TY - GEN
T1 - System Identification Based Grid Agnostic Adaptive Droop Control Strategy
AU - Pant, Prashant
AU - Hamacher, Thomas
AU - Ibanez, Federico Martin
AU - Perić, Vedran S.
N1 - Publisher Copyright:
© 2023 IEEE.
PY - 2023
Y1 - 2023
N2 - This paper investigates the implementation possibilities of the recently proposed system identification-based adaptive droop control scheme under varying grid conditions. The paper also provides a detailed analysis of the impact of reactive droop parameter on the power decoupling. At the distribution level, the feeder impedance comprises of both, inductive and resistive components, leading to the problem of power coupling. To counter the problem of power coupling an adaptive droop control strategy was proposed that tunes the reactive droop coefficient while respecting the trade-off between reactive power sharing accuracy, small signal stability and the voltage drop. In this paper, two main contributions are presented. Firstly, a mathematical relationship is deduced that shows the impact of reactive droop coefficient on the coupling between active and reactive power. This relationship offers a comprehensive understanding for selecting suitable tuning parameters for adaptive droop control. Secondly, the performance of the proposed controller is evaluated over a wide range of grid impedance compositions through simulation. The results demonstrate that (i) increasing reactive power droop coefficient has a marginally diminishing effect on the power decoupling, which aligns with the mathematical deduction and (ii) the system-identification based droop controller can be implemented in any grid, irrespective of its impedance composition, making the controller grid-agnostic.
AB - This paper investigates the implementation possibilities of the recently proposed system identification-based adaptive droop control scheme under varying grid conditions. The paper also provides a detailed analysis of the impact of reactive droop parameter on the power decoupling. At the distribution level, the feeder impedance comprises of both, inductive and resistive components, leading to the problem of power coupling. To counter the problem of power coupling an adaptive droop control strategy was proposed that tunes the reactive droop coefficient while respecting the trade-off between reactive power sharing accuracy, small signal stability and the voltage drop. In this paper, two main contributions are presented. Firstly, a mathematical relationship is deduced that shows the impact of reactive droop coefficient on the coupling between active and reactive power. This relationship offers a comprehensive understanding for selecting suitable tuning parameters for adaptive droop control. Secondly, the performance of the proposed controller is evaluated over a wide range of grid impedance compositions through simulation. The results demonstrate that (i) increasing reactive power droop coefficient has a marginally diminishing effect on the power decoupling, which aligns with the mathematical deduction and (ii) the system-identification based droop controller can be implemented in any grid, irrespective of its impedance composition, making the controller grid-agnostic.
KW - adaptive droop control
KW - matrix-pencil
KW - reactive droop coefficient
KW - system identification
KW - universal droop
UR - http://www.scopus.com/inward/record.url?scp=85169453876&partnerID=8YFLogxK
U2 - 10.1109/PowerTech55446.2023.10202839
DO - 10.1109/PowerTech55446.2023.10202839
M3 - Conference contribution
AN - SCOPUS:85169453876
T3 - 2023 IEEE Belgrade PowerTech, PowerTech 2023
BT - 2023 IEEE Belgrade PowerTech, PowerTech 2023
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2023 IEEE Belgrade PowerTech, PowerTech 2023
Y2 - 25 June 2023 through 29 June 2023
ER -