Optimal Power Flow with Step-Voltage Regulators in Multi-Phase Distribution Networks
Abstract
This paper develops a branch-flow based optimal power flow (OPF) problem for multi-phase distribution networks that allows for tap selection of wye, closed-delta, and open-delta step-voltage regulators (SVRs). SVRs are assumed ideal and their taps are represented by continuous decision variables. To tackle the non-linearity, the branch-flow semidefinite programming framework of traditional OPF is expanded to accommodate SVR edges. Three types of non-convexity are addressed: (a) rank-1 constraints on non-SVR edges, (b) nonlinear equality constraints on SVR power flows and taps, and (c) trilinear equalities on SVR voltages and taps. Leveraging a practical phase-separation assumption on the SVR secondary voltage, novel McCormick relaxations are provided for (c) and certain rank-1 constraints of (a), while dropping the rest. A linear relaxation based on conservation of power is used in place of (b). Numerical simulations on standard distribution test feeders corroborate the merits of the proposed convex formulation.
Cite
@article{arxiv.1901.04566,
title = {Optimal Power Flow with Step-Voltage Regulators in Multi-Phase Distribution Networks},
author = {Mohammadhafez Bazrafshan and Nikolaos Gatsis and Hao Zhu},
journal= {arXiv preprint arXiv:1901.04566},
year = {2019}
}
Comments
This manuscript has been submitted to IEEE Transactions on Power Systems