DocumentCode
267604
Title
Energy and reserve scheduling under correlated nodal demand uncertainty: An adjustable robust optimization approach
Author
Moreira, Alexandre ; Street, Alexandre ; Arroyo, Jose M.
Author_Institution
Electr. Eng. Dept., Pontifical Catholic Univ. of Rio de Janeiro, Rio de Janeiro, Brazil
fYear
2014
fDate
18-22 Aug. 2014
Firstpage
1
Lastpage
8
Abstract
This paper presents a nonparametric approach based on adjustable robust optimization to consider correlated nodal demand uncertainty in a joint energy and reserve scheduling model with security constraints. In this model, up- and down-spinning reserves provided by generators are endogenously defined as a result of the optimization problem. Adjustable robust optimization is used to characterize the worst-case load variation under a given user-defined uncertainty set. This paper differs from recent previous work in two respects: (i) nonparametric correlations between nodal demands are accounted for in the uncertainty set, and (ii) based on the binary expansion linearization approach, a mixed-integer linear model is provided for the optimization related to the worst-case demand. The resulting problem is formulated as a trilevel program and solved by means of Benders decomposition. Empirical results suggest that the incorporation of nodal correlations can be effectively captured by the robust scheduling model.
Keywords
demand side management; integer programming; linear programming; nonparametric statistics; power system security; scheduling; Benders decomposition; adjustable robust optimization approach; binary expansion linearization approach; correlated nodal demand uncertainty; energy scheduling; load variation; mixed integer linear model; nonparametric approach; nonparametric correlation; reserve scheduling; security constraint; user-defined uncertainty set; Correlation; Generators; Load modeling; Optimization; Robustness; Spinning; Uncertainty; Adjustable robust optimization; Benders decomposition; binary expansion linearization; correlated nodal demand uncertainty; energy and reserve scheduling;
fLanguage
English
Publisher
ieee
Conference_Titel
Power Systems Computation Conference (PSCC), 2014
Conference_Location
Wroclaw
Type
conf
DOI
10.1109/PSCC.2014.7038415
Filename
7038415
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