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Current Harmonics Compensation Based on Multiresonant Control in Synchronous Frames for Symmetrical src='/images/tex/388.gif' alt='n'> -Phase Machines

机译:对称 src =“ / images / tex / 388.gif” alt =“ n”> -相位机在同步帧中基于多谐振控制的当前谐波补偿

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Low-order odd current harmonics arise in practical multiphase drives due to machine and converter nonlinear behavior (e.g., deadtime and flux saturation). If the windings are distributed, some harmonics cause torque ripple, whereas others produce losses. The latter is aggravated by the small impedance in the no-torque subspaces. Current harmonics can be compensated without steady-state error by proportional–integral controllers in multiple synchronous frames (SFs); however, a heavy computational load is required. In three-phase systems, the computational burden of this multiple SF (MSF) scheme is often avoided by implementing instead resonant controllers (RCs) tuned at the harmonics that are multiples of six in an SF rotating with the fundamental frequency. A similar structure has been proposed for nonlinearities compensation in asymmetrical six-phase machines. This paper extends this multiple RC (MRC) strategy to symmetrical machines of any phase number. The optimum frequencies for the RCs and for the SF in each plane, so that the number of RCs is minimized, are established. Then, the computational load of the resulting generic MRC scheme is assessed and compared with that of the MSF structure. The conditions in which the former is particularly preferable over the latter are identified. Experimental results are provided.
机译:由于电机和转换器的非线性行为(例如死区时间和磁通饱和度),在实际的多相驱动器中会产生低阶奇数次电流谐波。如果绕组分布,则某些谐波会引起转矩波动,而其他谐波则会产生损耗。无扭矩子空间中的小阻抗会加剧后者。比例积分控制器可以在多个同步帧(SF)中补偿电流谐波而不会产生稳态误差。但是,这需要很大的计算量。在三相系统中,通常可以通过在以基本频率旋转的SF中实现以六倍频的谐波调谐的谐振控制器(RC)来避免这种多重SF(MSF)方案的计算负担。对于非对称六相电机中的非线性补偿,已经提出了类似的结构。本文将这种多RC(MRC)策略扩展到任何相数的对称机器。建立了每个平面中RC和SF的最佳频率,从而使RC的数量最小化。然后,评估所得通用MRC方案的计算负荷,并将其与MSF结构的计算负荷进行比较。确定了其中前者比后者特别优选的条件。提供实验结果。

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