Research on Urban Load Rapid Recovery Strategy Based on Improved Weighted Power Flow Entropy

As the final stage of power system restoration, the critical task of load restoration is to restore the remaining load as quickly as possible. With the continuous increase of the temperature-controlled load and the proportion of electric vehicle load in the urban power grid, the complexity of the lo...

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Main Authors: Min Wang, Zongyin Fan, Jian Zhou, Shanshan Shi
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9320476/
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spelling doaj-e1de5500ec514d6a8d80d1aa28c6ddc82021-05-19T23:02:47ZengIEEEIEEE Access2169-35362021-01-019106341064410.1109/ACCESS.2021.30511869320476Research on Urban Load Rapid Recovery Strategy Based on Improved Weighted Power Flow EntropyMin Wang0https://orcid.org/0000-0001-7961-2576Zongyin Fan1https://orcid.org/0000-0003-3289-9770Jian Zhou2Shanshan Shi3College of Energy and Electrical Engineering, Hohai University, Nanjing, ChinaCollege of Energy and Electrical Engineering, Hohai University, Nanjing, ChinaElectric Power Research Institute of State Grid Shanghai Electric Power Company, Shanghai, ChinaElectric Power Research Institute of State Grid Shanghai Electric Power Company, Shanghai, ChinaAs the final stage of power system restoration, the critical task of load restoration is to restore the remaining load as quickly as possible. With the continuous increase of the temperature-controlled load and the proportion of electric vehicle load in the urban power grid, the complexity of the load side in the restoration process gradually increases. Therefore, based on the existing grid environment, this paper considers the sudden increase in load recovery caused by cold load pick-up and the auxiliary effect of electric vehicle discharge on load recovery during the load recovery process. From the perspective of economy, safety, and speed, this paper establishes a multi-objective function that includes the amount of load, improved weighted power flow entropy, and the number of recovered lines. The multi-objective evolutionary algorithm based on decomposition is used to optimize the constructed multi-objective load recovery model. Through the IEEE30 node system, it is verified that the method proposed in this paper can effectively establish a fast and safe load recovery plan that meets the actual grid environment.https://ieeexplore.ieee.org/document/9320476/Load recoveryelectric vehiclecold load pick-upimproved weighted power flow entropy
collection DOAJ
language English
format Article
sources DOAJ
author Min Wang
Zongyin Fan
Jian Zhou
Shanshan Shi
spellingShingle Min Wang
Zongyin Fan
Jian Zhou
Shanshan Shi
Research on Urban Load Rapid Recovery Strategy Based on Improved Weighted Power Flow Entropy
IEEE Access
Load recovery
electric vehicle
cold load pick-up
improved weighted power flow entropy
author_facet Min Wang
Zongyin Fan
Jian Zhou
Shanshan Shi
author_sort Min Wang
title Research on Urban Load Rapid Recovery Strategy Based on Improved Weighted Power Flow Entropy
title_short Research on Urban Load Rapid Recovery Strategy Based on Improved Weighted Power Flow Entropy
title_full Research on Urban Load Rapid Recovery Strategy Based on Improved Weighted Power Flow Entropy
title_fullStr Research on Urban Load Rapid Recovery Strategy Based on Improved Weighted Power Flow Entropy
title_full_unstemmed Research on Urban Load Rapid Recovery Strategy Based on Improved Weighted Power Flow Entropy
title_sort research on urban load rapid recovery strategy based on improved weighted power flow entropy
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2021-01-01
description As the final stage of power system restoration, the critical task of load restoration is to restore the remaining load as quickly as possible. With the continuous increase of the temperature-controlled load and the proportion of electric vehicle load in the urban power grid, the complexity of the load side in the restoration process gradually increases. Therefore, based on the existing grid environment, this paper considers the sudden increase in load recovery caused by cold load pick-up and the auxiliary effect of electric vehicle discharge on load recovery during the load recovery process. From the perspective of economy, safety, and speed, this paper establishes a multi-objective function that includes the amount of load, improved weighted power flow entropy, and the number of recovered lines. The multi-objective evolutionary algorithm based on decomposition is used to optimize the constructed multi-objective load recovery model. Through the IEEE30 node system, it is verified that the method proposed in this paper can effectively establish a fast and safe load recovery plan that meets the actual grid environment.
topic Load recovery
electric vehicle
cold load pick-up
improved weighted power flow entropy
url https://ieeexplore.ieee.org/document/9320476/
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AT zongyinfan researchonurbanloadrapidrecoverystrategybasedonimprovedweightedpowerflowentropy
AT jianzhou researchonurbanloadrapidrecoverystrategybasedonimprovedweightedpowerflowentropy
AT shanshanshi researchonurbanloadrapidrecoverystrategybasedonimprovedweightedpowerflowentropy
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