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A transfer function approach to active damping of an induction motor drive with LC filters

机译:具有LC滤波器的感应电动机驱动器的主动阻尼传递函数方法

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The use of LC filters between inverter and motor terminals results in undesirable resonant oscillations in motor voltages and currents. Because passive damping methods employ physical resistors to suppress these oscillations, they contribute to additional losses. Lossless active damping methods with virtual resistors have been explored in the literature as a viable alternative. In a typical active damping implementation, current flow in a virtual resistor across the filter capacitor is emulated in a control loop using motor voltage feedback. Conventionally, the virtual resistance value is fixed based on empirical rules and left unchanged for all operating conditions. Choosing the resistance value is important, because high values may provide insufficient damping, whereas low values can lead to excessive damping and cause degraded dynamic response. A small-signal transfer function-based approach is developed in this paper for active damping design, based on operating conditions and dynamic tuning of the virtual resistance. With the control scheme implemented in a d-q frame, it provides the flexibility of using a differential damping approach in which the d and q axis resistance values need not be equal. Simulations and experimental results are provided for an active-damped, field-oriented-control based induction motor drive. Results confirm the effectiveness of active damping in mitigating resonance effects. This adds new degrees of freedom to the design of inverter output filters.
机译:在逆变器和电机端子之间使用LC滤波器会导致电机电压和电流出现不希望的共振振荡。由于无源阻尼方法采用物理电阻器来抑制这些振荡,因此它们会增加额外的损耗。文献中已经探讨了使用虚拟电阻器的无损有源阻尼方法,作为一种可行的替代方法。在典型的主动阻尼实现中,使用电机电压反馈在控制环路中模拟通过滤波电容器的虚拟电阻中的电流。常规地,虚拟电阻值基于经验规则是固定的,并且对于所有操作条件都保持不变。选择电阻值很重要,因为较高的值可能会提供不足的阻尼,而较低的值可能会导致过度的阻尼并导致动态响应降低。本文基于工作条件和虚拟电阻的动态调整,为主动阻尼设计开发了一种基于小信号传递函数的方法。通过在d-q帧中实现的控制方案,它提供了使用差分阻尼方法的灵活性,其中d和q轴电阻值不必相等。提供了基于主动阻尼,基于磁场定向控制的感应电动机驱动器的仿真和实验结果。结果证实了主动阻尼在减轻共振效应方面的有效性。这为逆变器输出滤波器的设计增加了新的自由度。

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