Dynamic Behaviors and Protection Strategy of Synchronous Condenser Integrated Power System Under Non-Full Phase Fault Conditions

When a synchronous condenser connected power network encounters a non-full phase fault, the amplitude of the stator current is severely suppressed by the magnetic field generated inside the synchronous condenser, in which the sensitivity of failure protection of circuit breakers are affected resulti...

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Main Authors: Puyu Wang, Xing Liu, Qingwen Mou, Wei Gu, Yidan Liu
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8764361/
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spelling doaj-3c6b059e5a034df9a79f29123d9b37202021-04-05T17:14:17ZengIEEEIEEE Access2169-35362019-01-01710412110413110.1109/ACCESS.2019.29289688764361Dynamic Behaviors and Protection Strategy of Synchronous Condenser Integrated Power System Under Non-Full Phase Fault ConditionsPuyu Wang0Xing Liu1https://orcid.org/0000-0002-0581-2185Qingwen Mou2https://orcid.org/0000-0002-4112-366XWei Gu3Yidan Liu4Department of Electrical Engineering, School of Automation, Nanjing University of Science & Technology, Nanjing, ChinaDepartment of Electrical Engineering, School of Automation, Nanjing University of Science & Technology, Nanjing, ChinaDepartment of Electrical Engineering, School of Automation, Nanjing University of Science & Technology, Nanjing, ChinaJiangsu Provincial Key Laboratory of Smart Grid Technology & Equipment, Southeast University, Nanjing, ChinaJiangsu Electric Power Maintenance Branch Company, Nanjing, ChinaWhen a synchronous condenser connected power network encounters a non-full phase fault, the amplitude of the stator current is severely suppressed by the magnetic field generated inside the synchronous condenser, in which the sensitivity of failure protection of circuit breakers are affected resulting in rejection of failure protection. In severe cases, it may endanger the secure and stable operation of the synchronous condenser and the related equipment. In this paper, dynamic behaviors of a synchronous condenser without/with de-excitation action under non-full phase faults are investigated with the following four contributions: 1) A mathematical model under non-full phase fault conditions is established. The theoretical value of fault currents is calculated when the synchronous condenser is without/with de-excitation action. 2) The inferiority/superiority without/with de-excitation action is analyzed. The tendency of dynamic behaviors of variables, including the phase current, negative-sequence, and zero-sequence currents, after de-excitation action, is obtained. A selection criterion of failure protection is proposed according to the dynamic behaviors of negative- and zero-sequence currents. 3) Based on the consistent characteristics of the theoretical calculation, simulations in PSCAD/EMTDC and recorded on-site data from WaveEx, the fact that the simulation model established in PSCAD/EMTDC can provide an effective verification platform for practical applications and data analysis of a synchronous condenser integrated power grid under non-full phase faults is justified. 4) An improved operational threshold of failure protection of circuit breakers is proposed. It can reduce the rejection operation probability of failure protection, which improves the protection sensitivity and enhances the security of the system operation. The simulation results justify the necessity and reliability of the criterion setting proposed for failure protection.https://ieeexplore.ieee.org/document/8764361/Synchronous condensernon-full phase faultwithout/with de-excitation actionfailure protection of circuit breakersselection criterionand operational threshold
collection DOAJ
language English
format Article
sources DOAJ
author Puyu Wang
Xing Liu
Qingwen Mou
Wei Gu
Yidan Liu
spellingShingle Puyu Wang
Xing Liu
Qingwen Mou
Wei Gu
Yidan Liu
Dynamic Behaviors and Protection Strategy of Synchronous Condenser Integrated Power System Under Non-Full Phase Fault Conditions
IEEE Access
Synchronous condenser
non-full phase fault
without/with de-excitation action
failure protection of circuit breakers
selection criterion
and operational threshold
author_facet Puyu Wang
Xing Liu
Qingwen Mou
Wei Gu
Yidan Liu
author_sort Puyu Wang
title Dynamic Behaviors and Protection Strategy of Synchronous Condenser Integrated Power System Under Non-Full Phase Fault Conditions
title_short Dynamic Behaviors and Protection Strategy of Synchronous Condenser Integrated Power System Under Non-Full Phase Fault Conditions
title_full Dynamic Behaviors and Protection Strategy of Synchronous Condenser Integrated Power System Under Non-Full Phase Fault Conditions
title_fullStr Dynamic Behaviors and Protection Strategy of Synchronous Condenser Integrated Power System Under Non-Full Phase Fault Conditions
title_full_unstemmed Dynamic Behaviors and Protection Strategy of Synchronous Condenser Integrated Power System Under Non-Full Phase Fault Conditions
title_sort dynamic behaviors and protection strategy of synchronous condenser integrated power system under non-full phase fault conditions
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description When a synchronous condenser connected power network encounters a non-full phase fault, the amplitude of the stator current is severely suppressed by the magnetic field generated inside the synchronous condenser, in which the sensitivity of failure protection of circuit breakers are affected resulting in rejection of failure protection. In severe cases, it may endanger the secure and stable operation of the synchronous condenser and the related equipment. In this paper, dynamic behaviors of a synchronous condenser without/with de-excitation action under non-full phase faults are investigated with the following four contributions: 1) A mathematical model under non-full phase fault conditions is established. The theoretical value of fault currents is calculated when the synchronous condenser is without/with de-excitation action. 2) The inferiority/superiority without/with de-excitation action is analyzed. The tendency of dynamic behaviors of variables, including the phase current, negative-sequence, and zero-sequence currents, after de-excitation action, is obtained. A selection criterion of failure protection is proposed according to the dynamic behaviors of negative- and zero-sequence currents. 3) Based on the consistent characteristics of the theoretical calculation, simulations in PSCAD/EMTDC and recorded on-site data from WaveEx, the fact that the simulation model established in PSCAD/EMTDC can provide an effective verification platform for practical applications and data analysis of a synchronous condenser integrated power grid under non-full phase faults is justified. 4) An improved operational threshold of failure protection of circuit breakers is proposed. It can reduce the rejection operation probability of failure protection, which improves the protection sensitivity and enhances the security of the system operation. The simulation results justify the necessity and reliability of the criterion setting proposed for failure protection.
topic Synchronous condenser
non-full phase fault
without/with de-excitation action
failure protection of circuit breakers
selection criterion
and operational threshold
url https://ieeexplore.ieee.org/document/8764361/
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