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Improved methodology and set-point design for diagnosis of model-plant mismatch in control loops using plant-model ratio

机译:使用工厂模型比率诊断控制回路中模型工厂不匹配的改进方法和设定点设计

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摘要

Performance of any model-based control scheme depends on the quality of model. When these schemes deliver poor loop performance due to model-plant mismatch (MPM), a detection of the same needs to be in place. A recently introduced plant model ratio (PMR) not only detects MPM but also facilitates a unique identification of the source of mismatch, namely, gain, dynamics (time constant) and delay mismatches. The prime objective of this work is to improve the PMR approach in a few key aspects, namely, estimation and experimental effort, and assessment procedure by taking a fresh perspective of PMR and conducting a detailed theoretical study of its signatures. A rigorous assessment procedure based on the theoretical properties of PMR is devised. Three threshold-based hypotheses tests are proposed for significance testing of PMR. A key contribution of this work is the design of set-point with minimal excitation for diagnosis of MPM, based on the features of PMR. The revised methodology is demonstrated and compared with the existing method through simulation examples. The study also demonstrates the potential of the proposed method in serving as a prelude to full/partial model re-identification.
机译:任何基于模型的控制方案的性能都取决于模型的质量。当这些方案由于模型工厂不匹配(MPM)而导致较差的循环性能时,需要对其进行检测。最近引入的工厂模型比率(PMR)不仅可以检测MPM,而且还可以方便地唯一识别失配的来源,即增益,动态(时间常数)和延迟失配。这项工作的主要目的是通过重新审视PMR并对​​其特征进行详细的理论研究,在几个关键方面改进PMR方法,即估计和实验工作以及评估程序。设计了基于PMR理论特性的严格评估程序。提出了三种基于阈值的假设检验,用于PMR的重要性检验。这项工作的主要贡献是基于PMR的功能,设计了具有最小激励的MPM诊断设定点。通过仿真实例对修订后的方法进行了演示,并与现有方法进行了比较。这项研究还证明了该方法在完全/部分模型重新识别的前奏中的潜力。

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