Testing Photovoltaic Power Plants for Participation in General Primary Frequency Control under Various Topology and Operating Conditions
The energy transition is accompanied by developing a digital decentralized low-carbon energy infrastructure with renewable-based generating plants as its main elements. In 2020, 15 photovoltaic power plants (PVPs) with an installed capacity of 364 MW were commissioned in Russia, which is 21.08% of t...
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Online Access: | https://www.mdpi.com/1996-1073/14/16/5179 |
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doaj-00ae505132924826ab090cf664075b672021-08-26T13:43:43ZengMDPI AGEnergies1996-10732021-08-01145179517910.3390/en14165179Testing Photovoltaic Power Plants for Participation in General Primary Frequency Control under Various Topology and Operating ConditionsAndrey Rylov0Pavel Ilyushin1Aleksandr Kulikov2Konstantin Suslov3Company Management, SIGMA Limited Liability Company, 295034 Simferopol, RussiaDepartment of Research on the Relationship between Energy and the Economy, Energy Research Institute of the Russian Academy of Sciences, 117186 Moscow, RussiaDepartment of Electroenergetics, Power Supply and Power Electronics, Nizhny Novgorod State Technical University n.a. R.E. Alekseev, 603950 Nizhny Novgorod, RussiaDepartment of Power Supply and Electrical Engineering, Irkutsk National Research Technical University, 664074 Irkutsk, RussiaThe energy transition is accompanied by developing a digital decentralized low-carbon energy infrastructure with renewable-based generating plants as its main elements. In 2020, 15 photovoltaic power plants (PVPs) with an installed capacity of 364 MW were commissioned in Russia, which is 21.08% of the total installed PVP capacity of Russia. The findings of an analysis of Russia’s current regulatory and technical documents (RTD) concerning the frequency and active power flow control are presented. They indicate that all PVPs must participate in the general primary frequency control (GPFC). This requirement is due to large frequency deviations of transient processes resulting from an emergency active power shortage, which can shut down frequency-maintaining generating plants by relay or process protection devices and industrial consumers with significant damage to them. The requirements suggest full-scale tests of PVP to confirm their readiness for participation in GPFC. The program and results of checking the algorithm of change in the PVP active power, depending on frequency, are demonstrated with an example of one PVP. The full-scale tests confirmed the compliance of the certified PVP with this requirement. The plans for involving PVPs in the power flow control under various topology and operation conditions are considered.https://www.mdpi.com/1996-1073/14/16/5179photovoltaic power plantgeneral primary frequency controloff-grid operationemergency active power shortagefull-scale testspower flow control |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Andrey Rylov Pavel Ilyushin Aleksandr Kulikov Konstantin Suslov |
spellingShingle |
Andrey Rylov Pavel Ilyushin Aleksandr Kulikov Konstantin Suslov Testing Photovoltaic Power Plants for Participation in General Primary Frequency Control under Various Topology and Operating Conditions Energies photovoltaic power plant general primary frequency control off-grid operation emergency active power shortage full-scale tests power flow control |
author_facet |
Andrey Rylov Pavel Ilyushin Aleksandr Kulikov Konstantin Suslov |
author_sort |
Andrey Rylov |
title |
Testing Photovoltaic Power Plants for Participation in General Primary Frequency Control under Various Topology and Operating Conditions |
title_short |
Testing Photovoltaic Power Plants for Participation in General Primary Frequency Control under Various Topology and Operating Conditions |
title_full |
Testing Photovoltaic Power Plants for Participation in General Primary Frequency Control under Various Topology and Operating Conditions |
title_fullStr |
Testing Photovoltaic Power Plants for Participation in General Primary Frequency Control under Various Topology and Operating Conditions |
title_full_unstemmed |
Testing Photovoltaic Power Plants for Participation in General Primary Frequency Control under Various Topology and Operating Conditions |
title_sort |
testing photovoltaic power plants for participation in general primary frequency control under various topology and operating conditions |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2021-08-01 |
description |
The energy transition is accompanied by developing a digital decentralized low-carbon energy infrastructure with renewable-based generating plants as its main elements. In 2020, 15 photovoltaic power plants (PVPs) with an installed capacity of 364 MW were commissioned in Russia, which is 21.08% of the total installed PVP capacity of Russia. The findings of an analysis of Russia’s current regulatory and technical documents (RTD) concerning the frequency and active power flow control are presented. They indicate that all PVPs must participate in the general primary frequency control (GPFC). This requirement is due to large frequency deviations of transient processes resulting from an emergency active power shortage, which can shut down frequency-maintaining generating plants by relay or process protection devices and industrial consumers with significant damage to them. The requirements suggest full-scale tests of PVP to confirm their readiness for participation in GPFC. The program and results of checking the algorithm of change in the PVP active power, depending on frequency, are demonstrated with an example of one PVP. The full-scale tests confirmed the compliance of the certified PVP with this requirement. The plans for involving PVPs in the power flow control under various topology and operation conditions are considered. |
topic |
photovoltaic power plant general primary frequency control off-grid operation emergency active power shortage full-scale tests power flow control |
url |
https://www.mdpi.com/1996-1073/14/16/5179 |
work_keys_str_mv |
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