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Torque ripple minimization in PM synchronous motors using iterative learning control

机译:使用迭代学习控制的永磁同步电机转矩脉动最小化

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Parasitic torque pulsations exist in permanent magnet synchronous motors (PMSMs) due to nonsinusoidal flux density distribution around the air-gap, errors in current measurements, and variable magnetic reluctance of the air-gap due to stator slots. These torque pulsations vary periodically with rotor position and are reflected as speed ripple, which degrades the PMSM drive performance, particularly at low speeds. Because of the periodic nature of torque ripple, iterative learning control (ILC) is intuitively an excellent choice for torque ripple minimization. In this paper, first we propose an ILC scheme implemented in time domain to reduce periodic torque pulsations. A forgetting factor is introduced in this scheme to increase the robustness of the algorithm against disturbance. However, this limits the extent to which torque pulsations can be suppressed. In order to eliminate this limitation, a modified ILC scheme implemented in frequency domain by means of Fourier series expansion is presented. Experimental evaluations of both proposed schemes are carried out on a DSP-controlled PMSM drive platform. Test results obtained demonstrate the effectiveness of the proposed control schemes in reducing torque ripple by a factor of approximately three under various operating conditions.
机译:由于气隙周围的非正弦磁通密度分布,电流测量误差以及由于定子槽而引起的气隙可变磁阻,永磁同步电动机(PMSM)中存在寄生转矩脉动。这些转矩脉动随转子位置而周期性变化,并反映为速度波动,这会降低PMSM驱动性能,特别是在低速情况下。由于转矩脉动的周期性,因此直观地讲,迭代学习控制(ILC)是最小化转矩脉动的绝佳选择。在本文中,首先我们提出了一种在时域实施的ILC方案,以减少周期性的扭矩脉动。在该方案中引入了遗忘因子,以提高算法抗干扰的鲁棒性。但是,这限制了扭矩脉动可以被抑制的程度。为了消除该限制,提出了一种通过傅立叶级数扩展在频域中实现的改进的ILC方案。两种建议方案的实验评估均在DSP控制的PMSM驱动平台上进行。获得的测试结果证明了所提出的控制方案在各种工况下将转矩脉动减小了大约三倍的有效性。

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