TY - JOUR
T1 - Communicationless Adaptive Control Strategy for Effective Reactive Power Sharing in a Grid-Independent AC Microgrid
AU - Suchitra, D.
AU - Anitha, D.
AU - George Fernandez, S.
AU - Alaas, Zuhair Muhammed
AU - Ali, Ziad M.
AU - Abdel Aleem, Shady H.E.
N1 - Publisher Copyright:
Copyright © 2022 D, D, S, Alaas, Ali and Abdel Aleem.
PY - 2022/7/15
Y1 - 2022/7/15
N2 - The microgrid (MG) ensures a reliable power supply as it can work in a grid-independent mode. This mode requires a coordinated control strategy among distributed generators (DGs). One major challenge in a grid-independent MG is the reactive power-sharing issue. The reactive power sharing is affected by the mismatch of feeder impedance and private loads. This study thus proposed a proportionate reactive power-sharing scheme in a grid-independent mode by mathematically computing the equivalent impedance without the need for communication lines. A mathematical formula is derived to compute the equivalent impedance as a function of the total power output of DG and the power fed to the feeder. Based on the computed equivalent impedance, the virtual impedance is added to each feeder. The inclusion of virtual impedance in each line compensates the mismatch in feeder impedance and private loads providing accurate reactive power sharing among DGs. MATLAB Simulink was used to verify the effectiveness of the proposed control strategy. Furthermore, the real-time OPAL-RT simulator was used to verify the results.
AB - The microgrid (MG) ensures a reliable power supply as it can work in a grid-independent mode. This mode requires a coordinated control strategy among distributed generators (DGs). One major challenge in a grid-independent MG is the reactive power-sharing issue. The reactive power sharing is affected by the mismatch of feeder impedance and private loads. This study thus proposed a proportionate reactive power-sharing scheme in a grid-independent mode by mathematically computing the equivalent impedance without the need for communication lines. A mathematical formula is derived to compute the equivalent impedance as a function of the total power output of DG and the power fed to the feeder. Based on the computed equivalent impedance, the virtual impedance is added to each feeder. The inclusion of virtual impedance in each line compensates the mismatch in feeder impedance and private loads providing accurate reactive power sharing among DGs. MATLAB Simulink was used to verify the effectiveness of the proposed control strategy. Furthermore, the real-time OPAL-RT simulator was used to verify the results.
KW - communicationless control
KW - equivalent impedance
KW - grid-independent microgrid
KW - reactive power sharing
KW - virtual impedance
UR - http://www.scopus.com/inward/record.url?scp=85135171199&partnerID=8YFLogxK
U2 - 10.3389/fenrg.2022.946872
DO - 10.3389/fenrg.2022.946872
M3 - Article
AN - SCOPUS:85135171199
SN - 2296-598X
VL - 10
JO - Frontiers in Energy Research
JF - Frontiers in Energy Research
M1 - 946872
ER -