Coping with Wind Power Uncertainty in Unit Commitment: a Robust Approach using the New Hybrid Metaheuristic DEEPSO

dc.contributor.author Rui Barbosa Pinto en
dc.contributor.author Leonel Magalhães Carvalho en
dc.contributor.author Jean Sumaili en
dc.contributor.author Pinto,MSS en
dc.contributor.author Vladimiro Miranda en
dc.date.accessioned 2017-11-23T11:31:35Z
dc.date.available 2017-11-23T11:31:35Z
dc.date.issued 2015 en
dc.description.abstract The uncertainty associated with the increasingly wind power penetration in power systems must be considered when performing the traditional day-ahead scheduling of conventional thermal units. This uncertainty can be represented through a set of representative wind power scenarios that take into account the time-dependency between forecasting errors. To create robust Unit Commitment ( UC) schedules, it is widely seen that all possible wind power scenarios must be used. However, using all realizations of wind power might be a poor approach and important savings in computational effort can be achieved if only the most representative subset is used. In this paper, the new hybrid metaheuristic DEEPSO and clustering techniques are used in the traditional stochastic formulation of the UC problem to investigate the robustness of the UC schedules with increasing number of wind power scenarios. For this purpose, expected values for operational costs, wind spill, and load curtailment for the UC solutions are compared for a didactic 10 generator test system. The obtained results shown that it is possible to reduce the computation burden of the stochastic UC by using a small set of representative wind power scenarios previously selected from a high number of scenarios covering the entire probability distribution function of the forecasting uncertainty. en
dc.identifier.uri http://repositorio.inesctec.pt/handle/123456789/3767
dc.identifier.uri http://dx.doi.org/10.1109/ptc.2015.7232625 en
dc.language eng en
dc.relation 208 en
dc.relation 6183 en
dc.relation 4971 en
dc.relation 5164 en
dc.rights info:eu-repo/semantics/openAccess en
dc.title Coping with Wind Power Uncertainty in Unit Commitment: a Robust Approach using the New Hybrid Metaheuristic DEEPSO en
dc.type conferenceObject en
dc.type Publication en
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