DSP-Based Fault Tolerant Grid Side Converter in PMSG Wind Turbine Using Improved Vector Current Control with Modified SVPWM

A. Shahzad, Y. Qiu, Yanhui Feng, W. Ullah
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Abstract

In permanent magnet synchronous generator (PMSG) based wind turbine system, back-to-back converter i.e., Machine side converter (MSC) and Grid side converter (GSC) is essential sub-assembly that develop interface between wind power generated and utility grid however, GSC of PMSG based wind turbine suffer from voltage suppression at DC-link, reactive current injection and active power fluctuation under fault condition which deteriorate overall system efficiency and causes system shut-down. To overcome the aforesaid issues and avoid system shutdown, in this paper modified SVPWM based improve vector current control (VCC) is proposed that is developed from direct power control (DPC) and open-switched fault tolerant control. Compared with the conventional VCC that employ complex phase lock loop (PLL) to extract voltage angle of grid, the proposed PLL-free improved VCC (IVCC) based on DPC, uses Clarke’s transformation and instantaneous active and reactive power that simplifies control scheme. Furthermore, under fault condition (grid side distortion), conventional VCC fails to tract grid voltage angle due to inability of PLL and poor transient stability whereas in proposed IVCC based on DPC (IVCC-DPC), PLL-free inner close loop is utilized to control GSC. To show the effectiveness of proposed IVCC-DPC based on modified eight-sector SVPWM based, a 2-level GSC is modelled and simulated via MATLAB-Simulink. Simulated model is examined for fault-tolerant capability (in context of low voltage ride through) and power quality. Finally, DSP based 1.8 kVA experimentally test platform using IVCC-DPC based on modified SVPWM is designed to validate the proposed developed model.
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基于dsp的改进矢量电流控制和改进SVPWM的PMSG风力机电网侧容错变换器
在基于永磁同步发电机(PMSG)的风力发电系统中,背靠背变流器即机侧变流器(MSC)和电网侧变流器(GSC)是建立风力发电与电网之间接口的重要子组件,但基于永磁同步发电机(PMSG)的风力发电机组的GSC存在直流链路电压抑制、无功电流注入和故障状态下有功功率波动等问题,从而降低系统整体效率并导致系统停机。为了克服上述问题,避免系统停机,本文在直接功率控制(DPC)和开开关容错控制的基础上,提出了基于改进SVPWM的改进矢量电流控制(VCC)。与传统采用复杂锁相环(PLL)提取电网电压角的VCC相比,本文提出的基于DPC的无锁相环改进VCC (IVCC)采用Clarke变换和瞬时有功功率,简化了控制方案。此外,在故障条件下(电网侧畸变),传统的VCC由于锁相环的失效和暂态稳定性差而无法捕捉电网电压角,而基于DPC的IVCC (IVCC-DPC)利用无锁相环的内闭环控制GSC。为了验证所提出的基于改进的八扇区SVPWM的IVCC-DPC的有效性,利用MATLAB-Simulink对一个2级GSC进行了建模和仿真。对仿真模型的容错能力(在低电压穿越的情况下)和电能质量进行了检查。最后,利用改进SVPWM的IVCC-DPC设计了基于DSP的1.8 kVA实验测试平台,对所提出的模型进行了验证。
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