Resilient Operation of Grid-Forming Inverters Under Large-Scale Disturbances in Low Inertia Power System

The future power grid is transitioning toward a low inertia power system due to the displacement of synchronous generators (SG)-based generation sources and incorporating inverters-based renewable energy resources. Heterogeneous grid-forming inverters (GFMIs) are expected to be dominant sources in t...

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Main Authors: Muhammad F. Umar, Amirhosein Gohari Nazari, Mohammad B. Shadmand, Haitham Abu-Rub
Format: Article
Language:English
Published: IEEE 2024-01-01
Series:IEEE Open Journal of the Industrial Electronics Society
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Online Access:https://ieeexplore.ieee.org/document/10755083/
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author Muhammad F. Umar
Amirhosein Gohari Nazari
Mohammad B. Shadmand
Haitham Abu-Rub
author_facet Muhammad F. Umar
Amirhosein Gohari Nazari
Mohammad B. Shadmand
Haitham Abu-Rub
author_sort Muhammad F. Umar
collection DOAJ
description The future power grid is transitioning toward a low inertia power system due to the displacement of synchronous generators (SG)-based generation sources and incorporating inverters-based renewable energy resources. Heterogeneous grid-forming inverters (GFMIs) are expected to be dominant sources in the power generation mix due to several benefits that are inherited in this inverter control. However, these GFMIs impose different transients on the power grid that did not exist in the conventional power grid. The effect of this heterogeneity on the dynamic behavior of such power grid with a fleet of GFMIs becomes more significant under large-scale disturbances such as short circuit faults. Particularly, because of the noncoherent and heterogeneous dynamic behavior of GFMIs in the presence of the conventional overcurrent protection schemes posing several challenges to the resiliency of a power grid during a fault and in a postfault state. To improve the resiliency of the power grid with heterogeneous GFMIs during these conditions, a coherency enforcement scheme among heterogeneous GFMI is proposed. This ensures a coherent transition of GFMIs from the normal to fault-ride-through mode and from the fault-ride-through mode to normal condition when the fault is cleared. Moreover, the proposed improvements in GFMI control prevent the excessive change/acceleration in the voltage angle of GFMIs that prevents the loss of synchronism, improves the dynamic behavior of GFMIs, and ensure seamless operation under large-scale disturbances, resulting in enhancing resiliency of power grid. These claims in the resiliency enhancements for a power grid dominated with heterogeneous GFMIs under large-scale disturbances are validated via hardware-in-the-loop experimental case studies.
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spelling doaj-art-86fae4b774574452b5f101b9c60ad3002025-01-22T00:00:19ZengIEEEIEEE Open Journal of the Industrial Electronics Society2644-12842024-01-0151286129910.1109/OJIES.2024.350107810755083Resilient Operation of Grid-Forming Inverters Under Large-Scale Disturbances in Low Inertia Power SystemMuhammad F. Umar0https://orcid.org/0000-0003-1232-0581Amirhosein Gohari Nazari1https://orcid.org/0000-0002-0725-5757Mohammad B. Shadmand2https://orcid.org/0000-0002-3950-8640Haitham Abu-Rub3https://orcid.org/0000-0001-8687-3942Department of Electrical and Computer Engineering, University of Illinois Chicago, Chicago, IL, USADepartment of Electrical and Computer Engineering, University of Illinois Chicago, Chicago, IL, USADepartment of Electrical and Computer Engineering, University of Illinois Chicago, Chicago, IL, USACollege of Science and Engineering, Hamad Bin Khalifa University, Doha, QatarThe future power grid is transitioning toward a low inertia power system due to the displacement of synchronous generators (SG)-based generation sources and incorporating inverters-based renewable energy resources. Heterogeneous grid-forming inverters (GFMIs) are expected to be dominant sources in the power generation mix due to several benefits that are inherited in this inverter control. However, these GFMIs impose different transients on the power grid that did not exist in the conventional power grid. The effect of this heterogeneity on the dynamic behavior of such power grid with a fleet of GFMIs becomes more significant under large-scale disturbances such as short circuit faults. Particularly, because of the noncoherent and heterogeneous dynamic behavior of GFMIs in the presence of the conventional overcurrent protection schemes posing several challenges to the resiliency of a power grid during a fault and in a postfault state. To improve the resiliency of the power grid with heterogeneous GFMIs during these conditions, a coherency enforcement scheme among heterogeneous GFMI is proposed. This ensures a coherent transition of GFMIs from the normal to fault-ride-through mode and from the fault-ride-through mode to normal condition when the fault is cleared. Moreover, the proposed improvements in GFMI control prevent the excessive change/acceleration in the voltage angle of GFMIs that prevents the loss of synchronism, improves the dynamic behavior of GFMIs, and ensure seamless operation under large-scale disturbances, resulting in enhancing resiliency of power grid. These claims in the resiliency enhancements for a power grid dominated with heterogeneous GFMIs under large-scale disturbances are validated via hardware-in-the-loop experimental case studies.https://ieeexplore.ieee.org/document/10755083/Coherent transient responsefault-ride throughgrid forming inverterscoherency enforcementlow inertia power system
spellingShingle Muhammad F. Umar
Amirhosein Gohari Nazari
Mohammad B. Shadmand
Haitham Abu-Rub
Resilient Operation of Grid-Forming Inverters Under Large-Scale Disturbances in Low Inertia Power System
IEEE Open Journal of the Industrial Electronics Society
Coherent transient response
fault-ride through
grid forming inverters
coherency enforcement
low inertia power system
title Resilient Operation of Grid-Forming Inverters Under Large-Scale Disturbances in Low Inertia Power System
title_full Resilient Operation of Grid-Forming Inverters Under Large-Scale Disturbances in Low Inertia Power System
title_fullStr Resilient Operation of Grid-Forming Inverters Under Large-Scale Disturbances in Low Inertia Power System
title_full_unstemmed Resilient Operation of Grid-Forming Inverters Under Large-Scale Disturbances in Low Inertia Power System
title_short Resilient Operation of Grid-Forming Inverters Under Large-Scale Disturbances in Low Inertia Power System
title_sort resilient operation of grid forming inverters under large scale disturbances in low inertia power system
topic Coherent transient response
fault-ride through
grid forming inverters
coherency enforcement
low inertia power system
url https://ieeexplore.ieee.org/document/10755083/
work_keys_str_mv AT muhammadfumar resilientoperationofgridforminginvertersunderlargescaledisturbancesinlowinertiapowersystem
AT amirhoseingoharinazari resilientoperationofgridforminginvertersunderlargescaledisturbancesinlowinertiapowersystem
AT mohammadbshadmand resilientoperationofgridforminginvertersunderlargescaledisturbancesinlowinertiapowersystem
AT haithamaburub resilientoperationofgridforminginvertersunderlargescaledisturbancesinlowinertiapowersystem