Electric Vehicle Ultra-Fast Battery Chargers: A Boost for Power System Stability?

As a consequence of the exponential growth of the electric vehicle (EV) market, DC fast-charging infrastructure is being rapidly deployed all around the world. Ultra-fast charging (UFC) stations are starting to pose serious challenges to the electric power system operation, mostly due to their high...

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Main Authors: Fabio Mandrile, Davide Cittanti, Vincenzo Mallemaci, Radu Bojoi
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:World Electric Vehicle Journal
Subjects:
Online Access:https://www.mdpi.com/2032-6653/12/1/16
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spelling doaj-2b649ddab6834c2bb6739fa7502acd652021-01-24T00:01:16ZengMDPI AGWorld Electric Vehicle Journal2032-66532021-01-0112161610.3390/wevj12010016Electric Vehicle Ultra-Fast Battery Chargers: A Boost for Power System Stability?Fabio Mandrile0Davide Cittanti1Vincenzo Mallemaci2Radu Bojoi3Energy Department “Galileo Ferraris”, Politecnico di Torino, 10129 Torino, ItalyEnergy Department “Galileo Ferraris”, Politecnico di Torino, 10129 Torino, ItalyEnergy Department “Galileo Ferraris”, Politecnico di Torino, 10129 Torino, ItalyEnergy Department “Galileo Ferraris”, Politecnico di Torino, 10129 Torino, ItalyAs a consequence of the exponential growth of the electric vehicle (EV) market, DC fast-charging infrastructure is being rapidly deployed all around the world. Ultra-fast charging (UFC) stations are starting to pose serious challenges to the electric power system operation, mostly due to their high peak power demand and unregulated discontinuous operation. To address these issues, local energy storage can be installed, ensuring a smoother grid power absorption profile and allowing to provide grid-supporting features. In this work, a control solution for the grid-side AC/DC converter of next-generation EV UFC stations is proposed. A virtual synchronous compensator (VSC) control algorithm is implemented, in order to lessen the impact of the charging station on the utility and to provide the full spectrum of grid ancillary services (i.e., frequency regulation, reactive power compensation, harmonic reduction, short circuit current generation, etc.). The proposed control strategy is verified experimentally on a downscaled 15 kVA three-phase inverter, emulating the grid front-end of the charging station.https://www.mdpi.com/2032-6653/12/1/16electric vehicles (EVs)battery chargersultra–fast charging (UFC)grid–connected convertersthree-phase invertersvirtual synchronous compensator (VSC)
collection DOAJ
language English
format Article
sources DOAJ
author Fabio Mandrile
Davide Cittanti
Vincenzo Mallemaci
Radu Bojoi
spellingShingle Fabio Mandrile
Davide Cittanti
Vincenzo Mallemaci
Radu Bojoi
Electric Vehicle Ultra-Fast Battery Chargers: A Boost for Power System Stability?
World Electric Vehicle Journal
electric vehicles (EVs)
battery chargers
ultra–fast charging (UFC)
grid–connected converters
three-phase inverters
virtual synchronous compensator (VSC)
author_facet Fabio Mandrile
Davide Cittanti
Vincenzo Mallemaci
Radu Bojoi
author_sort Fabio Mandrile
title Electric Vehicle Ultra-Fast Battery Chargers: A Boost for Power System Stability?
title_short Electric Vehicle Ultra-Fast Battery Chargers: A Boost for Power System Stability?
title_full Electric Vehicle Ultra-Fast Battery Chargers: A Boost for Power System Stability?
title_fullStr Electric Vehicle Ultra-Fast Battery Chargers: A Boost for Power System Stability?
title_full_unstemmed Electric Vehicle Ultra-Fast Battery Chargers: A Boost for Power System Stability?
title_sort electric vehicle ultra-fast battery chargers: a boost for power system stability?
publisher MDPI AG
series World Electric Vehicle Journal
issn 2032-6653
publishDate 2021-01-01
description As a consequence of the exponential growth of the electric vehicle (EV) market, DC fast-charging infrastructure is being rapidly deployed all around the world. Ultra-fast charging (UFC) stations are starting to pose serious challenges to the electric power system operation, mostly due to their high peak power demand and unregulated discontinuous operation. To address these issues, local energy storage can be installed, ensuring a smoother grid power absorption profile and allowing to provide grid-supporting features. In this work, a control solution for the grid-side AC/DC converter of next-generation EV UFC stations is proposed. A virtual synchronous compensator (VSC) control algorithm is implemented, in order to lessen the impact of the charging station on the utility and to provide the full spectrum of grid ancillary services (i.e., frequency regulation, reactive power compensation, harmonic reduction, short circuit current generation, etc.). The proposed control strategy is verified experimentally on a downscaled 15 kVA three-phase inverter, emulating the grid front-end of the charging station.
topic electric vehicles (EVs)
battery chargers
ultra–fast charging (UFC)
grid–connected converters
three-phase inverters
virtual synchronous compensator (VSC)
url https://www.mdpi.com/2032-6653/12/1/16
work_keys_str_mv AT fabiomandrile electricvehicleultrafastbatterychargersaboostforpowersystemstability
AT davidecittanti electricvehicleultrafastbatterychargersaboostforpowersystemstability
AT vincenzomallemaci electricvehicleultrafastbatterychargersaboostforpowersystemstability
AT radubojoi electricvehicleultrafastbatterychargersaboostforpowersystemstability
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