Inverter Controls for Smooth Transition Operation of Networked Microgrids
Islanding sections of a distribution grid as microgrids and networking these microgrids offer promising opportunities for improving system reliability; however, this approach may need distributed energy resources (DERs) to switch between grid-connected and islanded operation without affecting the system stability. The Thevenin impedance of the power system at the DER point of common coupling changes due to networking actions. It is critical to have smooth transitions between modes to ensure stable system operation and to avoid nuisance tripping. This paper presents the design of a grid-forming (GFM)-capable inverter control scheme to reliably operate in distribution systems with networked microgrids. Control mechanisms for smooth transitions between grid-following (GFL) and GFM inverter modes are presented. First, we test the control mechanism on a simple two-source power system through electromagnetic transient (EMT) simulations using a digital real-time simulator. Then, we add multiple such DERs to the EMT model of a real-world distribution feeder and demonstrate stable operation between mode transitions during the networking of the microgrids.
Citation Formats
TY - DATA
AB - Islanding sections of a distribution grid as microgrids and networking these microgrids offer promising opportunities for improving system reliability; however, this approach may need distributed energy resources (DERs) to switch between grid-connected and islanded operation without affecting the system stability. The Thevenin impedance of the power system at the DER point of common coupling changes due to networking actions. It is critical to have smooth transitions between modes to ensure stable system operation and to avoid nuisance tripping. This paper presents the design of a grid-forming (GFM)-capable inverter control scheme to reliably operate in distribution systems with networked microgrids. Control mechanisms for smooth transitions between grid-following (GFL) and GFM inverter modes are presented. First, we test the control mechanism on a simple two-source power system through electromagnetic transient (EMT) simulations using a digital real-time simulator. Then, we add multiple such DERs to the EMT model of a real-world distribution feeder and demonstrate stable operation between mode transitions during the networking of the microgrids.
AU - Sawant, Jay Ramesh
A2 - Jain, Rishabh
A3 - Pratt, Annabelle
DB - C-MIX - Community Microgrid Information Exchange
DP - Open EI | National Laboratory of the Rockies
DO - 10.1049/icp.2023.0728
KW - Power electronics and inverters
KW - Power electronics
KW - Inverters
KW - Battery energy storage
KW - Solar
KW - Photovoltaics
KW - PV
KW - Diesel generators
KW - Other liquid-fuel generators
KW - Power plant controls
KW - SCADA
KW - Maintenance and operations
KW - Operations
KW - Maintenance
KW - Commissioning
KW - Planning and design
KW - Planning
KW - Design
LA - English
DA - 2023/01/01
PY - 2023
PB - NLR
T1 - Inverter Controls for Smooth Transition Operation of Networked Microgrids
UR - https://doi.org/10.1049/icp.2023.0728
ER -
Sawant, Jay Ramesh, et al. Inverter Controls for Smooth Transition Operation of Networked Microgrids. NLR, 1 January, 2023, C-MIX - Community Microgrid Information Exchange. https://doi.org/10.1049/icp.2023.0728.
Sawant, J., Jain, R., & Pratt, A. (2023). Inverter Controls for Smooth Transition Operation of Networked Microgrids. [Data set]. C-MIX - Community Microgrid Information Exchange. NLR. https://doi.org/10.1049/icp.2023.0728
Sawant, Jay Ramesh, Rishabh Jain, and Annabelle Pratt. Inverter Controls for Smooth Transition Operation of Networked Microgrids. NLR, January, 1, 2023. Distributed by C-MIX - Community Microgrid Information Exchange. https://doi.org/10.1049/icp.2023.0728
@misc{CMIX_Dataset_15,
title = {Inverter Controls for Smooth Transition Operation of Networked Microgrids},
author = {Sawant, Jay Ramesh and Jain, Rishabh and Pratt, Annabelle },
abstractNote = {Islanding sections of a distribution grid as microgrids and networking these microgrids offer promising opportunities for improving system reliability; however, this approach may need distributed energy resources (DERs) to switch between grid-connected and islanded operation without affecting the system stability. The Thevenin impedance of the power system at the DER point of common coupling changes due to networking actions. It is critical to have smooth transitions between modes to ensure stable system operation and to avoid nuisance tripping. This paper presents the design of a grid-forming (GFM)-capable inverter control scheme to reliably operate in distribution systems with networked microgrids. Control mechanisms for smooth transitions between grid-following (GFL) and GFM inverter modes are presented. First, we test the control mechanism on a simple two-source power system through electromagnetic transient (EMT) simulations using a digital real-time simulator. Then, we add multiple such DERs to the EMT model of a real-world distribution feeder and demonstrate stable operation between mode transitions during the networking of the microgrids.},
url = {https://cmix.openei.org/submissions/15},
year = {2023},
howpublished = {C-MIX - Community Microgrid Information Exchange, NLR, https://doi.org/10.1049/icp.2023.0728},
note = {Accessed: 2026-08-06},
doi = {10.1049/icp.2023.0728}
}
https://dx.doi.org/10.1049/icp.2023.0728
Details
Data from Jan 1, 2023
Last updated Mar 30, 2026
Submitted Jun 2, 2026
Organization
NLR
Contact
Jay Ramesh Sawant

