Diagnosis of the Static Excitation Systems of Synchronous Generators with the Use of Hardware-In-the-Loop Technologies

In this paper, testing and diagnosis methods for the static excitation systems of power plant synchronous generators using Hardware-In-the-Loop technology are described. These methods allow a physical excitation system to be connected to a real-time model of a power plant unit. A feature of a static...

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Autores principales: Andriy Kutsyk, Mykola Semeniuk, Mariusz Korkosz, Grzegorz Podskarbi
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Lenguaje:EN
Publicado: MDPI AG 2021
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spelling oai:doaj.org-article:f93fc7f675a74658a9bfab148c4e8e1c2021-11-11T15:46:00ZDiagnosis of the Static Excitation Systems of Synchronous Generators with the Use of Hardware-In-the-Loop Technologies10.3390/en142169371996-1073https://doaj.org/article/f93fc7f675a74658a9bfab148c4e8e1c2021-10-01T00:00:00Zhttps://www.mdpi.com/1996-1073/14/21/6937https://doaj.org/toc/1996-1073In this paper, testing and diagnosis methods for the static excitation systems of power plant synchronous generators using Hardware-In-the-Loop technology are described. These methods allow a physical excitation system to be connected to a real-time model of a power plant unit. A feature of a static excitation system is the presence of generator self-excitation—that is, when the input voltages of the excitation system are defined by a synchronous generator. These voltages are determining by the digital model, which creates additional difficulties with combining a digital model with a real excitation system. Various ways to solve this problem are described in this article; in particular, we focus on the option in which the gate-impulses of a thyristor converter are applied to the digital model by a real static excitation system. The real-time models are based on the method of average voltages in the integration step. This method is effective for providing numerical stability for the models of power schemes and their functioning in real time mode over a long period. A synchronization method for the calculation time of the model with real time is described. The adequacy of the described method is proved by the results of the static excitation system of synchronous generators testing in operating and fault modes.Andriy KutsykMykola SemeniukMariusz KorkoszGrzegorz PodskarbiMDPI AGarticlereal-time modellinghybrid modelAVIS methodsynchronous generatorexcitation systemTechnologyTENEnergies, Vol 14, Iss 6937, p 6937 (2021)
institution DOAJ
collection DOAJ
language EN
topic real-time modelling
hybrid model
AVIS method
synchronous generator
excitation system
Technology
T
spellingShingle real-time modelling
hybrid model
AVIS method
synchronous generator
excitation system
Technology
T
Andriy Kutsyk
Mykola Semeniuk
Mariusz Korkosz
Grzegorz Podskarbi
Diagnosis of the Static Excitation Systems of Synchronous Generators with the Use of Hardware-In-the-Loop Technologies
description In this paper, testing and diagnosis methods for the static excitation systems of power plant synchronous generators using Hardware-In-the-Loop technology are described. These methods allow a physical excitation system to be connected to a real-time model of a power plant unit. A feature of a static excitation system is the presence of generator self-excitation—that is, when the input voltages of the excitation system are defined by a synchronous generator. These voltages are determining by the digital model, which creates additional difficulties with combining a digital model with a real excitation system. Various ways to solve this problem are described in this article; in particular, we focus on the option in which the gate-impulses of a thyristor converter are applied to the digital model by a real static excitation system. The real-time models are based on the method of average voltages in the integration step. This method is effective for providing numerical stability for the models of power schemes and their functioning in real time mode over a long period. A synchronization method for the calculation time of the model with real time is described. The adequacy of the described method is proved by the results of the static excitation system of synchronous generators testing in operating and fault modes.
format article
author Andriy Kutsyk
Mykola Semeniuk
Mariusz Korkosz
Grzegorz Podskarbi
author_facet Andriy Kutsyk
Mykola Semeniuk
Mariusz Korkosz
Grzegorz Podskarbi
author_sort Andriy Kutsyk
title Diagnosis of the Static Excitation Systems of Synchronous Generators with the Use of Hardware-In-the-Loop Technologies
title_short Diagnosis of the Static Excitation Systems of Synchronous Generators with the Use of Hardware-In-the-Loop Technologies
title_full Diagnosis of the Static Excitation Systems of Synchronous Generators with the Use of Hardware-In-the-Loop Technologies
title_fullStr Diagnosis of the Static Excitation Systems of Synchronous Generators with the Use of Hardware-In-the-Loop Technologies
title_full_unstemmed Diagnosis of the Static Excitation Systems of Synchronous Generators with the Use of Hardware-In-the-Loop Technologies
title_sort diagnosis of the static excitation systems of synchronous generators with the use of hardware-in-the-loop technologies
publisher MDPI AG
publishDate 2021
url https://doaj.org/article/f93fc7f675a74658a9bfab148c4e8e1c
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AT mariuszkorkosz diagnosisofthestaticexcitationsystemsofsynchronousgeneratorswiththeuseofhardwareinthelooptechnologies
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