Exchange
DP - Open EI | National Laboratory of the Rockies
DO -
KW - Geothermal
KW - Thermal energy systems
KW - TENs
KW - District energy
KW - Battery energy storage
KW - Solar
KW - Photovoltaics
KW - PV
KW - Case studies
KW - Performance
KW - Maintenance and operations
KW - Operations
KW - Maintenance
KW - Commissioning
KW - Planning and design
KW - Planning
KW - Design
LA - English
DA - 2024/10/01
PY - 2024
PB - NLR
T1 - Impact of Geothermal District Heating System on Flexibility of Microgrid in Tuttle, Oklahoma: Preprint
UR - https://cmix.openei.org/submissions/95
ER -
Oh, Hyunjun, et al. Impact of Geothermal District Heating System on Flexibility of Microgrid in Tuttle, Oklahoma: Preprint. NLR, 1 October, 2024, C-MIX - Community Microgrid Information Exchange. https://cmix.openei.org/submissions/95.
Oh, H., Ho, J., Marroquin, I., Bonnema, E., Hu, Z., Salehi, S., & Nygaard, R. (2024). Impact of Geothermal District Heating System on Flexibility of Microgrid in Tuttle, Oklahoma: Preprint. [Data set]. C-MIX - Community Microgrid Information Exchange. NLR. https://cmix.openei.org/submissions/95
Oh, Hyunjun, Jonathan Ho, Isaias Marroquin, Eric Bonnema, Zeming Hu, Saeed Salehi, and Runar Nygaard. Impact of Geothermal District Heating System on Flexibility of Microgrid in Tuttle, Oklahoma: Preprint. NLR, October, 1, 2024. Distributed by C-MIX - Community Microgrid Information Exchange. https://cmix.openei.org/submissions/95
@misc{CMIX_Dataset_95,
title = {Impact of Geothermal District Heating System on Flexibility of Microgrid in Tuttle, Oklahoma: Preprint},
author = {Oh, Hyunjun and Ho, Jonathan and Marroquin, Isaias and Bonnema, Eric and Hu, Zeming and Salehi, Saeed and Nygaard, Runar},
abstractNote = {Flexibility is the capability of the power grid to maintain a balance between electricity generation and variable demand. This study presents preliminary results evaluating the impact of geothermal district heating systems on the flexibility of a conceptual microgrid in Tuttle, Oklahoma. Heating demand profiles were modeled using EnergyPlus for the district that includes two schools and 250 single-family houses. Then, geothermal energy production was modeled using GEOPHIRES to estimate how much heating demand in the district can be supplied by five different geothermal system scenarios. The results indicated that geothermal energy production varied depending on the resource temperature at different depths, system configurations, and flow rates. For the grid flexibility analysis, electricity consumptions in the five geothermal systems were estimated for pump operations to circulate water from the wells to radiators, while electricity consumption by air-source heat pump in the base case was estimated to supply the same heating load. Electricity consumption in the geothermal systems was significantly lower than those in base cases. The electricity saved by the geothermal system was then incorporated into the microgrid electrical load profiles where variable renewable electricity generation is significantly high. The results visually showed that geothermal district heating system can improve grid flexibility as a baseload during the winter season. The results also highlighted potential opportunities to save energy costs that will be further analyzed in future study.},
url = {https://cmix.openei.org/submissions/95},
year = {2024},
howpublished = {C-MIX - Community Microgrid Information Exchange, NLR, https://cmix.openei.org/submissions/95},
note = {Accessed: 2026-08-05}
}
Details
Data from Oct 1, 2024
Last updated Mar 30, 2026
Submitted Jun 2, 2026
Organization
NLR
Contact
Hyunjun Oh

