Optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problem

Nowadays, demand response programs (DRPs) play an important role in price reduction and reliability improvement. In this paper, an optimal integrated model for the emergency demand response program (EDRP) and dynamic economic emission dispatch (DEED) problem has been developed. Customer’s behavior i...

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Main Authors: Ehsan Dehnavi, Hamdi Abdi, Farid Mohammadi
Format: Article
Language:English
Published: University of Mohaghegh Ardabili 2016-06-01
Series:Journal of Operation and Automation in Power Engineering
Subjects:
Online Access:http://joape.uma.ac.ir/article_423_a3d41768d01674c53b2e23319a2aa79f.pdf
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spelling doaj-93c4e3f524e346edb48583edc2ac54142020-11-25T02:43:19ZengUniversity of Mohaghegh ArdabiliJournal of Operation and Automation in Power Engineering2322-45762423-45672016-06-01412941423Optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problemEhsan Dehnavi0Hamdi Abdi,1Farid Mohammadi2Electrical Engineering Departments, Engineering Faculty, Razi University, Kermanshah, Iran.Razi University (Kermanshah)Electrical Engineering Departments, Engineering Faculty, Razi University, Kermanshah, Iran.Nowadays, demand response programs (DRPs) play an important role in price reduction and reliability improvement. In this paper, an optimal integrated model for the emergency demand response program (EDRP) and dynamic economic emission dispatch (DEED) problem has been developed. Customer’s behavior is modeled based on the price elasticity matrix (PEM) by which the level of DRP is determined for a given type of customer. Valve-point loading effect, prohibited operating zones (POZs), and the other non-linear constraints make the DEED problem into a non-convex and non-smooth multi-objective optimization problem. In the proposed model, the fuel cost and emission are minimized and the optimal incentive is determined simultaneously. The imperialist competitive algorithm (ICA) has solved the combined problem. The proposed model is applied on a ten units test system and results indicate the practical benefits of the proposed model. Finally, depending on different policies, DRPs are prioritized by using strategy success indices.http://joape.uma.ac.ir/article_423_a3d41768d01674c53b2e23319a2aa79f.pdfEmergency demand response programDynamic economic emission dispatchImperialist competitive algorithmOptimal incentiveStrategy success indices
collection DOAJ
language English
format Article
sources DOAJ
author Ehsan Dehnavi
Hamdi Abdi,
Farid Mohammadi
spellingShingle Ehsan Dehnavi
Hamdi Abdi,
Farid Mohammadi
Optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problem
Journal of Operation and Automation in Power Engineering
Emergency demand response program
Dynamic economic emission dispatch
Imperialist competitive algorithm
Optimal incentive
Strategy success indices
author_facet Ehsan Dehnavi
Hamdi Abdi,
Farid Mohammadi
author_sort Ehsan Dehnavi
title Optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problem
title_short Optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problem
title_full Optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problem
title_fullStr Optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problem
title_full_unstemmed Optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problem
title_sort optimal emergency demand response program integrated with multi-objective dynamic economic emission dispatch problem
publisher University of Mohaghegh Ardabili
series Journal of Operation and Automation in Power Engineering
issn 2322-4576
2423-4567
publishDate 2016-06-01
description Nowadays, demand response programs (DRPs) play an important role in price reduction and reliability improvement. In this paper, an optimal integrated model for the emergency demand response program (EDRP) and dynamic economic emission dispatch (DEED) problem has been developed. Customer’s behavior is modeled based on the price elasticity matrix (PEM) by which the level of DRP is determined for a given type of customer. Valve-point loading effect, prohibited operating zones (POZs), and the other non-linear constraints make the DEED problem into a non-convex and non-smooth multi-objective optimization problem. In the proposed model, the fuel cost and emission are minimized and the optimal incentive is determined simultaneously. The imperialist competitive algorithm (ICA) has solved the combined problem. The proposed model is applied on a ten units test system and results indicate the practical benefits of the proposed model. Finally, depending on different policies, DRPs are prioritized by using strategy success indices.
topic Emergency demand response program
Dynamic economic emission dispatch
Imperialist competitive algorithm
Optimal incentive
Strategy success indices
url http://joape.uma.ac.ir/article_423_a3d41768d01674c53b2e23319a2aa79f.pdf
work_keys_str_mv AT ehsandehnavi optimalemergencydemandresponseprogramintegratedwithmultiobjectivedynamiceconomicemissiondispatchproblem
AT hamdiabdi optimalemergencydemandresponseprogramintegratedwithmultiobjectivedynamiceconomicemissiondispatchproblem
AT faridmohammadi optimalemergencydemandresponseprogramintegratedwithmultiobjectivedynamiceconomicemissiondispatchproblem
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