TY - GEN
T1 - Hydropower Evaluation Framework for Wildfire Resilient Microgrids
AU - Poudel, Bikash
AU - Alam, S. M.Shafiul
AU - Medam, Anudeep
AU - Gallego-Dias, Fernando
AU - McJunkin, Timothy
N1 - Funding Information:
Authored by Battelle Energy Alliance, LLC under Contract No. DE-AC07-05ID14517 with the U.S. Department of Energy (DOE). Work supported through the DOE Water Power Technology Office HydroWIRES Initiative.
Publisher Copyright:
© 2023 IEEE.
PY - 2023/9/25
Y1 - 2023/9/25
N2 - The increasing occurrence and severity of wildfires in recent years is severely impacting critical infrastructures, including the power grid, compromising the quality of life and provision of essential services, including electricity. The western parts of the United States, more specifically Washington, Oregon, and California, which are prone to large wildfires, are also rich in hydropower resources. Hydropower resources located close to communities vulnerable to wildfire can be utilized to develop wildfire-resilient microgrids to support critical needs of those communities. Therefore, this paper develops a framework to characterize hydropower plants and evaluate their feasibility to operate in microgrids during wildfire-related outages. In the proposed framework, hydropower plants are characterized using various plant and site attributes and evaluated in terms of capability and performance indicative metrics. A case study is carried out evaluating the Hills Creek hydropower plant located in a wildfire-prone region of Oregon for wildfire-resilient microgrid. The results of steady-state and dynamic simulations show that the hydropower plant is capable of providing the essential microgrid services and powering nearby communities during extended wildfire-related outages.
AB - The increasing occurrence and severity of wildfires in recent years is severely impacting critical infrastructures, including the power grid, compromising the quality of life and provision of essential services, including electricity. The western parts of the United States, more specifically Washington, Oregon, and California, which are prone to large wildfires, are also rich in hydropower resources. Hydropower resources located close to communities vulnerable to wildfire can be utilized to develop wildfire-resilient microgrids to support critical needs of those communities. Therefore, this paper develops a framework to characterize hydropower plants and evaluate their feasibility to operate in microgrids during wildfire-related outages. In the proposed framework, hydropower plants are characterized using various plant and site attributes and evaluated in terms of capability and performance indicative metrics. A case study is carried out evaluating the Hills Creek hydropower plant located in a wildfire-prone region of Oregon for wildfire-resilient microgrid. The results of steady-state and dynamic simulations show that the hydropower plant is capable of providing the essential microgrid services and powering nearby communities during extended wildfire-related outages.
KW - Wildfire
KW - hydropower
KW - microgrids
KW - resilience
UR - https://www.scopus.com/pages/publications/85174739855
UR - https://www.mendeley.com/catalogue/09b03264-a498-307c-850f-08222340bb2d/
U2 - 10.1109/PESGM52003.2023.10253203
DO - 10.1109/PESGM52003.2023.10253203
M3 - Conference contribution
AN - SCOPUS:85174739855
SN - 9781665464413
T3 - IEEE Power and Energy Society General Meeting
BT - 2023 IEEE Power and Energy Society General Meeting, PESGM 2023
PB - IEEE Computer Society
T2 - 2023 IEEE Power and Energy Society General Meeting, PESGM 2023
Y2 - 16 July 2023 through 20 July 2023
ER -