TY - GEN
T1 - Modeling and Power-Hardware-in-the-Loop Validation of Synchronous Wind
T2 - 2024 IEEE Energy Conversion Congress and Exposition, ECCE 2024
AU - Yan, Weihang
AU - Gevorgian, Vahan
AU - Koralewicz, Przemyslaw
AU - Wallen, Robb
AU - Alam, S. M.Shafiul
AU - Hussain, Tanveer
AU - Gallego-Calderon, Juan
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024/10/20
Y1 - 2024/10/20
N2 - Grid-forming (GFM) control of Type-3 and Type-4 wind turbine generators (WTGs) has attracted substantial attention in power systems research; however, the limited overcurrent capability of power electronics converters continues to deteriorate the grid strength of the evolving power systems. Synchronous wind, also known as a Type-5 WTG, offers a unique GFM solution to address grid integration and grid strength issues by keeping the grid largely synchronous at very high integration levels of renewable generation. A Type-5 WTG interfaces with the electric grid via a synchronous generator driven by a variable-speed hydraulic torque converter; hence, the wind rotor operates in variable-speed mode for maximum power generation, and the generator shaft remains synchronous to the grid. This paper develops and tests a high-fidelity model of a Type-5 WTG in a power-hardware-in-the-loop (PHIL) testing environment. The PHIL demonstration shows that a Type-5 WTG inherently behaves as a GFM unit and can obtain similar performance in terms of power responses, wind rotor dynamics, and efficiency compared to a Type-3 WTG in high-wind conditions. The developed model provides further insight into how Type-5 WTGs can benefit the smooth transition to power systems with high integration levels of inverter-based resources.
AB - Grid-forming (GFM) control of Type-3 and Type-4 wind turbine generators (WTGs) has attracted substantial attention in power systems research; however, the limited overcurrent capability of power electronics converters continues to deteriorate the grid strength of the evolving power systems. Synchronous wind, also known as a Type-5 WTG, offers a unique GFM solution to address grid integration and grid strength issues by keeping the grid largely synchronous at very high integration levels of renewable generation. A Type-5 WTG interfaces with the electric grid via a synchronous generator driven by a variable-speed hydraulic torque converter; hence, the wind rotor operates in variable-speed mode for maximum power generation, and the generator shaft remains synchronous to the grid. This paper develops and tests a high-fidelity model of a Type-5 WTG in a power-hardware-in-the-loop (PHIL) testing environment. The PHIL demonstration shows that a Type-5 WTG inherently behaves as a GFM unit and can obtain similar performance in terms of power responses, wind rotor dynamics, and efficiency compared to a Type-3 WTG in high-wind conditions. The developed model provides further insight into how Type-5 WTGs can benefit the smooth transition to power systems with high integration levels of inverter-based resources.
KW - Synchronous wind
KW - Type-5
KW - grid strength
KW - grid-forming control
KW - power-hardware-in-the-loop
UR - https://www.scopus.com/pages/publications/86000481039
UR - https://www.mendeley.com/catalogue/d5d41ef0-38e3-3e7e-bc1a-fe71bb8f7075/
U2 - 10.1109/ECCE55643.2024.10861051
DO - 10.1109/ECCE55643.2024.10861051
M3 - Conference contribution
AN - SCOPUS:86000481039
SN - 9798350376067
T3 - 2024 IEEE Energy Conversion Congress and Exposition, ECCE 2024 - Proceedings
SP - 522
EP - 529
BT - 2024 IEEE Energy Conversion Congress and Exposition, ECCE 2024 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
Y2 - 20 October 2024 through 24 October 2024
ER -