Title :
Polyhedral Formulations and Loop Elimination Constraints for Distribution Network Expansion Planning
Author_Institution :
Dept. of Electr. & Comput. Eng., American Univ. of Beirut, Beirut, Lebanon
Abstract :
Distribution network expansion planning (DNEP) aims at minimizing the capital and operational cost of the expansion plan; the plan entails choosing conductor types and line construction routes together with substation installation and reinforcement that allow serving the demand while satisfying the physical and technical constraints of the expanded network. Two findings are reported in this paper. First, DNEP can be exactly formulated as a disjunctive conic program, in two equivalent formulations; both formulations admit a tight polyhedral approximation and can be solved for the globally optimal solution using software for mixed-integer linear programming (MILP). Second, the DNEP solution can be computed more efficiently when the linear relaxations of the MILP formulations are strengthened using loop elimination constraints. Numerical results on practical DNEP problems reveal that combining the parallel equivalent-circuit polyhedral formulation with the spanning tree loop elimination constraints yields MILP planning solutions with a tight relative optimality gap and within reasonable computing time. In addition, the results are at least of the same quality if not better than those reported in the recent literature.
Keywords :
cost reduction; integer programming; linear programming; power distribution economics; power distribution planning; substations; trees (mathematics); DNEP solution; MILP formulation; MILP planning solution; capital cost minimization; disjunctive conic program; distribution network expansion planning; line construction routes; linear relaxation; loop elimination constraint; mixed-integer linear programming; operational cost minimization; parallel equivalent-circuit polyhedral formulation; polyhedral approximation; spanning tree loop elimination constraint; substation installation; Conductors; Equations; Integrated circuit modeling; Optimization; Planning; Reactive power; Substations; Nonlinear programming; optimization methods; power system planning;
Journal_Title :
Power Systems, IEEE Transactions on
DOI :
10.1109/TPWRS.2012.2230652