DocumentCode :
24081
Title :
Convex Relaxation for Optimal Power Flow Problem: Mesh Networks
Author :
Madani, Ramtin ; Sojoudi, Samira ; Lavaei, Javad
Author_Institution :
Electr. Eng. Dept., Columbia Univ., New York, NY, USA
Volume :
30
Issue :
1
fYear :
2015
fDate :
Jan. 2015
Firstpage :
199
Lastpage :
211
Abstract :
This paper is concerned with the optimal power flow (OPF) problem. We have recently shown that a convex relaxation based on semidefinite programming (SDP) is able to find a global solution of OPF for IEEE benchmark systems, and moreover this technique is guaranteed to work over acyclic (distribution) networks. The present work studies the potential of the SDP relaxation for OPF over mesh (transmission) networks. First, we consider a simple class of cyclic systems, namely weakly-cyclic networks with cycles of size 3. We show that the success of the SDP relaxation depends on how the line capacities are modeled mathematically. More precisely, the SDP relaxation is proven to succeed if the capacity of each line is modeled in terms of bus voltage difference, as opposed to line active power, apparent power or angle difference. This result elucidates the role of the problem formulation. Our second contribution is to relate the rank of the minimum-rank solution of the SDP relaxation to the network topology. The goal is to understand how the computational complexity of OPF is related to the underlying topology of the power network. To this end, an upper bound is derived on the rank of the SDP solution, which is expected to be small in practice. A penalization method is then applied to the SDP relaxation to enforce the rank of its solution to become 1, leading to a near-optimal solution for OPF with a guaranteed optimality degree. The remarkable performance of this technique is demonstrated on IEEE systems with more than 7000 different cost functions.
Keywords :
IEEE standards; computational complexity; convex programming; distribution networks; load flow; mathematical programming; network topology; transmission networks; IEEE benchmark systems; OPF problem; SDP relaxation; acyclic networks; apparent power; bus voltage difference; computational complexity; convex relaxation; cyclic systems; distribution networks; line active power; mesh networks; network topology; optimal power flow problem; penalization method; power network; semidefinite programming; transmission networks; Generators; Load flow; Mathematical model; Mesh networks; Three-dimensional displays; Upper bound; Vectors; Convex relaxation; economic dispatch; global optimization; graph theory; optimal power flow;
fLanguage :
English
Journal_Title :
Power Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8950
Type :
jour
DOI :
10.1109/TPWRS.2014.2322051
Filename :
6822653
Link To Document :
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