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Canonical variate analysis for performance degradation under faulty conditions

机译:在故障条件下性能下降的典型变量分析

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Condition monitoring of industrial processes can minimize maintenance and operating costs while increasing the process safety and enhancing the quality of the product. In order to achieve these goals it is necessary not only to detect and diagnose process faults, but also to react to them by scheduling the maintenance and production according to the condition of the process. The objective of this investigation is to test the capabilities of canonical variate analysis (CVA) to estimate performance degradation and predict the behavior of a system affected by faults. Process data was acquired from a large-scale experimental multiphase flow facility operated under changing operational conditions where process faults were seeded. The results suggest that CVA can be used effectively to evaluate how faults affect the process variables in comparison to normal operation. The method also predicted future process behavior after the appearance of faults, modeling the system using data collected during the early stages of degradation.
机译:工业过程的状态监视可以最大程度地减少维护和运营成本,同时提高过程安全性并提高产品质量。为了实现这些目标,不仅有必要检测和诊断过程故障,而且还需要根据过程条件安排维护和生产,以对这些问题做出反应。这项研究的目的是测试规范变量分析(CVA)的能力,以评估性能下降并预测受故障影响的系统的行为。过程数据是从大规模的实验性多相流设施获得的,该设施在变化的运行条件下运行,在这些条件下注入了过程故障。结果表明,与正常操作相比,CVA可有效地评估故障如何影响过程变量。该方法还可以预测故障出现后的未来过程行为,并使用在退化早期收集的数据对系统进行建模。

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