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Robust dynamic sensor fault detection and isolation of helical coil steam generator systems using a subspace identification technique

机译:使用子空间识别技术的螺旋线圈蒸汽发生器系统的动态传感器故障检测和隔离

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摘要

A design approach to sensor fault detection and isolation (FDI) of helical coil steam generator (HCSG) systems of the International Reactor Innovation Secure (IRIS) reactor is presented. In the design phase, a physical model is first developed to provide a realistic simulation and generate data characterizing the system dynamics. A subspace identification technique is then used to extract a low-order linear state-space model from the data. Finally, a robust dynamic parity space approach is utilized to design residual generators for FDI This design approach is able to achieve fault isolation following a predetermined logic without the need to use data during fault conditions, which is an unrealistic assumption of many FDI approaches studied for nuclear power plants. The results of the HCSG application show that the approach is robust to not only measurement and process noises but also operation condition changes and has the capability of correct FDI during reactor power transients and during the propagation of sensor faults in a control loop.
机译:提出了一种国际反应堆创新安全(IRIS)反应堆螺旋线圈蒸汽发生器(HCSG)系统的传感器故障检测和隔离(FDI)设计方法。在设计阶段,首先开发一个物理模型以提供逼真的仿真并生成表征系统动力学的数据。然后使用子空间识别技术从数据中提取低阶线性状态空间模型。最后,采用鲁棒的动态奇偶空间方法来设计FDI的残差生成器。该设计方法能够按照预定的逻辑实现故障隔离,而无需在故障情况下使用数据,这是许多针对FDI方法研究的不切实际的假设核电厂。 HCSG应用程序的结果表明,该方法不仅对测量和过程噪声,操作条件变化均具有鲁棒性,并且具有在反应堆功率瞬变期间以及在控制回路中传播传感器故障期间校正FDI的能力。

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