Dispatching Grid-Forming Inverters in Grid-Connected and Islanded Mode

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This paper explores the dispatchability of grid-forming (GFM) inverters in grid-connected and islanded mode. GFM inverters usually use droop control to automatically share power with other GFM sources (inverters and synchronous generators) and follow the change in the load demand; however, they can be dispatched like their grid-following (GFL) counterparts to output the target active and reactive power. This will help grid operators better manage their inverter-based resources (IBRs) to improve operation efficiency and reliability; therefore, this paper proposes an innovative concept of dispatching GFM sources (inverters and synchronous generators) to output the target power in both grid-connected and islanded mode by adjusting their droop intercepts. The fundamental principle is that the GFM inverter's active and reactive power is dictated by its frequency and voltage, and thus dispatching the active and reactive power of a GFM inverter can be achieved through dispatching its frequency and voltage. Moreover, the concept distinguishes the dispatch rules for grid-connected and islanded mode. Finally, the concept is validated with an example microgrid system with two GFM inverters, one diesel generator, one GFL inverter, and the load in both grid-connected and islanded mode. This pioneering work results in practical guidance for the development of energy management systems for future electric grids with GFM and GFL inverters.

Citation Formats

TY - DATA AB - This paper explores the dispatchability of grid-forming (GFM) inverters in grid-connected and islanded mode. GFM inverters usually use droop control to automatically share power with other GFM sources (inverters and synchronous generators) and follow the change in the load demand; however, they can be dispatched like their grid-following (GFL) counterparts to output the target active and reactive power. This will help grid operators better manage their inverter-based resources (IBRs) to improve operation efficiency and reliability; therefore, this paper proposes an innovative concept of dispatching GFM sources (inverters and synchronous generators) to output the target power in both grid-connected and islanded mode by adjusting their droop intercepts. The fundamental principle is that the GFM inverter's active and reactive power is dictated by its frequency and voltage, and thus dispatching the active and reactive power of a GFM inverter can be achieved through dispatching its frequency and voltage. Moreover, the concept distinguishes the dispatch rules for grid-connected and islanded mode. Finally, the concept is validated with an example microgrid system with two GFM inverters, one diesel generator, one GFL inverter, and the load in both grid-connected and islanded mode. This pioneering work results in practical guidance for the development of energy management systems for future electric grids with GFM and GFL inverters. AU - Wang, Jing A2 - Ganguly, Subhankar A3 - Chakraborty, Soham A4 - Kroposki, Benjamin DB - C-MIX - Community Microgrid Information Exchange DP - Open EI | National Laboratory of the Rockies DO - KW - Diesel generators KW - Other liquid-fuel generators KW - Power electronics and inverters KW - Power electronics KW - Inverters KW - Battery energy storage KW - Standards KW - Interconnection KW - Protection KW - Case studies KW - Performance KW - Power plant controls KW - SCADA KW - Maintenance and operations KW - Operations KW - Maintenance KW - Commissioning LA - English DA - 2024/01/01 PY - 2024 PB - NLR T1 - Dispatching Grid-Forming Inverters in Grid-Connected and Islanded Mode UR - https://cmix.openei.org/submissions/64 ER -
Export Citation to RIS
Wang, Jing, et al. Dispatching Grid-Forming Inverters in Grid-Connected and Islanded Mode. NLR, 1 January, 2024, C-MIX - Community Microgrid Information Exchange. https://cmix.openei.org/submissions/64.
Wang, J., Ganguly, S., Chakraborty, S., & Kroposki, B. (2024). Dispatching Grid-Forming Inverters in Grid-Connected and Islanded Mode. [Data set]. C-MIX - Community Microgrid Information Exchange. NLR. https://cmix.openei.org/submissions/64
Wang, Jing, Subhankar Ganguly, Soham Chakraborty, and Benjamin Kroposki. Dispatching Grid-Forming Inverters in Grid-Connected and Islanded Mode. NLR, January, 1, 2024. Distributed by C-MIX - Community Microgrid Information Exchange. https://cmix.openei.org/submissions/64
@misc{CMIX_Dataset_64, title = {Dispatching Grid-Forming Inverters in Grid-Connected and Islanded Mode}, author = {Wang, Jing and Ganguly, Subhankar and Chakraborty, Soham and Kroposki, Benjamin }, abstractNote = {This paper explores the dispatchability of grid-forming (GFM) inverters in grid-connected and islanded mode. GFM inverters usually use droop control to automatically share power with other GFM sources (inverters and synchronous generators) and follow the change in the load demand; however, they can be dispatched like their grid-following (GFL) counterparts to output the target active and reactive power. This will help grid operators better manage their inverter-based resources (IBRs) to improve operation efficiency and reliability; therefore, this paper proposes an innovative concept of dispatching GFM sources (inverters and synchronous generators) to output the target power in both grid-connected and islanded mode by adjusting their droop intercepts. The fundamental principle is that the GFM inverter's active and reactive power is dictated by its frequency and voltage, and thus dispatching the active and reactive power of a GFM inverter can be achieved through dispatching its frequency and voltage. Moreover, the concept distinguishes the dispatch rules for grid-connected and islanded mode. Finally, the concept is validated with an example microgrid system with two GFM inverters, one diesel generator, one GFL inverter, and the load in both grid-connected and islanded mode. This pioneering work results in practical guidance for the development of energy management systems for future electric grids with GFM and GFL inverters.}, url = {https://cmix.openei.org/submissions/64}, year = {2024}, howpublished = {C-MIX - Community Microgrid Information Exchange, NLR, https://cmix.openei.org/submissions/64}, note = {Accessed: 2026-06-13} }

Details

Data from Jan 1, 2024

Last updated Mar 30, 2026

Submitted Jun 2, 2026

Organization

NLR

Contact

Jing Wang

Authors

Jing Wang

NLR

Subhankar Ganguly

NLR

Soham Chakraborty

NLR

Benjamin Kroposki

NLR
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