Title :
An Adaptive Feedforward Compensation for Stability Enhancement in Droop-Controlled Inverter-Based Microgrids
Author :
Delghavi, Mohammad B. ; Yazdani, Amirnaser
Author_Institution :
Univ. of Western Ontario, London, ON, Canada
fDate :
7/1/2011 12:00:00 AM
Abstract :
This paper proposes an adaptive feedforward compensation that alters the dynamic coupling between a distributed-resource unit and the host microgrid, so that the robustness of the system stability to droop coefficients and network dynamic uncertainties is enhanced. The proposed feedforward strategy preserves the steady-state effect that the conventional droop mechanism exhibits and, therefore, does not compromise the steady-state power sharing regime of the microgrid or the voltage/frequency regulation. The feedforward compensation is adaptive as it is modified periodically according to the system steady-state operating point which, in turn, is estimated through an online recursive least-square estimation technique. This paper presents a discrete-time mathematical model and analytical framework for the proposed feedforward compensation. The effectiveness of the proposed control is demonstrated through time-domain simulation studies, in the PSCAD/EMTDC software environment, conducted on a detailed switched model of a sample two-unit microgrid.
Keywords :
adaptive control; compensation; discrete time systems; distributed power generation; feedforward; invertors; robust control; three-term control; time-domain analysis; adaptive feedforward; compensation; discrete-time mathematical model; distributed resource unit; droop coefficients; droop controlled inverter; dynamic coupling; microgrids; network dynamic uncertainties; robustness; stability enhancement; steady-state power sharing; time-domain simulation; Adaptive systems; Feedforward neural networks; Frequency control; Power system dynamics; Stability analysis; Steady-state; Voltage control; Adaptive control; current control; distributed generation (DG); distributed resource (DR); droop; dynamics; feedforward; microgrid; model; power sharing;
Journal_Title :
Power Delivery, IEEE Transactions on
DOI :
10.1109/TPWRD.2011.2119497