Two-Stage Coordinated Control Strategy of AC/DC Hybrid Power System Based on Steady-State Security Region

The large-scale shift of power flow after DC blocking will seriously affect the secure operation of the system. Furthermore, after DC blocking, the system uses different control objectives in different operation stages. Therefore, a two-stage coordinated control of AC/DC hybrid power system based on...

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Main Authors: Zhengguang Zhu, Jun Yan, Chen Lu, Zhong Chen, Jiang Tian
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9151965/
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spelling doaj-2da9906988e4445eac45ec36090bdde82021-03-30T04:36:07ZengIEEEIEEE Access2169-35362020-01-01813922113924310.1109/ACCESS.2020.30126349151965Two-Stage Coordinated Control Strategy of AC/DC Hybrid Power System Based on Steady-State Security RegionZhengguang Zhu0https://orcid.org/0000-0001-9530-2850Jun Yan1Chen Lu2Zhong Chen3https://orcid.org/0000-0001-7513-3981Jiang Tian4School of Electrical Engineering, Southeast University, Nanjing, ChinaSchool of Electrical Engineering, Southeast University, Nanjing, ChinaSchool of Electrical Engineering, Southeast University, Nanjing, ChinaSchool of Electrical Engineering, Southeast University, Nanjing, ChinaState Grid Suzhou Power Supply Company, Suzhou, ChinaThe large-scale shift of power flow after DC blocking will seriously affect the secure operation of the system. Furthermore, after DC blocking, the system uses different control objectives in different operation stages. Therefore, a two-stage coordinated control of AC/DC hybrid power system based on steady-state security region (SSR) is proposed. Firstly, after DC blocking, the system needs to quickly restore secure operation with minimum cost. Therefore, the security correction guidance vector and the security distance sensitivity of the different control variables to it are obtained based on the linear fitting of the boundary surfaces of the SSR. The control cost of different control variables is characterized by the expansion and contraction of the SSR. According to the sensitivity of each control variable to the guidance vector and their actual adjustment ability, they are sorted and substituted into the security correction model to minimize the total adjustment cost during the process. Secondly, system will frequently be in a critical security state and not able to meet the needs of long-term secure and economic operation after security correction. Therefore, the security and economics of the system after security correction are comprehensively evaluated with the system generation cost, voltage deviation, and security margin under normal operating conditions and N-1 contingency conditions of heavy load lines. By calculating the security distance sensitivity of each control variable to the transmission limit of the crucial section, the sensitive generators and DCs that have significant effects on the transmission power of the crucial section are determined. Then the projections of security sub-region of high-sensibility control variables to optimization dispatch target, generation cost, voltage deviation, and the crucial section are depicted under different security margin, providing richer and more accurate operation information and strategic guidance for optimization dispatch. The calculation and analysis of the transformed IEEE 39-node system and the simplified actual power grid verify the correctness and effectiveness of the proposed coordinated control strategy.https://ieeexplore.ieee.org/document/9151965/AC/DC hybrid power systemsteady-state security regiontwo-stage coordinated control strategysecurity distance sensitivitylinear regressionoptimization dispatch
collection DOAJ
language English
format Article
sources DOAJ
author Zhengguang Zhu
Jun Yan
Chen Lu
Zhong Chen
Jiang Tian
spellingShingle Zhengguang Zhu
Jun Yan
Chen Lu
Zhong Chen
Jiang Tian
Two-Stage Coordinated Control Strategy of AC/DC Hybrid Power System Based on Steady-State Security Region
IEEE Access
AC/DC hybrid power system
steady-state security region
two-stage coordinated control strategy
security distance sensitivity
linear regression
optimization dispatch
author_facet Zhengguang Zhu
Jun Yan
Chen Lu
Zhong Chen
Jiang Tian
author_sort Zhengguang Zhu
title Two-Stage Coordinated Control Strategy of AC/DC Hybrid Power System Based on Steady-State Security Region
title_short Two-Stage Coordinated Control Strategy of AC/DC Hybrid Power System Based on Steady-State Security Region
title_full Two-Stage Coordinated Control Strategy of AC/DC Hybrid Power System Based on Steady-State Security Region
title_fullStr Two-Stage Coordinated Control Strategy of AC/DC Hybrid Power System Based on Steady-State Security Region
title_full_unstemmed Two-Stage Coordinated Control Strategy of AC/DC Hybrid Power System Based on Steady-State Security Region
title_sort two-stage coordinated control strategy of ac/dc hybrid power system based on steady-state security region
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description The large-scale shift of power flow after DC blocking will seriously affect the secure operation of the system. Furthermore, after DC blocking, the system uses different control objectives in different operation stages. Therefore, a two-stage coordinated control of AC/DC hybrid power system based on steady-state security region (SSR) is proposed. Firstly, after DC blocking, the system needs to quickly restore secure operation with minimum cost. Therefore, the security correction guidance vector and the security distance sensitivity of the different control variables to it are obtained based on the linear fitting of the boundary surfaces of the SSR. The control cost of different control variables is characterized by the expansion and contraction of the SSR. According to the sensitivity of each control variable to the guidance vector and their actual adjustment ability, they are sorted and substituted into the security correction model to minimize the total adjustment cost during the process. Secondly, system will frequently be in a critical security state and not able to meet the needs of long-term secure and economic operation after security correction. Therefore, the security and economics of the system after security correction are comprehensively evaluated with the system generation cost, voltage deviation, and security margin under normal operating conditions and N-1 contingency conditions of heavy load lines. By calculating the security distance sensitivity of each control variable to the transmission limit of the crucial section, the sensitive generators and DCs that have significant effects on the transmission power of the crucial section are determined. Then the projections of security sub-region of high-sensibility control variables to optimization dispatch target, generation cost, voltage deviation, and the crucial section are depicted under different security margin, providing richer and more accurate operation information and strategic guidance for optimization dispatch. The calculation and analysis of the transformed IEEE 39-node system and the simplified actual power grid verify the correctness and effectiveness of the proposed coordinated control strategy.
topic AC/DC hybrid power system
steady-state security region
two-stage coordinated control strategy
security distance sensitivity
linear regression
optimization dispatch
url https://ieeexplore.ieee.org/document/9151965/
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AT chenlu twostagecoordinatedcontrolstrategyofacdchybridpowersystembasedonsteadystatesecurityregion
AT zhongchen twostagecoordinatedcontrolstrategyofacdchybridpowersystembasedonsteadystatesecurityregion
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