Mitigation of power system forced oscillations based on unified power flow controller

Abstract Forced oscillations (FOs), or low-frequency oscillations (LFOs) caused by periodic, continuous, small power disturbances, threaten the security and stability of power systems. Flexible AC transmission system (FACTS) devices can effectively mitigate LFOs via stability control. We propose a n...

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Main Authors: Ping JIANG, Zikai FAN, Shuang FENG, Xi WU, Hui CAI, Zhenjian XIE
Format: Article
Language:English
Published: IEEE 2018-04-01
Series:Journal of Modern Power Systems and Clean Energy
Subjects:
Online Access:http://link.springer.com/article/10.1007/s40565-018-0405-5
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spelling doaj-0c9d025c0ce0484d884261842bcf95be2021-05-02T23:13:35ZengIEEEJournal of Modern Power Systems and Clean Energy2196-56252196-54202018-04-01719911210.1007/s40565-018-0405-5Mitigation of power system forced oscillations based on unified power flow controllerPing JIANG0Zikai FAN1Shuang FENG2Xi WU3Hui CAI4Zhenjian XIE5School of Electrical Engineering, Southeast UniversitySchool of Electrical Engineering, Southeast UniversitySchool of Electrical Engineering, Southeast UniversitySchool of Electrical Engineering, Southeast UniversityState Grid Jiangsu Economic Research InstituteState Grid Jiangsu Economic Research InstituteAbstract Forced oscillations (FOs), or low-frequency oscillations (LFOs) caused by periodic, continuous, small power disturbances, threaten the security and stability of power systems. Flexible AC transmission system (FACTS) devices can effectively mitigate LFOs via stability control. We propose a novel method that mitigates FOs by shifting the resonant frequency. Based on the features of the linearized swing equation of a generator, a resonant frequency shift can be achieved by controlling the synchronous torque coefficient using a unified power flow controller (UPFC). Because of the resonance mechanism, the steady-state response of an FO can be effectively mitigated when the resonant frequency changes from the original one, which was close to the disturbance frequency. The principle is that a change in resonant frequency affects the resonance condition. Simulations are conducted in a single-machine infinite-bus (SMIB) system, and the simulation results verify that the method is straightforward to implement and can significantly mitigate FOs. The controller robustness when the resonant frequency is not accurately estimated is also analyzed in the simulations.http://link.springer.com/article/10.1007/s40565-018-0405-5Forced oscillationsFlexible AC transmission systemsUnified power flow controllerStability control
collection DOAJ
language English
format Article
sources DOAJ
author Ping JIANG
Zikai FAN
Shuang FENG
Xi WU
Hui CAI
Zhenjian XIE
spellingShingle Ping JIANG
Zikai FAN
Shuang FENG
Xi WU
Hui CAI
Zhenjian XIE
Mitigation of power system forced oscillations based on unified power flow controller
Journal of Modern Power Systems and Clean Energy
Forced oscillations
Flexible AC transmission systems
Unified power flow controller
Stability control
author_facet Ping JIANG
Zikai FAN
Shuang FENG
Xi WU
Hui CAI
Zhenjian XIE
author_sort Ping JIANG
title Mitigation of power system forced oscillations based on unified power flow controller
title_short Mitigation of power system forced oscillations based on unified power flow controller
title_full Mitigation of power system forced oscillations based on unified power flow controller
title_fullStr Mitigation of power system forced oscillations based on unified power flow controller
title_full_unstemmed Mitigation of power system forced oscillations based on unified power flow controller
title_sort mitigation of power system forced oscillations based on unified power flow controller
publisher IEEE
series Journal of Modern Power Systems and Clean Energy
issn 2196-5625
2196-5420
publishDate 2018-04-01
description Abstract Forced oscillations (FOs), or low-frequency oscillations (LFOs) caused by periodic, continuous, small power disturbances, threaten the security and stability of power systems. Flexible AC transmission system (FACTS) devices can effectively mitigate LFOs via stability control. We propose a novel method that mitigates FOs by shifting the resonant frequency. Based on the features of the linearized swing equation of a generator, a resonant frequency shift can be achieved by controlling the synchronous torque coefficient using a unified power flow controller (UPFC). Because of the resonance mechanism, the steady-state response of an FO can be effectively mitigated when the resonant frequency changes from the original one, which was close to the disturbance frequency. The principle is that a change in resonant frequency affects the resonance condition. Simulations are conducted in a single-machine infinite-bus (SMIB) system, and the simulation results verify that the method is straightforward to implement and can significantly mitigate FOs. The controller robustness when the resonant frequency is not accurately estimated is also analyzed in the simulations.
topic Forced oscillations
Flexible AC transmission systems
Unified power flow controller
Stability control
url http://link.springer.com/article/10.1007/s40565-018-0405-5
work_keys_str_mv AT pingjiang mitigationofpowersystemforcedoscillationsbasedonunifiedpowerflowcontroller
AT zikaifan mitigationofpowersystemforcedoscillationsbasedonunifiedpowerflowcontroller
AT shuangfeng mitigationofpowersystemforcedoscillationsbasedonunifiedpowerflowcontroller
AT xiwu mitigationofpowersystemforcedoscillationsbasedonunifiedpowerflowcontroller
AT huicai mitigationofpowersystemforcedoscillationsbasedonunifiedpowerflowcontroller
AT zhenjianxie mitigationofpowersystemforcedoscillationsbasedonunifiedpowerflowcontroller
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