Coordination secondary control for autonomous hybrid AC/DC microgrids with global power sharing operation

Author(s):  
Chi Jin ◽  
Junjun Wang ◽  
Koh Leong Hai ◽  
Choo Fook Hoong ◽  
Peng Wang
Processes ◽  
2020 ◽  
Vol 8 (3) ◽  
pp. 311 ◽  
Author(s):  
Wanxing Sheng ◽  
Yinqiu Hong ◽  
Ming Wu ◽  
Yu Ji

The AC/DC hybrid microgrid (MG) has been widely promoted due to its high flexibility. The capability to operate in islanding mode is an appealing advantage of the MG, and also sets higher requirements for its control system. A droop control strategy is proposed on account of its distinguishing feature of automatic power sharing between distributed generations (DGs), but it introduces some drawbacks. Therefore, distributed cooperative secondary control is introduced as an improvement. In order to optimize the active power sharing in AC/DC hybrid microgrids, a number of cooperative control strategies have been proposed. However, most studies of AC/DC hybrid microgrids have mainly focused on the control of the bidirectional converter, ignoring the effects of secondary control within subnets, which may make a difference to the droop characteristic. This paper extends the cooperative control to AC/DC hybrid microgrids based on normalizing and synthesizing the droop equations, and proposes a global cooperative control scheme for AC/DC autonomous hybrid microgrids, realizing voltage restoration within AC and DC subnets as well as accurate global power sharing. Ultimately, the simulation results demonstrate that the proposed control scheme has a favorable performance in the test AC/DC hybrid system.


Author(s):  
Pouya Shafiee ◽  
Yousef Khayat ◽  
Yazdan Batmani ◽  
Qobad Shafiee ◽  
Josep M Guerrero

2018 ◽  
Vol 9 (4) ◽  
pp. 1857-1869 ◽  
Author(s):  
Fanghong Guo ◽  
Qianwen Xu ◽  
Changyun Wen ◽  
Lei Wang ◽  
Peng Wang

Electronics ◽  
2020 ◽  
Vol 9 (1) ◽  
pp. 140 ◽  
Author(s):  
Eva González-Romera ◽  
Enrique Romero-Cadaval ◽  
Carlos Roncero-Clemente ◽  
Mercedes Ruiz-Cortés ◽  
Fermín Barrero-González ◽  
...  

It is usual in literature that power sharing among grid-forming sources of an isolated microgrid obeys their energy rating, instead of economic agreements between stakeholders, and circulating energy among them is usually avoided. However, these energy interchanges make strong sense and classical power sharing methods must be reformulated in the context of prosumer-based microgrids. This paper proposes a secondary control method for a prosumer-based low-voltage nanogrid that allows for energy interchange between prosumers, where storage systems, together with PV generators, are the controllable grid-forming sources. A power flow technique adapted to islanded microgrids is used for secondary control algorithm and the whole hierarchical control strategy for the prosumer converter is simulated and validated. This hierarchical control consists of three stages: tertiary control plans the energy interchange among prosumers, secondary obtains different voltage and power setpoints for each of the grid-forming sources, and, finally, primary control guarantees stable voltage and frequency values within the nanogrid with droop rules. Inner control loops for the power converter are also defined to track setpoints and assure stable performance. Simulation tests are carried out, which prove the stability of the proposed methods and the accuracy of the setpoint tracking.


2018 ◽  
Vol 7 (2) ◽  
pp. 227-242 ◽  
Author(s):  
Fei GAO ◽  
Ren KANG ◽  
Jun CAO ◽  
Tao YANG

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