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Título: ENERGY AND RESERVE SCHEDULING UNDER A JOINT GENERATION AND TRANSMISSION SECURITY CRITERION: AN ADJUSTABLE ROBUST OPTIMIZATION APPROACH
Instituição: ---
Autor(es): ALEXANDRE STREET DE AGUIAR
ALEXANDRE MOREIRA DA SILVA
JOSE MANUEL ARROYO
Colaborador(es): ---
Catalogação: 20 11:10:20.000000/08/2013
Tipo: PAPER Idioma(s): ENGLISH - UNITED STATES
Nota:
This work has been submitted to the IEEE Transactions on Power Systems for possible publication. Copyright may be transferred without notice, after which this version may no longer be accessible. © 2013 IEEE. Personal use of this material is permitted. However, permission to reprint/republish this material for advertising or promotional purposes or for creating new collective works for resale or redistribution to servers or lists, or to reuse any component of this work in other works must be obtained from the IEEE.
Referência [en]: https://www.maxwell.vrac.puc-rio.br/eletricaonline/serieConsulta.php?strSecao=resultado&nrSeq=21900@2
Resumo:
This paper presents a new approach for energy and reserve scheduling in electricity markets subject to transmission flow limits. Security is imposed by guaranteeing power balance under each contingency state including both generation and transmission assets. The model is general enough to embody a joint generation and transmission security criterion and its variants. An adjustable robust optimization approach is presented to circumvent the tractability issues associated with conventional contingency-constrained methods relying on explicitly modeling the whole contingency set. The adjustable robust model is formulated as a trilevel programming problem. The upper-level problem aims at minimizing total costs of energy and reserves while ensuring that the system is able to withstand each contingency. The middle-level problem identifies, for a given pre-contingency schedule, the contingency state leading to maximum power imbalance if any. Finally, the lower-level problem models the operator’s best reaction for a given contingency by minimizing the system power imbalance. The proposed trilevel problem is solved by a Benders decomposition approach. For computation purposes, a tighter formulation for the master problem is proposed. Our approach is finitely convergent to the optimal solution and provides a measure of the distance to the optimum. Simulation results show the superiority of the proposed methodology over conventional contingency-constrained models.
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