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A control strategy combining sliding mode controller with crowbar circuit for low voltage ride through of direct-drive wind power system

机译:一种控制策略将滑动模式控制器与撬杆电路结合用于直接驱动风电系统的低电压乘坐

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The DC bus voltage is the main criteria to reflect whether the converter system is working properly or not. When grid voltage drops, the stability control of the DC bus voltage is the key to ensure that wind power generators not take off the grid. This paper had done a research on direct-drive wind power system and proposed a coordinated control method combining the crowbar circuit with sliding mode control. The crowbar circuit was linked with DC bus. A sliding mode controller replaced to the traditional PI controller and was implemented in the inner current loop of the motor-side converter. When the grid voltage dropped, the extra energy of the DC bus could be unleashed by crowbar circuit. Due to good rapid performance of controller, the output power of motor-side converter could be controlled by the sliding mode variable structure controller. At the same time, the DC bus voltage kept stability for rap id balance of energy. Simulation Results based on Matlab/Simulink show that this control strategy can not only improve the stability and dynamic response performance of the DC-bus voltage, but also effectively maintain the output power of generator and raise the ability of wind power system riding through the grid fault.
机译:直流母线电压是反映转换器系统是否正常工作的主要标准。当电网电压降,直流母线电压的稳定性控制是确保风力发电机未脱离电网的键。本文对直接驱动风电系统进行了研究,提出了一种与滑动模式控制的撬棍电路组合的协调控制方法。撬棍电路与直流总线连接。将滑动模式控制器替换为传统PI控制器,并在电动机侧转换器的内部电流回路中实现。当电网电压降时,DC总线的额外能量可能被撬棍电路释放出来。由于控制器的良好性能良好,电机侧转换器的输出功率可以由滑动模式可变结构控制器控制。同时,直流母线电压保持稳定性,以便进行能量的RAP ID平衡。基于MATLAB / SIMULINK的仿真结果表明,该控制策略不仅可以提高直流母线电压的稳定性和动态响应性能,而且还有效地保持发电机的输出功率,并提高风电系统骑在电网的能力过错。

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