A Decentralized Control Method for Distributed Generations in an Islanded DC Microgrid Considering Voltage Drop Compensation and Durable State of Charge
Abstract
:1. Introduction
2. Control Scheme of Energy Storage System and Distributed Generation
2.1. Control Scheme of Energy Storage System
2.2. Control Scheme of Distributed Generation
3. System Configuration
4. Simulation Results and Discussion
- Control method without droop (w/o Droop): The ESS is controlled to output constant voltage (nominal voltage) and the dispatchable DGs (DG1 and DG2) are controlled to output dispatched power only.
- Voltage droop control method (V Droop): The voltage droop control shown in Figure 6 is applied to the DGs. The droop coefficient mdg is set to 3 in this study.
- SOC-voltage droop and voltage droop control method (SOC-V Droop): SOC-voltage droop control shown in Figure 1 is applied to the ESS and the voltage droop control is applied to the DGs.
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Nomenclature
AC | Alternating current |
BESS | Battery energy storage system |
DC | Direct current |
DG | Distributed generation |
EMS | Energy management system |
ESS | Energy storage system |
MPPT | Maximum power point tracking |
PI | Proportional-integral |
PV | Photovoltaic |
RES | Renewable energy source |
SOC | State of charge |
SOC-V | State of charge-voltage |
STS | Static switch |
WT | Wind turbine |
PESS | Output power of the energy storage system |
Prate, Crate, IESS,rate | Rating power, capacity, current of the energy storage system |
VESS, IESS | Output voltage and current of the energy storage system |
mess | State of charge-voltage droop coefficient |
Vnom | Nominal value of the grid voltage |
VUpLim, LoLim | Upper and lower limits of the grid voltage |
SOCi, SOCref | Initial and reference values of the state of charge |
SOCUpLim, SOCLoLim | Upper and lower limits of the grid voltage |
PDG, PDG,dis | Output and dispatched value of distributed generation active power |
Pcomp | Active power to compensate the state of charge deviation from the reference value |
Vcomp | Compensation voltage to compensate line voltage drop across the resistance between the ESS bus and the distributed generation bus |
IDG,ref | Reference output current of distributed generation |
VDG | Voltage at distributed generation bus |
ILoadi,forc | Forecasted current of the load at bus i |
IDGi,forc | Forecasted current of the distributed generation at bus i |
VESS,est | Estimated voltage of energy storage system output voltage |
Vi | Voltage magnitude at bus i |
Ii | Current flow from bus i to bus i+1 |
Ii,est | Estimate current flow from bus i to bus i+1 |
Ri | Resistance of line between bus i and i+1 |
N | Total number of the buses |
n | Total number of the distributed generations |
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DG/Load | Forecasted Power (kW) | Estimated Current (A) |
---|---|---|
DG1 | 5 | 6.67 |
DG2 | 5 | 6.67 |
WT | 9 | 12 |
Load | 23 | 30.67 |
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Hwang, C.-S.; Kim, E.-S.; Kim, Y.-S. A Decentralized Control Method for Distributed Generations in an Islanded DC Microgrid Considering Voltage Drop Compensation and Durable State of Charge. Energies 2016, 9, 1070. https://doi.org/10.3390/en9121070
Hwang C-S, Kim E-S, Kim Y-S. A Decentralized Control Method for Distributed Generations in an Islanded DC Microgrid Considering Voltage Drop Compensation and Durable State of Charge. Energies. 2016; 9(12):1070. https://doi.org/10.3390/en9121070
Chicago/Turabian StyleHwang, Chul-Sang, Eung-Sang Kim, and Yun-Su Kim. 2016. "A Decentralized Control Method for Distributed Generations in an Islanded DC Microgrid Considering Voltage Drop Compensation and Durable State of Charge" Energies 9, no. 12: 1070. https://doi.org/10.3390/en9121070
APA StyleHwang, C.-S., Kim, E.-S., & Kim, Y.-S. (2016). A Decentralized Control Method for Distributed Generations in an Islanded DC Microgrid Considering Voltage Drop Compensation and Durable State of Charge. Energies, 9(12), 1070. https://doi.org/10.3390/en9121070