使用滑动模式控制器提高直流伺服电机的性能

Mahendra K. Dawane, G. Malwatkar, Suhas P. Deshmukh
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引用次数: 0

摘要

滑动模态控制已成为增强各领域动态响应的重要技术,包括负载频率调节和远程车辆应用。事实证明,广泛采用的 PID 控制器能有效优化工业控制任务,而滑动模式控制则具有明显的优势。通过控制状态变量行为动态趋势的斜率,它可以实现快速动态响应,超调极小或没有,稳态误差也可以忽略不计。滑动模式控制的鲁棒性使其对设备参数变化和外部干扰具有很强的适应能力,这也是其主要优势之一。我们使用 MATLAB 软件中的 Simulink 进行了数字计算机仿真,主要针对使用电枢电压控制直流伺服电机的位置控制系统,以评估其性能如何。为了进一步了解滑动模式控制的运行情况,使用了几种控制法则,并对状态轨迹进行了检查。与传统的调谐 PID 控制相比,研究结果和讨论最终表明滑动模式控制更为成功。滑动模式技术具有卓越的功效,包括增强动态响应、减少过冲和几乎没有稳态误差。此外,即使面对参数波动和外部干扰,它的鲁棒性也能确保稳定运行。这项研究凸显了滑模控制作为传统控制方法有力替代品的巨大潜力。滑模控制能够提高系统性能,加上其固有的鲁棒性,使其成为对精确控制和弹性运行要求极高的各种工业应用的不二之选。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance improvement of DC servo motor using sliding mode controller
Sliding mode control has emerged as a valuable technique for enhancing dynamic response in various fields, including load frequency regulation and remote vehicle applications. While the widely adopted PID controller has proven effective for optimizing control tasks in industries, sliding mode control offers distinct advantages. By controlling the slope of the dynamical trends of state variable behavior, it enables rapid dynamic response with minimal or no overshoot, as well as negligible steady-state error. The robustness of sliding mode control, which makes it highly resilient to changes in plant parameters and outside disturbances, is one of its main advantages. A digital computer simulation was run using Simulink in the MATLAB software, concentrating on a position control system using an armature voltage-controlled D.C. servo motor to assess how well it performed. To learn more about the operation of sliding mode control, several control laws were used and state trajectories were examined. When compared to the conventional tuned PID control, the findings and discussion conclusively show sliding mode control to be more successful. The sliding mode technique has exceptional effectiveness, including enhanced dynamic response, less overshoot, and almost no steady-state error. Furthermore, its robust nature ensures consistent operation even in the face of parameter fluctuations and external disturbances. This study underscores the immense potential of sliding mode control as a powerful alternative to conventional control methods. Its ability to enhance system performance, coupled with its inherent robustness, makes it a compelling choice for various industrial applications where precise control and resilient operation are crucial.
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