Impact of IBR Location and Parameters on Inter-Area Oscillation Modes in Bulk Power Grids

To ensure safe and reliable operations, electric utilities must understand how power grid dynamics are evolving as the existing synchronous machine-dominated systems incorporate increasing amounts of inverter-based resources (IBRs). A pressing concern is understanding if and how the well-known inter...

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Main Authors: Shuchismita Biswas, Xue Lyu, Quan Nguyen, Xiaoyuan Fan, Minghui Lu, Wei Du
Format: Article
Language:English
Published: IEEE 2025-01-01
Series:IEEE Access
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Online Access:https://ieeexplore.ieee.org/document/10810424/
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author Shuchismita Biswas
Xue Lyu
Quan Nguyen
Xiaoyuan Fan
Minghui Lu
Wei Du
author_facet Shuchismita Biswas
Xue Lyu
Quan Nguyen
Xiaoyuan Fan
Minghui Lu
Wei Du
author_sort Shuchismita Biswas
collection DOAJ
description To ensure safe and reliable operations, electric utilities must understand how power grid dynamics are evolving as the existing synchronous machine-dominated systems incorporate increasing amounts of inverter-based resources (IBRs). A pressing concern is understanding if and how the well-known inter-area modes of oscillation will change due to increasing inverter penetration. To address this question, this paper derives an explicit analytical expression to identify the major factors influencing changes in inter-area mode properties when synchronous machines are replaced by IBRs. The IBRs are assumed to implement droop-based grid forming (GFM) control, while the analysis can be extended to other inverter control methods. It is concluded that oscillation mode changes are highly dependent on the grid location where synchronous machines are removed and/or IBRs are added, and the observed changes can be mitigated, to some extent, by tuning two of the GFM inverter control parameters, namely 1) the active power-frequency droop coefficient; and 2) the time constant of the active power measurement low-pass filter. The analytical conclusions are validated using full dynamic simulations of the IEEE 39-bus benchmark system, and the 2031 heavy-winter planning model of the US Western Interconnection. Conclusions from this study will help utilities understand 1) if/which inter-area modes will continue to be of concern in their footprints in an IBR-dominated future, and 2) identify areas where the displacement of synchronous machines may significantly alter the properties of existing modes, necessitating additional analysis during interconnection studies.
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spelling doaj-art-8a7db9996ea24a4f9413f4a212cc35d12025-01-15T00:03:17ZengIEEEIEEE Access2169-35362025-01-01136556656610.1109/ACCESS.2024.352049710810424Impact of IBR Location and Parameters on Inter-Area Oscillation Modes in Bulk Power GridsShuchismita Biswas0https://orcid.org/0000-0003-2090-6830Xue Lyu1https://orcid.org/0000-0001-7208-6745Quan Nguyen2https://orcid.org/0000-0003-4776-9557Xiaoyuan Fan3https://orcid.org/0000-0003-3868-8106Minghui Lu4https://orcid.org/0000-0001-6002-5902Wei Du5https://orcid.org/0000-0001-5954-3622Pacific Northwest National Laboratory (PNNL), Richland, WA, USAPacific Northwest National Laboratory (PNNL), Richland, WA, USAPacific Northwest National Laboratory (PNNL), Richland, WA, USAPacific Northwest National Laboratory (PNNL), Richland, WA, USAPacific Northwest National Laboratory (PNNL), Richland, WA, USAPacific Northwest National Laboratory (PNNL), Richland, WA, USATo ensure safe and reliable operations, electric utilities must understand how power grid dynamics are evolving as the existing synchronous machine-dominated systems incorporate increasing amounts of inverter-based resources (IBRs). A pressing concern is understanding if and how the well-known inter-area modes of oscillation will change due to increasing inverter penetration. To address this question, this paper derives an explicit analytical expression to identify the major factors influencing changes in inter-area mode properties when synchronous machines are replaced by IBRs. The IBRs are assumed to implement droop-based grid forming (GFM) control, while the analysis can be extended to other inverter control methods. It is concluded that oscillation mode changes are highly dependent on the grid location where synchronous machines are removed and/or IBRs are added, and the observed changes can be mitigated, to some extent, by tuning two of the GFM inverter control parameters, namely 1) the active power-frequency droop coefficient; and 2) the time constant of the active power measurement low-pass filter. The analytical conclusions are validated using full dynamic simulations of the IEEE 39-bus benchmark system, and the 2031 heavy-winter planning model of the US Western Interconnection. Conclusions from this study will help utilities understand 1) if/which inter-area modes will continue to be of concern in their footprints in an IBR-dominated future, and 2) identify areas where the displacement of synchronous machines may significantly alter the properties of existing modes, necessitating additional analysis during interconnection studies.https://ieeexplore.ieee.org/document/10810424/Inter-area oscillation modesdamping ratiogrid-forming inverterseigenvalue sensitivity
spellingShingle Shuchismita Biswas
Xue Lyu
Quan Nguyen
Xiaoyuan Fan
Minghui Lu
Wei Du
Impact of IBR Location and Parameters on Inter-Area Oscillation Modes in Bulk Power Grids
IEEE Access
Inter-area oscillation modes
damping ratio
grid-forming inverters
eigenvalue sensitivity
title Impact of IBR Location and Parameters on Inter-Area Oscillation Modes in Bulk Power Grids
title_full Impact of IBR Location and Parameters on Inter-Area Oscillation Modes in Bulk Power Grids
title_fullStr Impact of IBR Location and Parameters on Inter-Area Oscillation Modes in Bulk Power Grids
title_full_unstemmed Impact of IBR Location and Parameters on Inter-Area Oscillation Modes in Bulk Power Grids
title_short Impact of IBR Location and Parameters on Inter-Area Oscillation Modes in Bulk Power Grids
title_sort impact of ibr location and parameters on inter area oscillation modes in bulk power grids
topic Inter-area oscillation modes
damping ratio
grid-forming inverters
eigenvalue sensitivity
url https://ieeexplore.ieee.org/document/10810424/
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