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Precision control of a sensorless PM BLDC motor using PLL control algorithm

机译:无传感器PM BLDC电机的精度控制使用PLL控制算法

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This paper presents particular methods for deployment of precision control of a sensorless permanent magnet brushless DC (PM BLDC) motor using PLL control algorithm. Firstly, we utilizes the third harmonic of the motor internal voltages to determine the commutation instants of the PM BLDC motor for sensorless control. The waveform of the motor internal voltages (or back emf) contains fundamental and higher-order frequency harmonics. Therefore, the third harmonic component is extracted from the stator phase voltage. The resulting third harmonic signal maintains a constant phase relationship with the rotor flux at any motor speed and load condition. And is practically free of noise that can be introduced by the inverter switching, making this a robust sensing method. As a result, the method described here is not sensitive to filtering delays, allowing the motor to achieve a good performance over a wide speed range. For conventional 6-pulse control using the Hall-IC alone, this sensor misalignment would pose problems such as excessive torque ripple, noise, and inefficiency. Therefore, to implement the third harmonic sensing methods and speed control algorithm in this paper, the principle of the Johnson counter is used and it can estimate the same Hall-ICs signal with a non-difference phase resulting from the signals of the Johnson counter. Also, to precise control of a sensorless PM BLDC motor, we applied the position signal of phase lock loop (PLL) control algorithm and the remainder scheme in this paper, thus one can operate PM BLDC motor in high performance. Also, a simple starting method and speed estimation approach are proposed. Simulation an experimental results are provided, to demonstrate the validity of the precision control of a sensorless PM BLDC motor using PLL control algorithm.
机译:本文采用PLL控制算法介绍了用于部署无传感器永磁无刷直流(PM BLDC)电机的精度控制的特定方法。首先,我们利用电机内部电压的三次谐波来确定PM BLDC电动机的换向瞬间,无传感器控制。电动机内部电压(或反EMF)的波形包含基本和高级频率的谐波。因此,从定子相电压提取第三谐波分量。由此产生的第三谐波信号在任何电动机速度和负载条件下与转子通量保持恒定相位关系。并且实际上是可以通过逆变器切换引入的噪声,使得这种稳健的感测方法。结果,这里描述的方法对滤波延迟不敏感,允许电动机在宽速度范围内实现良好的性能。对于使用Hall-IC的传统6脉冲控制,该传感器未对准将造成扭矩脉动,噪声和效率低下的问题。因此,为了在本文中实现三次谐波感测方法和速度控制算法,使用了Johnson计数器的原理,并且它可以估计来自Johnson计数器的信号产生的非差异阶段的相同的Hall-ICS信号。而且,为了精确控制无传感器PM BLDC电动机,我们在本文中施加了相位锁环(PLL)控制算法的位置信号和其余方案,因此可以在高性能的高性能下操作PM BLDC电机。此外,提出了一种简单的起始方法和速度估计方法。仿真提供了一种实验结果,以证明使用PLL控制算法的无传感器PM BLDC电动机的精度控制的有效性。

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