Title :
Multistage Model for Distribution Expansion Planning With Distributed Generation—Part I: Problem Formulation
Author :
Haffner, Sérgio ; Pereira, Luís Fernando Alves ; Pereira, Luís Alberto ; Barreto, Lucio Sangio
Author_Institution :
State Univ. of Santa Catarina (UDESC-CCT-DEE), Joinville
fDate :
4/1/2008 12:00:00 AM
Abstract :
This paper presents a model for use in the problem of multistage planning of energy distribution systems including distributed generation. The expansion model allows alternatives to be considered for increasing the capacity of existing substations, for installing new ones, for using distributed generation, and for the possible change to feeders in terms of addition and removing feeders sections; combining, subdividing, and load transfer between feeders; and replacement of conductors. The objective function to be minimized is the present value of total installation costs (feeders and substations), of operating and maintaining the network, and of distributed generation. The model takes operational constraints on equipment capacities and voltage limits together into account with logical constraints, aimed at reducing the search space. This paper presents: (1) an extension to the linear disjunctive formulation to represent the inclusion, exclusion, and replacement of branches and (2) a generalization of constraints related to the creation of new paths which can be applied in more complex topologies. The resulting mixed integer linear model allows the optimal solution to be found using mathematical programming methods, such as the branch-and-bound algorithm. The validity and efficiency of the model are demonstrated in Part II of this paper.
Keywords :
distributed power generation; integer programming; linear programming; power distribution planning; branch-and-bound algorithm; distributed generation; distribution expansion planning; energy distribution systems; feeder changing; linear disjunctive formulation; load transfer; mathematical programming method; mixed integer linear model; multistage planning model; operational constraints; optimization model; power distribution planning; Distributed generation; power distribution; power distribution economics; power distribution planning;
Journal_Title :
Power Delivery, IEEE Transactions on
DOI :
10.1109/TPWRD.2008.917916