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A novel pattern-based approach for diagnostic controller performance monitoring

机译:一种基于模式的新型方法来诊断控制器性能

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摘要

This paper details a novel method for monitoring the disturbance rejection performance of controllers by applying a second-order underdamped model as a pattern recognition tool. A controller performance index based on the second-order model parameters classifies the patterns into diagnostic categories of sluggish, well-behaved and overly aggressive. The autocorrelation function (ACF) has been used in numerous performance assessment capacities, and this work builds on these successes by applying the pattern recognition method to automate the ACF assessment across the full range of disturbance rejection performance. In addition to the performance diagnostic, a pattern-based visual tuning guide is presented for retuning PI controllers to regain desired performance. The performance assessment method has been tested on numerous control loops in a 25 MW cogeneration power plant and results of the application are presented.
机译:本文详细介绍了一种通过将二阶欠阻尼模型用作模式识别工具来监视控制器的抗干扰性能的新方法。基于二阶模型参数的控制器性能指标将模式分类为缓慢,行为良好和过于激进的诊断类别。自相关函数(ACF)已用于多种性能评估功能,并且这项工作基于这些成功,通过应用模式识别方法在整个抗干扰性能范围内自动进行ACF评估。除了性能诊断之外,还提供了基于模式的视觉调整指南,用于重新调整PI控制器以重新获得所需的性能。性能评估方法已在25 MW热电联产电厂的许多控制回路上进行了测试,并给出了应用结果。

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