Control transition mode from voltage control to MPPT for PV generators in isolated DC microgrids

Author(s):  
V. Fernão Pires ◽  
Armando Cordeiro ◽  
Daniel Foito ◽  
J. Fernando Silva
Energies ◽  
2019 ◽  
Vol 12 (7) ◽  
pp. 1400 ◽  
Author(s):  
Zhiping Cheng ◽  
Zhongwen Li ◽  
Jing Liang ◽  
Jinfeng Gao ◽  
Jikai Si ◽  
...  

This paper proposes a distributed economic power dispatch (EPD) and bus voltage control solution for droop-controlled DC microgrids. For the proposed solution, a local power controller and a local voltage controller are added for each distributed generator (DG) to overcome the limitations of the conventional droop control. The power controller generates the first voltage correction term by comparing the local output power of DG with the reference instruction generated by the proposed distributed EPD algorithm, and thus, it can reduce the operation cost of the microgrid by optimally sharing the load demand among all the participating DGs. The voltage controller generates the second voltage correction term by comparing the nominal DC bus voltage value with the average bus voltage generated by the proposed distributed average bus voltage observation (ABVO) algorithm, and thus, it can realize the global bus voltage regulation of the DC microgrid. In contrast with conventional solutions, the control solution can distribute the computational and communication burdens among all the DGs working in parallel, which is more flexible, scalable, and robust against single-point failure. The effectiveness of the proposed control solution is demonstrated through simulation studies.


2019 ◽  
Vol 52 (20) ◽  
pp. 139-144
Author(s):  
Daniele Zonetti ◽  
Adnane Saoud ◽  
Antoine Girard ◽  
Laurent Fribourg

Author(s):  
Baheej Alghamdi ◽  
Katharina Wieninger ◽  
Claudio A. Canizares

Processes ◽  
2021 ◽  
Vol 9 (11) ◽  
pp. 1992
Author(s):  
Guannan Lou ◽  
Yinqiu Hong ◽  
Shanlin Li

This paper studies the distributed secondary control of DC microgrids (MGs) in the case of asynchronous sampling, including both the stability condition and accurate consensus algorithm. The asynchrony means that the update actions of each distributed generation (DG) based on the local information and information received from neighbors are independent of the actions of others at sampled discrete times, which would cause deviation from the accurate convergence and even lead to instability in the worst case. First, a small-signal model of MG installed with secondary voltage control is established to include the individual sampling periods. A stability criterion based on the periodic continuity of sampling instant offset is thus formulated to reveal a stability mapping of multiple sampling. By quantifying the accuracy deviations caused by the asynchrony, an improved ratio consensus strategy is proposed that allows the deviation to be estimated accurately via an auxiliary signal and compensated with respect to the eventual equilibrium to produce an exact solution. Our approach customizes the stability and accuracy for distributed secondary control considering asynchronous sampling in MG, which has been ignored in most existing literature. The effectiveness of the proposed methodology is verified by simulations.


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