DocumentCode
109308
Title
Contingency Ranking With Respect to Overloads in Very Large Power Systems Taking Into Account Uncertainty, Preventive, and Corrective Actions
Author
Fliscounakis, Stephane ; Panciatici, P. ; Capitanescu, Florin ; Wehenkel, L.
Author_Institution
DMA RTE, Versailles, France
Volume
28
Issue
4
fYear
2013
fDate
Nov. 2013
Firstpage
4909
Lastpage
4917
Abstract
This paper deals with day-ahead security management with respect to a postulated set of contingencies, while taking into account uncertainties about the next day generation/load scenario. In order to help the system operator in decision making under uncertainty, we aim at ranking these contingencies into four clusters according to the type of control actions needed to cover the worst uncertainty pattern of each contingency with respect to branch overload. To this end we use a fixed point algorithm that loops over two main modules: a discrete bi-level program (BLV) that computes the worst-case scenario, and a special kind of security constrained optimal power flow (SCOPF) which computes optimal preventive/corrective actions to cover the worst-case. We rely on a DC grid model, as the large number of binary variables, the large size of the problem, and the stringent computational requirements preclude the use of existing mixed integer nonlinear programming (MINLP) solvers. Consequently we solve the SCOPF using a mixed integer linear programming (MILP) solver while the BLV is decomposed into a series of MILPs. We provide numerical results with our approach on a very large European system model with 9241 buses and 5126 contingencies.
Keywords
integer programming; linear programming; load flow; power system management; power system security; BLV; DC grid model; MILP solvers; SCOPF; branch overload; constrained optimal power flow; contingency ranking; corrective actions; day-ahead security management; discrete bilevel program; fixed point algorithm; mixed integer linear programming; next day generation scenario; next day load scenario; preventive actions; very large power systems; worst-case scenario; Bi-level programming; mixed integer linear programming; operation under uncertainty; optimal power flow; security-constrained optimal power flow; worst-case analysis;
fLanguage
English
Journal_Title
Power Systems, IEEE Transactions on
Publisher
ieee
ISSN
0885-8950
Type
jour
DOI
10.1109/TPWRS.2013.2251015
Filename
6488772
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