scholarly journals An Active Power Sharing Method among Distributed Energy Sources in an Islanded Series Micro-Grid

Energies ◽  
2014 ◽  
Vol 7 (12) ◽  
pp. 7878-7892 ◽  
Author(s):  
Wei-Man Yang ◽  
Xing-Gui Wang ◽  
Xiao-Ying Li ◽  
Zheng-Ying Liu
Energies ◽  
2021 ◽  
Vol 14 (4) ◽  
pp. 883 ◽  
Author(s):  
Quan-Quan Zhang ◽  
Rong-Jong Wai

With a focus on the problems of active power sharing and voltage deviation of parallel-connected inverters in an islanded micro-grid (MG), in this study, the power-voltage droop controller and the inner voltage regulator are redesigned based on a total sliding-mode control (TSMC) technique. As for the power-voltage droop control loop, a droop control relation error between the active power and the point-of-common-coupling (PCC) voltage amplitude is defined. Then, the TSMC scheme is adopted to reach the new droop control relation, where the active power sharing and voltage amplitude recovery can be achieved simultaneously. Owing to the faster dynamic response and strong robustness provided by the TSMC framework, high-precision active power sharing during transient state also can be ensured without the influence of line impedances. The power allocation error can be improved by more than 81.2% and 50% than the conventional and proportional-integral (PI)-based droop control methods, respectively, and the voltage deviation rate can be reduced to 0.16%. Moreover, a small-signal model of the TSMC-based droop-controlled system is established, and the influences of control parameters on the system stability and the dynamic response are also investigated. The effectiveness of the proposed control method is verified by numerical simulations and experimental results.


Energies ◽  
2020 ◽  
Vol 13 (9) ◽  
pp. 2141
Author(s):  
Shiyun Xu ◽  
Huadong Sun ◽  
Zhanqiang Zhang ◽  
Qiang Guo ◽  
Bin Zhao ◽  
...  

In this paper, a decentralized coordinated control method based on multi-agent system is proposed to improve the voltage stability of micro-grid. In lower-level agents, the decentralized control is designed as double-loop controllers for the inverter of each distributed energy resource, including an outer-loop power controller based on droop control and an inner-loop voltage/current controller based on fractional order proportion-integral-derivative (PID). In upper-level agents, the distributed coordinated control is designed to make voltage consensus and proportional power sharing of all distributed energy resources. Since each distributed coordinated control only requires its own and neighboring information, the communication bandwidth can be saved. The simulation results have verified the effectiveness in terms of power sharing, voltage stability, and suppressing circulation current.


Author(s):  
Rahul S. Somalwar ◽  
Snehal P. Vaidya ◽  
Sumant G. Kadwane ◽  
Snehal P. Gawande

Hybridization of Different electrical sources helps to enhance the overall performance of electric vehicles. Due to the advantages of hybridization of power sources, in this work three energy sources such as Fuel cell (FC), Battery and solar have been considered to supply power adequately to electric vehicles. This paper focuses on power management of these three energy sources during vehicle driving. Because of their different characteristic, power sharing at different time and condition is different and the proposed control strategy demonstrates the active power sharing of the three energy sources. The feasibility of the proposed system is verified through computer simulation using matlab/simulink software. The demonstration of simulation results shows the performance of electric drive system is more satisfactory over the entire drive operation, fulfilling the power management rules and load requirement.


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