TY - JOUR
T1 - Continuous Control Set Model Predictive Control of Modular Multilevel Matrix Converters for Low-frequency AC Transmission
AU - Uriarte, Matias
AU - Cardenas-Dobson, Roberto
AU - Arias-Esquivel, Yeiner
AU - Diaz, Matias
AU - Gomis-Bellmunt, Oriol
N1 - Publisher Copyright:
© IEEE. 2013 State Grid Electric Power Research Institute.
PY - 2025
Y1 - 2025
N2 - This paper proposes a continuous control set model predictive control (CCS-MPC) algorithm of a modular multilevel matrix converter (M3C) for low-frequency AC transmission (LFAC), via which the offshore wind farm (OWF) is integrated. The M3C is operated with a 16.7 Hz frequency at the OWF side and a 50 Hz frequency at the onshore grid side. The balance of the capacitor voltages and the regulation of circulating currents in the M3C are performed using the proposed CCS-MPC algorithm, which is based on the online solution of a cost function with constraints. Simulation and experimental work (with a 5 kW M3C prototype) are provided, showing the performance of the LFAC system to operate with symmetrical and asymmetrical voltage dips, active and reactive power steps, and optimal limitation of currents and voltages using constraints. Unlike previous publications, the predictive control system in this paper allows seamless operation under balanced and unbalanced conditions, for instance, during asymmetrical voltage dips.
AB - This paper proposes a continuous control set model predictive control (CCS-MPC) algorithm of a modular multilevel matrix converter (M3C) for low-frequency AC transmission (LFAC), via which the offshore wind farm (OWF) is integrated. The M3C is operated with a 16.7 Hz frequency at the OWF side and a 50 Hz frequency at the onshore grid side. The balance of the capacitor voltages and the regulation of circulating currents in the M3C are performed using the proposed CCS-MPC algorithm, which is based on the online solution of a cost function with constraints. Simulation and experimental work (with a 5 kW M3C prototype) are provided, showing the performance of the LFAC system to operate with symmetrical and asymmetrical voltage dips, active and reactive power steps, and optimal limitation of currents and voltages using constraints. Unlike previous publications, the predictive control system in this paper allows seamless operation under balanced and unbalanced conditions, for instance, during asymmetrical voltage dips.
KW - AC network
KW - Modular multilevel matrix converter (M3C)
KW - continuous control set
KW - low-frequency AC transmission (LFAC)
KW - model predictive control
KW - offshore wind farm (OWF)
UR - https://www.scopus.com/pages/publications/105012398980
U2 - 10.35833/MPCE.2024.000654
DO - 10.35833/MPCE.2024.000654
M3 - Artículo
AN - SCOPUS:105012398980
SN - 2196-5625
VL - 13
SP - 1468
EP - 1480
JO - Journal of Modern Power Systems and Clean Energy
JF - Journal of Modern Power Systems and Clean Energy
IS - 4
ER -