TY - JOUR
T1 - A Consensus-Based Adaptive Virtual Output Impedance Control Scheme for Reactive Power Sharing in Radial Microgrids
AU - Wong, Yi Chyn Cassandra
AU - Lim, Chee Shen
AU - Cruden, Andrew
AU - Rotaru, Mihai Dragos
AU - Ray, Pravat Kumar
N1 - Publisher Copyright:
© 1972-2012 IEEE.
PY - 2021/1/1
Y1 - 2021/1/1
N2 - This article presents a distributed secondary control scheme for accurate reactive power sharing in an islanded multibus radial microgrid. The scheme employs consensus control to adaptively tune the virtual output impedance (VOI) into achieving reactive power correction. The adaptive VOI-based control structure is essentially nonlinear. However, this work shows that the approximate range of stable coupling gain can be established by linearizing the problem about every probable operating point of the distributed energy resources (DERs). On the basis of islanding mode, it is also shown that only the dynamic VOI component is needed while the static component, which has been used extensively to date, can be nullified. It will also be shown that under the established gain tuning guideline, the virtual reactance typically results in quicker correction dynamics as compared to the virtual resistance. The proposed control scheme can realize an accurate power sharing among the DERs regardless of the microgrid topology, load condition, and communication delay (within the allowable limits defined by the consensus theorem). This study is carried out in conjunction with an islanded microgrid model modified from the IEEE 34 Node Test Feeder.
AB - This article presents a distributed secondary control scheme for accurate reactive power sharing in an islanded multibus radial microgrid. The scheme employs consensus control to adaptively tune the virtual output impedance (VOI) into achieving reactive power correction. The adaptive VOI-based control structure is essentially nonlinear. However, this work shows that the approximate range of stable coupling gain can be established by linearizing the problem about every probable operating point of the distributed energy resources (DERs). On the basis of islanding mode, it is also shown that only the dynamic VOI component is needed while the static component, which has been used extensively to date, can be nullified. It will also be shown that under the established gain tuning guideline, the virtual reactance typically results in quicker correction dynamics as compared to the virtual resistance. The proposed control scheme can realize an accurate power sharing among the DERs regardless of the microgrid topology, load condition, and communication delay (within the allowable limits defined by the consensus theorem). This study is carried out in conjunction with an islanded microgrid model modified from the IEEE 34 Node Test Feeder.
KW - Consensus control
KW - droop control
KW - reactive power sharing
KW - virtual output impedance (VOI)
UR - http://www.scopus.com/inward/record.url?scp=85098888652&partnerID=8YFLogxK
U2 - 10.1109/TIA.2020.3031884
DO - 10.1109/TIA.2020.3031884
M3 - Article
AN - SCOPUS:85098888652
SN - 0093-9994
VL - 57
SP - 784
EP - 794
JO - IEEE Transactions on Industry Applications
JF - IEEE Transactions on Industry Applications
IS - 1
M1 - 9234769
ER -