Feedback–Feedforward Compensation of a DC Motor

Ihechiluru Okor
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引用次数: 2

Abstract

The separately-excited DC motor is a high-performance variable speed drive vital for industrial applications such as robotics, actuation, control and guided manipulation because of its precision, simplicity, continuous control feature and wide speed range. Hence there is need to regulate and drive the motor at desired speed in the presence of parameter variations, model uncertainties and external disturbances. The ubiquitous Proportional-Integral-Derivative controller is not the optimal control strategy to achieve this objective because of its oscillatory response, and sensitivity to load disturbances and motor parameter variations. Hence this paper proposes a Feedforward – Feedback control scheme, for armature voltage speed control, that will permit the design of two distinct control objectives; that is setpoint tracking with acceptable robustness and disturbance rejection. This combined scheme ensures high performance for the DC motor speed where the model-based tuned feedback action is used to guarantee reference speed tracking and to compensate for conceivable model inaccuracies while feedforward compensation maintains the output speed at the setpoint in spite of arbitrary changes in the disturbance variable. Computer simulations are then presented to show the effectiveness of the proposed scheme.
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直流电机的前馈-反馈补偿
分励直流电动机是一种高性能的变速驱动器,对于机器人,驱动,控制和引导操作等工业应用至关重要,因为它具有精度,简单性,连续控制特性和宽速度范围。因此,需要在参数变化、模型不确定性和外部干扰存在的情况下,以期望的速度调节和驱动电机。普遍存在的比例-积分-导数控制器不是实现这一目标的最优控制策略,因为它的振荡响应,以及对负载扰动和电机参数变化的敏感性。因此,本文提出了一种前馈-反馈控制方案,用于电枢电压速度控制,这将允许设计两个不同的控制目标;这是具有可接受的鲁棒性和抗干扰性的设定值跟踪。这种组合方案确保了直流电机速度的高性能,其中基于模型的调谐反馈作用用于保证参考速度跟踪并补偿可想象的模型误差,而前馈补偿在干扰变量任意变化的情况下将输出速度保持在设定值。计算机仿真表明了所提方案的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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