首页> 外文会议>36th Annual Conference on IEEE Industrial Electronics Society >Torque ripple minimization in surface-mounted PM drives by means of PI + multi-resonant controller in synchronous reference frame
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Torque ripple minimization in surface-mounted PM drives by means of PI + multi-resonant controller in synchronous reference frame

机译:通过PI +多谐振控制器在同步参考框架中将表面安装式PM驱动器中的转矩脉动最小化

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Non-sinusoidal back electromagnetic forces cause torque ripple in permanent magnet synchronous motors. These harmonics should be reduced by means of an appropriate current control to improve performance. Good results have been obtained with linear regulators such as repetitive controllers in synchronous reference frame (SRF) and resonant controllers in stationary frame. Repetitive controllers present drawbacks such as difficult frequency adaptation, due to its requirement for variable sampling frequency. On the other hand, previous approaches that employ resonant controllers in stationary frame pose several problems. These implementations are quite resource-consuming, since they need the online computation of trigonometric functions, and when the compensation is not limited to just low frequencies, instability occurs due to the system delay. In this paper, it is proposed to use resonant controllers in SRF for torque ripple minimization in surface-mounted permanent magnet machines, so that it is possible to reduce their number by four. Additionally, cosine terms calculation is optimized by Taylor series, and a frequency adaptive phase lead is included in each resonant controller to compensate the plant delay. In this manner, an effective torque ripple minimization is achieved with optimum resource-consumption and good stability margins, even if high and variable frequency components are compensated.
机译:非正弦反向电磁力会在永磁同步电动机中引起转矩波动。这些谐波应通过适当的电流控制来降低,以提高性能。使用线性调节器,例如同步参考框架(SRF)中的重复控制器和固定框架中的谐振控制器,已经获得了良好的结果。重复的控制器由于需要可变的采样频率而呈现出诸如难以适应频率之类的缺点。另一方面,在固定框架中采用谐振控制器的先前方法提出了几个问题。这些实现非常消耗资源,因为它们需要在线计算三角函数,并且当补偿不仅限于低频时,由于系统延迟而导致不稳定。在本文中,建议在SRF中使用谐振控制器,以使表面安装永磁电机中的转矩脉动最小化,从而可以将其数量减少4个。此外,余弦项的计算通过泰勒级数进行了优化,并且频率自适应相位超前包含在每个谐振控制器中以补偿设备延迟。以这种方式,即使补偿了高频分量和可变频率分量,也可以以最佳的资源消耗和良好的稳定性裕度实现有效的转矩脉动最小化。

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