Research on Transmission Network Expansion Planning Considering Splitting Control

A robust and reliable grid is one of the core elements for power network planning. Specifically, splitting is an effective way for power grid out-of-step oscillation. Since the cross-section of system out-of-step is mostly found on the weak connection lines, reducing the number of those lines can be...

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Main Authors: Fei Tang, Chufei Xiao, Xin Gao, Yifan Zhang, Nianchun Du, Benxi Hu
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Sustainability
Subjects:
Online Access:https://www.mdpi.com/2071-1050/12/5/1769
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spelling doaj-539e15969e5248d2a218e2dc9a8bdc132020-11-25T00:36:54ZengMDPI AGSustainability2071-10502020-02-01125176910.3390/su12051769su12051769Research on Transmission Network Expansion Planning Considering Splitting ControlFei Tang0Chufei Xiao1Xin Gao2Yifan Zhang3Nianchun Du4Benxi Hu5School of Electrical Engineering and Automation, Wuhan University, Wuhan 430072, ChinaSchool of Electrical Engineering and Automation, Wuhan University, Wuhan 430072, ChinaSchool of Electrical Engineering and Automation, Wuhan University, Wuhan 430072, ChinaSchool of Electrical Engineering and Automation, Wuhan University, Wuhan 430072, ChinaSchool of Electrical Engineering and Automation, Wuhan University, Wuhan 430072, ChinaSchool of Electrical Engineering and Automation, Wuhan University, Wuhan 430072, ChinaA robust and reliable grid is one of the core elements for power network planning. Specifically, splitting is an effective way for power grid out-of-step oscillation. Since the cross-section of system out-of-step is mostly found on the weak connection lines, reducing the number of those lines can be conducive to the system partition, save the finding time of the optimal splitting cross-section, and improve the performance of the splitting control. This paper proposed an enhanced method based on slow coherence theory for weak connection lines’ identification and monitoring. The ratio of the number of weak connection lines to the number of all the lines, called weak connection coefficient, is considered as a crucial factor. A bi-level programming model, which perceives the minimum connection coefficient as the optimization goal, is built for the transmission network. Additionally, a fused algorithm, consisting of Boruvka algorithm and particle swarm optimization with adaptive mutation and inertia weight, is employed to solve the proposed method in the instances of an 18-node IEEE Graver system and a practical power grid in East China. Simulation results in PSD-BPA are conducted to verify the effectiveness of the weak connection monitoring method and transmission network planning model.https://www.mdpi.com/2071-1050/12/5/1769power systempower network planningweak connectionsplitting control
collection DOAJ
language English
format Article
sources DOAJ
author Fei Tang
Chufei Xiao
Xin Gao
Yifan Zhang
Nianchun Du
Benxi Hu
spellingShingle Fei Tang
Chufei Xiao
Xin Gao
Yifan Zhang
Nianchun Du
Benxi Hu
Research on Transmission Network Expansion Planning Considering Splitting Control
Sustainability
power system
power network planning
weak connection
splitting control
author_facet Fei Tang
Chufei Xiao
Xin Gao
Yifan Zhang
Nianchun Du
Benxi Hu
author_sort Fei Tang
title Research on Transmission Network Expansion Planning Considering Splitting Control
title_short Research on Transmission Network Expansion Planning Considering Splitting Control
title_full Research on Transmission Network Expansion Planning Considering Splitting Control
title_fullStr Research on Transmission Network Expansion Planning Considering Splitting Control
title_full_unstemmed Research on Transmission Network Expansion Planning Considering Splitting Control
title_sort research on transmission network expansion planning considering splitting control
publisher MDPI AG
series Sustainability
issn 2071-1050
publishDate 2020-02-01
description A robust and reliable grid is one of the core elements for power network planning. Specifically, splitting is an effective way for power grid out-of-step oscillation. Since the cross-section of system out-of-step is mostly found on the weak connection lines, reducing the number of those lines can be conducive to the system partition, save the finding time of the optimal splitting cross-section, and improve the performance of the splitting control. This paper proposed an enhanced method based on slow coherence theory for weak connection lines’ identification and monitoring. The ratio of the number of weak connection lines to the number of all the lines, called weak connection coefficient, is considered as a crucial factor. A bi-level programming model, which perceives the minimum connection coefficient as the optimization goal, is built for the transmission network. Additionally, a fused algorithm, consisting of Boruvka algorithm and particle swarm optimization with adaptive mutation and inertia weight, is employed to solve the proposed method in the instances of an 18-node IEEE Graver system and a practical power grid in East China. Simulation results in PSD-BPA are conducted to verify the effectiveness of the weak connection monitoring method and transmission network planning model.
topic power system
power network planning
weak connection
splitting control
url https://www.mdpi.com/2071-1050/12/5/1769
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AT yifanzhang researchontransmissionnetworkexpansionplanningconsideringsplittingcontrol
AT nianchundu researchontransmissionnetworkexpansionplanningconsideringsplittingcontrol
AT benxihu researchontransmissionnetworkexpansionplanningconsideringsplittingcontrol
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