中试规模冷却回路的监控

K. Villez, V. Venkatasubramanian, H. Garcia, C. Rieger
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引用次数: 3

摘要

我们将先前开发的故障检测和识别(FDI)策略与闭环监控控制器相结合。将该组合方法应用于核电厂中试冷却回路模型,该模型包括卡尔曼滤波器和基于模型的预测控制器作为正常运行的一部分。该系统有两个可用于流量控制的阀门,这意味着可以提供一些冗余。FDI方法基于不同故障场景的似然比,而这种似然比又来自卡尔曼滤波的应用。这里使用了先前引入的FDI方法的扩展,以检测和识别卡阀问题等非线性故障,并适当地计算故障引入的时间。监控系统被设计为一旦诊断完成,根据故障诊断任务的状态和所识别的故障类型采取不同的动作。有些故障,如传感器偏差和漂移,本质上是参数化的,无需重新配置调节控制系统即可进行调整。其他故障,如卡阀问题,需要重新配置调节控制系统。在几个场景中演示了整个策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Supervisory control of a pilot-scale cooling loop
We combine a previously developed strategy for Fault Detection and Identification (FDI) with a supervisory controller in closed loop. The combined method is applied to a model of a pilot-scale cooling loop of a nuclear plant, which includes Kalman filters and a model-based predictive controller as part of normal operation. The system has two valves available for flow control meaning that some redundancy is available. The FDI method is based on likelihood ratios for different fault scenarios which in turn are derived from the application of the Kalman filter. A previously introduced extension of the FDI method is used here to enable detection and identification of non-linear faults like stuck valve problems and proper accounting of the time of fault introduction. The supervisory control system is designed so to take different kinds of actions depending on the status of the fault diagnosis task and on the type of identified fault once diagnosis is complete. Some faults, like sensor bias and drift, are parametric in nature and can be adjusted without need for reconfiguration of the regulatory control system. Other faults, like a stuck valve problem, require reconfiguration of the regulatory control system. The whole strategy is demonstrated for several scenarios.
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