Large-Signal Stability Improvement of DC-DC Converters in DC Microgrid

Author(s):  
Yonghao Gui ◽  
Renke Han ◽  
Josep M Guerrero ◽  
Juan C Vasquez ◽  
Baoze Wei ◽  
...  
Author(s):  
Sucheng Liu ◽  
Xiang Li ◽  
Mengyu Xia ◽  
Qiangdong Qin ◽  
Xiaodong Liu

2019 ◽  
Vol 34 (11) ◽  
pp. 11342-11351 ◽  
Author(s):  
Jianbo Jiang ◽  
Fei Liu ◽  
Shangzhi Pan ◽  
Xiaoming Zha ◽  
Wenjun Liu ◽  
...  

Author(s):  
Hongru Xu ◽  
Yan Chen ◽  
Brian Keel

The large signal stability analysis of a hybrid AC/DC microgrid based on a grid-connected inverter with cascaded control is discussed. The impacts of the connected inductor, capacitor, and the control parameters of the inverter on the DC link stability region are analyzed. To achieve these analyses, a dynamic model of the microgrid with the cascaded control inverter is first developed. A Lyapunov large-signal stability analysis tool is then applied to estimate the domain of attraction, which is the asymptotic stability region. Results show that DC side capacitor, the AC side grid filter, as well as the control gain, will have different influences on the stability regions of the DC link voltage. High fidelity simulations through PLECS are successfully applied to verify the asymptotic stability regions estimated from the Lyapunov large signal analysis method.


Energies ◽  
2019 ◽  
Vol 12 (16) ◽  
pp. 3186 ◽  
Author(s):  
Haifeng Liang ◽  
Yuxi Huang ◽  
Hao Sun ◽  
Zhiqian Liu

Ensuring the large signal stability of the DC microgrid is the premise of the safe operation of the DC microgrid, but the research on the large-signal stability of microgrids with multiple droop control micro-sources is still scarce. In this paper, a DC microgrid system model with multiple droop control micro-sources was established by appropriate simplification. Addressing the problem that most stability research methods cannot be quantitatively analyzed, the mixed potential function method was used to analyze the large signal stability of the system. However, the criterion obtained by the conventional mixed potential function method is complicated and contains multiple time-varying parameters, which is not convenient for analysis. Therefore, the simple form of the criterion was obtained through simplification and the analysis proved the rationality of the simplification. On this basis, a nonlinear droop control method was proposed to improve the anti-interference ability of the system. Finally, the accuracy of the large signal stability criterion and the effectiveness of nonlinear droop control on the system’s large signal stability were verified by simulation.


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