会议论文详细信息
2016 International Conference on New Energy and Future Energy System
Study of a control strategy for grid side converter in doubly- fed wind power system
Zhu, D.J.^1 ; Tan, Z.L.^1 ; Yuan, F.^1 ; Wang, Q.Y.^1 ; Ding, M.^1
School of Automation, China University of Geosciences, No. 388 Lumo Road, Wuhan, China^1
关键词: Anti-jamming capability;    Doubly fed asynchronous generator;    Input output linearization;    Sliding mode variable structure control;    Sliding mode voltage controller;    Three phase voltage;    Two input;    two outputs;    Variable structure controller;   
Others  :  https://iopscience.iop.org/article/10.1088/1755-1315/40/1/012066/pdf
DOI  :  10.1088/1755-1315/40/1/012066
来源: IOP
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【 摘 要 】

The grid side converter is an important part of the excitation system of doubly-fed asynchronous generator used in wind power system. As a three-phase voltage source PWM converter, it can not only transfer slip power in the form of active power, but also adjust the reactive power of the grid. This paper proposed a control approach for improving its performance. In this control approach, the dc voltage is regulated by a sliding mode variable structure control scheme and current by a variable structure controller based on the input output linearization. The theoretical bases of the sliding mode variable structure control were introduced, and the stability proof was presented. Switching function of the system has been deduced, sliding mode voltage controller model has been established, and the output of the outer voltage loop is the instruction of the inner current loop. Affine nonlinear model of two input two output equations on d-q axis for current has been established its meeting conditions of exact linearization were proved. In order to improve the anti-jamming capability of the system, a variable structure control was added in the current controller, the control law was deduced. The dual-loop control with sliding mode control in outer voltage loop and linearization variable structure control in inner current loop was proposed. Simulation results demonstrate the effectiveness of the proposed control strategy even during the dc reference voltage and system load variation.

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