Evaluation of Distributed Power Apportioning with Net Load Management Engine in Microgrids Using Power Hardware-in-the-Loop Simulation

Publicly accessible License 

This article presents the performance evaluation of ratio consensus-based distributed power apportioning engine along with centralized net load management (NLM) engine that ensures viable and stable operation of an islanded microgrid. Managing net load variability in a microgrid with high penetrations of uncertain renewable generation and ever-changing load demands is a crucial need in order to ensure viable and stable operation of the microgrid. Centralized ?dispatch-rule?-based and/or multi-agent-based distributed control of distributed energy resources (DERs) in microgrid are well accepted for microgrid by adapting ANSI/ISA-95-based hierarchical control architecture. In the application where microgrid network has large geographical span with multiple DERs dispersed in the network, high penetration of uncertain renewable energy resources, and ever-changing load demands, a judicious selection of techniques/solutions for managing net-load resources for maintaining viability and stability is required. With this motivation, this article proposes a novel solution to mitigate the challenges by incorporating a mixed centralized NLM engine and distributed power apportioning control of DERs and loads. A power-hardware-in-the-loop (PHIL) -based experiment is conducted with the centralized NLM engine and the distributed power apportioning engine along with two commercial inverters. The experimental results validates the efficacy of the proposed method in ensuring viability and stability of a microgrid.

Citation Formats

TY - DATA AB - This article presents the performance evaluation of ratio consensus-based distributed power apportioning engine along with centralized net load management (NLM) engine that ensures viable and stable operation of an islanded microgrid. Managing net load variability in a microgrid with high penetrations of uncertain renewable generation and ever-changing load demands is a crucial need in order to ensure viable and stable operation of the microgrid. Centralized “dispatch-rule”-based and/or multi-agent-based distributed control of distributed energy resources (DERs) in microgrid are well accepted for microgrid by adapting ANSI/ISA-95-based hierarchical control architecture. In the application where microgrid network has large geographical span with multiple DERs dispersed in the network, high penetration of uncertain renewable energy resources, and ever-changing load demands, a judicious selection of techniques/solutions for managing net-load resources for maintaining viability and stability is required. With this motivation, this article proposes a novel solution to mitigate the challenges by incorporating a mixed centralized NLM engine and distributed power apportioning control of DERs and loads. A power-hardware-in-the-loop (PHIL) -based experiment is conducted with the centralized NLM engine and the distributed power apportioning engine along with two commercial inverters. The experimental results validates the efficacy of the proposed method in ensuring viability and stability of a microgrid. AU - Chakraborty, Soham A2 - Saraswat, Govind A3 - Guruwacharya, Nischal A4 - Dey, Arnab A5 - Bryce, Richard A6 - Salapaka, Murti DB - C-MIX - Community Microgrid Information Exchange DP - Open EI | National Laboratory of the Rockies DO - 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 - Case studies KW - Performance KW - Power plant controls KW - SCADA KW - Maintenance and operations KW - Operations KW - Maintenance KW - Commissioning LA - English DA - 2023/01/01 PY - 2023 PB - University of Minnesota T1 - Evaluation of Distributed Power Apportioning with Net Load Management Engine in Microgrids Using Power Hardware-in-the-Loop Simulation UR - https://cmix.openei.org/submissions/122 ER -
Export Citation to RIS
Chakraborty, Soham, et al. Evaluation of Distributed Power Apportioning with Net Load Management Engine in Microgrids Using Power Hardware-in-the-Loop Simulation. University of Minnesota, 1 January, 2023, C-MIX - Community Microgrid Information Exchange. https://cmix.openei.org/submissions/122.
Chakraborty, S., Saraswat, G., Guruwacharya, N., Dey, A., Bryce, R., & Salapaka, M. (2023). Evaluation of Distributed Power Apportioning with Net Load Management Engine in Microgrids Using Power Hardware-in-the-Loop Simulation. [Data set]. C-MIX - Community Microgrid Information Exchange. University of Minnesota. https://cmix.openei.org/submissions/122
Chakraborty, Soham, Govind Saraswat, Nischal Guruwacharya, Arnab Dey, Richard Bryce, and Murti Salapaka. Evaluation of Distributed Power Apportioning with Net Load Management Engine in Microgrids Using Power Hardware-in-the-Loop Simulation. University of Minnesota, January, 1, 2023. Distributed by C-MIX - Community Microgrid Information Exchange. https://cmix.openei.org/submissions/122
@misc{CMIX_Dataset_122, title = {Evaluation of Distributed Power Apportioning with Net Load Management Engine in Microgrids Using Power Hardware-in-the-Loop Simulation}, author = {Chakraborty, Soham and Saraswat, Govind and Guruwacharya, Nischal and Dey, Arnab and Bryce, Richard and Salapaka, Murti}, abstractNote = {This article presents the performance evaluation of ratio consensus-based distributed power apportioning engine along with centralized net load management (NLM) engine that ensures viable and stable operation of an islanded microgrid. Managing net load variability in a microgrid with high penetrations of uncertain renewable generation and ever-changing load demands is a crucial need in order to ensure viable and stable operation of the microgrid. Centralized ?dispatch-rule?-based and/or multi-agent-based distributed control of distributed energy resources (DERs) in microgrid are well accepted for microgrid by adapting ANSI/ISA-95-based hierarchical control architecture. In the application where microgrid network has large geographical span with multiple DERs dispersed in the network, high penetration of uncertain renewable energy resources, and ever-changing load demands, a judicious selection of techniques/solutions for managing net-load resources for maintaining viability and stability is required. With this motivation, this article proposes a novel solution to mitigate the challenges by incorporating a mixed centralized NLM engine and distributed power apportioning control of DERs and loads. A power-hardware-in-the-loop (PHIL) -based experiment is conducted with the centralized NLM engine and the distributed power apportioning engine along with two commercial inverters. The experimental results validates the efficacy of the proposed method in ensuring viability and stability of a microgrid.}, url = {https://cmix.openei.org/submissions/122}, year = {2023}, howpublished = {C-MIX - Community Microgrid Information Exchange, University of Minnesota, https://cmix.openei.org/submissions/122}, note = {Accessed: 2026-08-06} }

Details

Data from Jan 1, 2023

Last updated Mar 30, 2026

Submitted Jun 2, 2026

Organization

University of Minnesota

Contact

Soham Chakraborty

Authors

Soham Chakraborty

University of Minnesota

Govind Saraswat

University of Minnesota

Nischal Guruwacharya

University of Minnesota

Arnab Dey

University of Minnesota

Richard Bryce

University of Minnesota

Murti Salapaka

University of Minnesota
Submission Downloads