Consensus-Based Model Predictive Control for Active Power and Voltage Regulation in Active Distribution Networks
Abstract
:1. Introduction
- A Cb-MPC is adopted for active power and voltage regulation at the connection node of each DER;
- An MIMO model of the ADN is employed in the design to account for the effects of both internal and external interactions among DERs;
- An integral action MPC is implemented to counteract the effects of uncertainties in modeling parameters;
- Communication among DERs is incorporated into the numerical validation through a proper sample and hold function.
- Compared to [28], the proposed method employs an MPC algorithm capable of effectively handling current saturations and interactions among different DERs;
2. Model
3. Proposed Solution
3.1. Local Observer
3.2. Consensus
3.3. Control Loop
3.4. Time Constant Constraints
3.5. DER Communication Constraints
4. Numerical Validation
- Case I: nominal case, i.e., ADN operating conditions are the same as the ones used in the Cb-MPC design without simulating the communication;
- Case II: nominal case including the communication sample and hold functions;
- Case III: comparison with an integral consensus-based controller designed using the eigenvalue assignment technique in the nominal case without simulating the communication;
- Case IV: off-nominal case, i.e., different ADN operating conditions with respect to the ones assumed in the design.
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Method | DER Model | Network Model | Consensus Based | MPC | Integral Action | Architecture |
---|---|---|---|---|---|---|
in [12] | no dynamics | cluster based | no | yes | no | decentralized |
in [16] | no dynamics | linearized | no | yes | no | centralized |
in [19] | no dynamics | linearized | no | yes | no | centralized |
in [25] | no dynamics | linearized | yes | yes | no | distributed |
in [28] | time domain | micro-grid | no | no | yes | distributed |
in [34] | time domain | energy community | yes | yes | yes | distributed |
proposed | transfer function | linearized | yes | yes | yes | distributed |
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Antonelli, G.; Fusco, G.; Russo, M. Consensus-Based Model Predictive Control for Active Power and Voltage Regulation in Active Distribution Networks. Energies 2024, 17, 4490. https://doi.org/10.3390/en17174490
Antonelli G, Fusco G, Russo M. Consensus-Based Model Predictive Control for Active Power and Voltage Regulation in Active Distribution Networks. Energies. 2024; 17(17):4490. https://doi.org/10.3390/en17174490
Chicago/Turabian StyleAntonelli, Gianluca, Giuseppe Fusco, and Mario Russo. 2024. "Consensus-Based Model Predictive Control for Active Power and Voltage Regulation in Active Distribution Networks" Energies 17, no. 17: 4490. https://doi.org/10.3390/en17174490
APA StyleAntonelli, G., Fusco, G., & Russo, M. (2024). Consensus-Based Model Predictive Control for Active Power and Voltage Regulation in Active Distribution Networks. Energies, 17(17), 4490. https://doi.org/10.3390/en17174490