Title :
Stochastic Reactive Power Management in Microgrids With Renewables
Author :
Kekatos, Vassilis ; Gang Wang ; Conejo, Antonio J. ; Giannakis, Georgios B.
Author_Institution :
Electr. & Comput. Eng. Dept., Univ. of Minnesota, Minneapolis, MN, USA
Abstract :
Distribution microgrids are being challenged by reverse power flows and voltage fluctuations due to renewable generation, demand response, and electric vehicles. Advances in photovoltaic (PV) inverters offer new opportunities for reactive power management provided PV owners have the right investment incentives. In this context, reactive power compensation is considered here as an ancillary service. Accounting for the increasing time-variability of distributed generation and demand, a stochastic reactive power compensation scheme is developed. Given uncertain active power injections, an online reactive control scheme is devised. This scheme is distribution-free and relies solely on power injection data. Reactive injections are updated using the Lagrange multipliers of a second-order cone program. Numerical tests on an industrial 47-bus microgrid and the residential IEEE 123-bus feeder corroborate the reactive power management efficiency of the novel stochastic scheme over its deterministic alternative, as well as its capability to track variations in solar generation and household demand.
Keywords :
distributed power generation; invertors; load flow; photovoltaic power systems; power system management; reactive power control; stochastic processes; Lagrange multipliers; demand response; distributed generation; distribution microgrids; electric vehicles; household demand; industrial 47-bus microgrid; investment incentives; online reactive control scheme; photovoltaic inverters; power injection data; reactive injections; renewable generation; residential IEEE 123-bus feeder; reverse power flows; second-order cone program; solar generation; stochastic reactive power compensation scheme; stochastic reactive power management; stochastic scheme; uncertain active power injections; voltage fluctuations; Inverters; Microgrids; Photovoltaic systems; Reactive power; Relaxation methods; Voltage control; Convex relaxation; loss minimization; optimal power flow; photovoltaic inverters; reactive power compensation; stochastic approximation; voltage regulation;
Journal_Title :
Power Systems, IEEE Transactions on
DOI :
10.1109/TPWRS.2014.2369452