A novel control strategy for AC fault ride through in a MTDC system with offshore wind farms

Author(s):  
Wenting Li ◽  
Gang Shi ◽  
Xu Cai ◽  
Yiaowei Xuan ◽  
Enke Yu
2016 ◽  
Vol 31 (6) ◽  
pp. 4923-4934 ◽  
Author(s):  
Ahmed Moawwad ◽  
Mohamed Shawky El Moursi ◽  
Weidong Xiao

2019 ◽  
Vol 2019 (16) ◽  
pp. 2670-2676
Author(s):  
Siyang Ge ◽  
Kaipei Liu ◽  
Liang Qin ◽  
Xiaohong Ran ◽  
Gang Li ◽  
...  

Energies ◽  
2018 ◽  
Vol 11 (12) ◽  
pp. 3480 ◽  
Author(s):  
Hyeong-Jin Lee ◽  
Jin-Su Kim ◽  
Jae-Chul Kim

Offshore wind farms with good wind quality are exponentially increasing. To take advantage of this, the offshore wind farms and the grid are connected using the MVDC. In the event of a grid fault, the traditional wind generators and the MVDC are disconnected from the grid fault to protect the devices. However, the wind generators and the MVDC must support the recovery of the grid fault because the disconnection of large capacity wind farms will cause a grid collapse. To prevent this problem, the LVRT requires maintaining the connection between the wind generators and the grid to contribute to the recovery of the grid fault. In this situation, the DC voltage of the MVDC rises due to the unbalanced power of the input and output. Several methods have been proposed to suppress the DC voltage rise of the MVDC. Among various methods, the CR is an effective method to suppress the DC voltage rise of the wind generators and the MVDC. However, the conventional CR designs only consider rated voltage and system capacity. Therefore, this paper proposes the parameter estimation of the CR considering the important factors. The proposed method is verified by PSCAD/EMTDC.


2019 ◽  
Vol 11 (8) ◽  
pp. 2290 ◽  
Author(s):  
Wang ◽  
Tang ◽  
Gao ◽  
Liu ◽  
Chen

Because of the complexity and severity of the marine environment, the probability of failure of offshore wind farms is much higher than that of onshore wind farms. The original control might fail under a single-machine and the network communication faults of wind turbines. In this study, centralized control is replaced with distributed control, the leader-follower distributed control strategy under two types of fault conditions is proposed to reduce the adverse effect of failure on the system and improve the tolerance of the system. First, the single-machine system is expanded into a wind turbine cluster system model based on Hamiltonian energy theory. Then, a leader-follower distributed control strategy is proposed to ensure the stable operation of wind turbines under a single-machine fault of the leader or follower unit. Next, considering communication failure, the leader-follower control strategy in the weakly connected topology is designed to make the system and the active power output stable. Finally, the simulation results confirm that the leader-follower control strategy system can enhance the stability and reliability of the system in the case of a unit shut down and network communication faults.


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