Study of Seamless Microgrid Transition Operation Using Grid-Forming Inverters

Publicly accessible License 

This paper investigates operational techniques to achieve seamless (smooth) microgrid (MG) transitions by dispatching a grid-forming (GFM) inverter. In traditional approaches, the GFM inverter must switch between grid-following (GFL) and GFM control modes during MG transition operation. Today's inverter technology allows GFM inverters to always operate in GFM control mode, so it is worth exploring how to use them to achieve smooth MG transition operation. This paper proposes three operational techniques: a traditional scheme of switching between GFL and GFM control; a new scheme of consistent GFM control and shifting the droop intercept up before islanding operation; and a new scheme of consistent GFM control and shifting the droop intercept up before synchronization operation. A full hardware setup is established to compare the three techniques and showcase their implementations in real-world applications. The results show that the third technique outperforms the others and exhibits the best transition performance because the GFM inverter maintains the same operating points during the transition operation. Therefore, we conclude that ensuring smooth MG transition operation requires that the GFM inverter(s) maintain the same operating points (v, f, P, Q, and phase angle) during the transition operation in addition to minimizes the point of common coupling power flow

Citation Formats

TY - DATA AB - This paper investigates operational techniques to achieve seamless (smooth) microgrid (MG) transitions by dispatching a grid-forming (GFM) inverter. In traditional approaches, the GFM inverter must switch between grid-following (GFL) and GFM control modes during MG transition operation. Today's inverter technology allows GFM inverters to always operate in GFM control mode, so it is worth exploring how to use them to achieve smooth MG transition operation. This paper proposes three operational techniques: a traditional scheme of switching between GFL and GFM control; a new scheme of consistent GFM control and shifting the droop intercept up before islanding operation; and a new scheme of consistent GFM control and shifting the droop intercept up before synchronization operation. A full hardware setup is established to compare the three techniques and showcase their implementations in real-world applications. The results show that the third technique outperforms the others and exhibits the best transition performance because the GFM inverter maintains the same operating points during the transition operation. Therefore, we conclude that ensuring smooth MG transition operation requires that the GFM inverter(s) maintain the same operating points (v, f, P, Q, and phase angle) during the transition operation in addition to minimizes the point of common coupling power flow AU - Wang , Jing A2 - Ganguly, Subhankar A3 - Kroposki, Benjamin DB - C-MIX - Community Microgrid Information Exchange DP - Open EI | National Laboratory of the Rockies DO - 10.1109/IECON51785.2023.10312287 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 - Maintenance and operations KW - Operations KW - Maintenance KW - Commissioning KW - Power plant controls KW - SCADA KW - Standards KW - Interconnection KW - Protection KW - Case studies KW - Performance LA - English DA - 2023/01/01 PY - 2023 PB - NLR T1 - Study of Seamless Microgrid Transition Operation Using Grid-Forming Inverters UR - https://doi.org/10.1109/IECON51785.2023.10312287 ER -
Export Citation to RIS
Wang , Jing, et al. Study of Seamless Microgrid Transition Operation Using Grid-Forming Inverters. NLR, 1 January, 2023, C-MIX - Community Microgrid Information Exchange. https://doi.org/10.1109/IECON51785.2023.10312287.
Wang , J., Ganguly, S., & Kroposki, B. (2023). Study of Seamless Microgrid Transition Operation Using Grid-Forming Inverters. [Data set]. C-MIX - Community Microgrid Information Exchange. NLR. https://doi.org/10.1109/IECON51785.2023.10312287
Wang , Jing, Subhankar Ganguly, and Benjamin Kroposki. Study of Seamless Microgrid Transition Operation Using Grid-Forming Inverters. NLR, January, 1, 2023. Distributed by C-MIX - Community Microgrid Information Exchange. https://doi.org/10.1109/IECON51785.2023.10312287
@misc{CMIX_Dataset_60, title = {Study of Seamless Microgrid Transition Operation Using Grid-Forming Inverters}, author = {Wang , Jing and Ganguly, Subhankar and Kroposki, Benjamin }, abstractNote = {This paper investigates operational techniques to achieve seamless (smooth) microgrid (MG) transitions by dispatching a grid-forming (GFM) inverter. In traditional approaches, the GFM inverter must switch between grid-following (GFL) and GFM control modes during MG transition operation. Today's inverter technology allows GFM inverters to always operate in GFM control mode, so it is worth exploring how to use them to achieve smooth MG transition operation. This paper proposes three operational techniques: a traditional scheme of switching between GFL and GFM control; a new scheme of consistent GFM control and shifting the droop intercept up before islanding operation; and a new scheme of consistent GFM control and shifting the droop intercept up before synchronization operation. A full hardware setup is established to compare the three techniques and showcase their implementations in real-world applications. The results show that the third technique outperforms the others and exhibits the best transition performance because the GFM inverter maintains the same operating points during the transition operation. Therefore, we conclude that ensuring smooth MG transition operation requires that the GFM inverter(s) maintain the same operating points (v, f, P, Q, and phase angle) during the transition operation in addition to minimizes the point of common coupling power flow}, url = {https://cmix.openei.org/submissions/60}, year = {2023}, howpublished = {C-MIX - Community Microgrid Information Exchange, NLR, https://doi.org/10.1109/IECON51785.2023.10312287}, note = {Accessed: 2026-06-18}, doi = {10.1109/IECON51785.2023.10312287} }
https://dx.doi.org/10.1109/IECON51785.2023.10312287

Details

Data from Jan 1, 2023

Last updated Mar 30, 2026

Submitted Jun 2, 2026

Organization

NLR

Contact

Subhankar Ganguly

Authors

Jing Wang

NLR

Subhankar Ganguly

NLR

Benjamin Kroposki

NLR
Submission Downloads