首页> 外文期刊>European transactions on electrical power engineering >Air-gap flux-oriented vector control of dual stator induction generator used in wind energy conversion system with novel 13-zone time optimized space vector-based hybrid bus clamping PWM
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Air-gap flux-oriented vector control of dual stator induction generator used in wind energy conversion system with novel 13-zone time optimized space vector-based hybrid bus clamping PWM

机译:带有新型13区时间优化空间矢量的混合动力总线夹紧PWM的风能转换系统中使用的防气隙磁通磁通件矢量控制。

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摘要

This work presents a novel speed sensor less air-gap flux-oriented vector control of dual stator induction generator (DSIG) used for grid connected, variable speed wind energy generation system. The DSIG consists of two stator windings electrically separated by an angle of 30 degrees with dissimilar pole numbers, which are in the ratio of 1:3. This arrangement offers reduced magnetic core saturation and less harmonics in stator currents, which results into reduced stator winding losses. Moreover, presence of two stator windings makes DSIG suitable to be used in high power application. In conventional rotor-flux-oriented control, the rotor flux is oriented along the d-axis of the rotor winding. But the rotor flux is not easily accessible. Air-gap flux-oriented vector control (AGFOVC) is advantageous as compared to conventional vector control because the air-gap flux is easily accessible and does not require any special arrangement for the measurement of variables. Moreover incorporation of this novel speed sensor less air-gap flux-oriented vector control also eliminates the use of speed encoder as the rotor speed is estimated from the machine terminal variables. Elimination of speed encoder not only reduces the cost of the overall system but also nullifies the error due to mismeasurement of speed and enhances control flexibility and robustness. As a result of which robustness of the system increases. Here, two separate converters are used for the two stator windings of the machine. And the converter switching's are being performed by space vector-based novel dwell time optimized 13-zone hybrid PWM. This special PWM results in better harmonic performance, reduced torque pulsation, and minimal switching loss. The simulation of the overall system is performed in MATLAB environment and the simulated results are validated experimentally using dSPACE controller board DS1104. Close proximity in simulated and experimental waveforms justifies the effectiveness of the proposed work.
机译:这项工作提出了一种新型速度传感器较少的空气间隙磁通导向器的双定子感应发电机(DSIG)的矢量控制,用于网格连接,可变速度风能发电系统。 DSIG由两个定子绕组组成,两种定子绕组与不同的极值相比,其比例为1:3。这种布置在定子电流中提供了降低的磁芯饱和度和更小的谐波,这导致定子绕组损耗降低。此外,两个定子绕组的存在使得DSIG适合于高功率应用。在传统的转子磁通导向控制中,转子通量沿转子绕组的D轴定向。但是转子通量不易进入。与常规载体控制相比,空气间隙助焊剂的载体控制(AGFOVC)是有利的,因为空气间隙磁通量易于接近,并且不需要任何特殊的用于测量变量的特殊布置。此外,这种新颖的速度传感器的加入较少的空气间隙磁通导向矢量控制还消除了使用速度编码器,因为从机器端子变量估计转子速度。消除速度编码器不仅降低了整个系统的成本,而且由于速度的不良而增强了控制的灵活性和鲁棒性,也取消了误差。由于系统的鲁棒性增加。这里,两个单独的转换器用于机器的两个定子绕组。并且通过空间向量的新型停留时间优化了13区混合PWM来执行转换器切换。这种特殊的PWM导致更好的谐波性能,减少扭矩脉动和最小的开关损耗。整个系统的模拟在MATLAB环境中执行,并且使用DSPACE控制器板DS1104通过实验验证模拟结果。模拟和实验波形的近距离是证明拟议工作的有效性。

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