TY - GEN
T1 - Dynamic Frequency Regulation Improvement in Hydropower-Hybrid System using Variational Mode Decomposition
AU - Singh, Vivek Kumar
AU - Banerjee, Abhishek
AU - Shafiul Alam, S. M.
AU - Mosier, Thomas M.
N1 - Funding Information:
1Acknowledgement: This manuscript has been authored by Battelle Energy Alliance, LLC under Contract No. DE-AC07-05ID14517 with the U.S. Department of Energy. Work supported through the U.S. Department of Energy Water Power Technology Office HydroWIRES Initiative.
Publisher Copyright:
© 2022 IEEE.
PY - 2022
Y1 - 2022
N2 - Providing frequency response, especially fast frequency response such as Red D in the Pennsylvania-New Jersey-Maryland Interconnection (PJM) market, is challenging for many generation plants to deliver on their own. If they have adequate flexibility, hydropower plants are typically able to provide slower regulation support (e.g., Reg A in PJM), but do not respond fast enough to provide Reg D. The ability to provide Reg D would improve their revenue because this service is typically more valuable. This work presents a control approach to use hydropower, battery, and ultracapacitor systems to provide fast regulation in a way that uses the response contribution of each asset. In particular, the proposed control architecture applies a variational mode decomposition (VMD) technique on the incoming Reg D signal to extract multiple dynamic-regulation components with non-overlapping frequencies. With the response-speed dependent alignment, these regulation components are fed to the hydrogenator and hybrid energy storage system (HESS). The paper evaluates the proposed approach on a direct-current (DC)-coupled active system by computing several performance measures and analyzing sensitivity based on HESS component proportional capacities. The results reveal that the proposed VMD-based signal conditioning performs well and that optimizing the sizing of the battery and ultracapactor components further enhances performance.
AB - Providing frequency response, especially fast frequency response such as Red D in the Pennsylvania-New Jersey-Maryland Interconnection (PJM) market, is challenging for many generation plants to deliver on their own. If they have adequate flexibility, hydropower plants are typically able to provide slower regulation support (e.g., Reg A in PJM), but do not respond fast enough to provide Reg D. The ability to provide Reg D would improve their revenue because this service is typically more valuable. This work presents a control approach to use hydropower, battery, and ultracapacitor systems to provide fast regulation in a way that uses the response contribution of each asset. In particular, the proposed control architecture applies a variational mode decomposition (VMD) technique on the incoming Reg D signal to extract multiple dynamic-regulation components with non-overlapping frequencies. With the response-speed dependent alignment, these regulation components are fed to the hydrogenator and hybrid energy storage system (HESS). The paper evaluates the proposed approach on a direct-current (DC)-coupled active system by computing several performance measures and analyzing sensitivity based on HESS component proportional capacities. The results reveal that the proposed VMD-based signal conditioning performs well and that optimizing the sizing of the battery and ultracapactor components further enhances performance.
KW - DC-coupled system
KW - battery
KW - energy storage system
KW - hydropower
KW - regulation services
KW - ultracapacitor
KW - variational mode decomposition
UR - https://www.scopus.com/pages/publications/85135293168
UR - https://www.mendeley.com/catalogue/89252156-be29-3f45-a8f5-a6fca066c5fc/
U2 - 10.1109/TD43745.2022.9816862
DO - 10.1109/TD43745.2022.9816862
M3 - Conference contribution
AN - SCOPUS:85135293168
SN - 9781665443296
T3 - Proceedings of the IEEE Power Engineering Society Transmission and Distribution Conference
BT - 2022 IEEE/PES Transmission and Distribution Conference and Exposition, T and D 2022
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2022 IEEE/PES Transmission and Distribution Conference and Exposition, T and D 2022
Y2 - 25 April 2022 through 28 April 2022
ER -