English

Tight LP Approximations for the Optimal Power Flow Problem

Optimization and Control 2016-03-16 v2 Computational Engineering, Finance, and Science Systems and Control

Abstract

DC power flow approximations are ubiquitous in the electricity industry. However, these linear approximations fail to capture important physical aspects of power flow, such as the reactive power and voltage magnitude, which are crucial in many applications to ensure voltage stability and AC solution feasibility. This paper proposes two LP approximations of the AC optimal power flow problem, founded on tight polyhedral approximations of the SOC constraints, in the aim of retaining the good lower bounds of the SOCP relaxation and relishing the computational efficiency of LP solvers. The high accuracy of the two LP approximations is corroborated by rigorous computational evaluations on systems with up to 9241 buses and different operating conditions. The computational efficiency of the two proposed LP models is shown to be comparable to, if not better than, that of the SOCP models in most instances. This performance is ideal for MILP extensions of these LP models since MILP is computationally more efficient than MIQCP.

Keywords

Cite

@article{arxiv.1603.00773,
  title  = {Tight LP Approximations for the Optimal Power Flow Problem},
  author = {Sleiman Mhanna and Gregor Verbic and Archie Chapman},
  journal= {arXiv preprint arXiv:1603.00773},
  year   = {2016}
}

Comments

7 pages. To appear in Proc. 19th Power Syst. Comput. Conf. (PSCC), Genoa, Italy, 2016

R2 v1 2026-06-22T13:02:18.935Z