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A Sensorless Vector Control Scheme for Induction Motors using a Space Phasor based Current Hysteresis Controller

机译:基于空间相量的电流磁滞控制器的感应电动机无传感器矢量控制方案

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摘要

The increasing use of AC machines compared to DC motors in electrical drive applications has several reasons. A very important advantage of AC machines is their simple construction. However, AC drives often need mechanical sensors (tachometers, position encoders) for field orientation. In many applications these sensors reduce robustness and increase costs of a drive considerably. The objective of this paper is to present the practical implementation of a sensorless vector control scheme for induction motors using a space phasor based current hysteresis controller. This scheme measures the stator current hysteresis error direction to determine the rotor flux, position, during inverter zero vector states. This measurement of the rotor flux position is done indirectly by sensing the motor back emf, which is orthogonal to the rotor flux position. The basic idea is to measure the current hysteresis error direction of the stator current on the application of an inverter zero vector i.e. "short circuit at machine terminals". A generalization is possible by a combination of two (different) active states of the inverter. By a linear transformation of the electrical equations for both inverter states, a mathematical zero state is constructed. The use of this virtual short circuit is necessary at higher speeds when the inverter output voltage is fully utilized. However at low speeds the drop across the stator resistance is comparable to the motor hack emf, to overcome this a simple parameter adaptation scheme is also presented here. The proposed scheme enables a smooth transition to six-step mode of operation.
机译:与直流电机相比,在电机驱动应用中交流电机的使用越来越多,这有几个原因。交流电机的一个非常重要的优点是其结构简单。但是,交流变频器通常需要机械传感器(转速计,位置编码器)进行磁场定向。在许多应用中,这些传感器降低了坚固性并大大增加了驱动器的成本。本文的目的是提出使用基于空间相量的电流磁滞控制器的感应电动机无传感器矢量控制方案的实际实现。该方案测量定子电流磁滞误差方向,以确定逆变器零矢量状态下的转子磁通量,位置。转子磁通位置的这种测量是通过感测与转子磁通位置正交的电机反电动势间接完成的。基本思想是通过应用逆变器零矢量(即“机器端子短路”)来测量定子电流的电流磁滞误差方向。通过将逆变器的两个(不同)活动状态组合在一起,可以进行概括。通过对两个逆变器状态的电方程进行线性变换,可以构建数学上的零状态。当逆变器的输出电压得到充分利用时,必须以较高的速度使用这种虚拟短路。但是,在低速时,定子电阻上的压降可与电动机的电磁电动势相媲美,为克服这一问题,此处还提出了一种简单的参数自适应方案。所提出的方案使得能够平稳过渡到六步操作模式。

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