在线堆芯监测系统的研究现状与建议

Research Status and Suggestions of Nuclear Reactor Online Core Monitoring System

  • 摘要: 在线堆芯监测系统(CMS)是核电站保障安全运行的重要系统,其主要功能是实时监测堆芯内部的关键参数变化,以便及时发现潜在的异常情况并提供后续操作建议。本文对在线CMS的主要功能进行了数学建模,明确了其核心的建模正问题以及监测、诊断和运行支持反问题。通过对国内外典型在线CMS的研究现状进行分析,明确了上述正反问题的求解思路,为后续在线CMS解决具体工程问题提供参考。其中,堆芯建模问题涉及高低保真度的机理模型、机器学习模型和降阶模型等。利用不同类型探测器和数据同化算法,解决探测器布置、物理场重构及不确定性量化问题是监测反问题的核心。诊断反问题则主要通过堆内外中子探测器信息,实现对棒失步、自给能中子探测器异常和振动异常等故障原因分析。运行支持反问题则主要利用堆芯跟随的理论模型,进行反应性或功率分布控制。最后,本文指出当前在线CMS技术研究中多源信息融合、不确定度量化和运行规程等方面存在的挑战。特别是在数字孪生及数值反应堆的框架下,考虑各种不确定性因素影响,实现机组运行能力提升,是在线CMS后续发展的重点方向之一。

     

    Abstract: The online core monitoring system (CMS) is a crucial system for ensuring the safe operation of nuclear power plants. Its primary function is to real-time monitor the key parameter changes within the reactor core, in order to timely detect potential abnormal conditions and provide subsequent operational recommendations. The mathematical modeling of the main functions of online CMS was conducted, and its core modeling forward problem was clearly defined as well as the inverse problems of monitoring, diagnosis, and operational control. Through analyzing the research status of typical online CMS systems, the solution approaches for the aforementioned forward and inverse problems were identified, providing references for resolving specific engineering issues of online CMS in the future. The reactor core modeling mainly involves high and low-fidelity mechanistic models, as well as various machine learning models and model order reduction techniques. Solving the detector placement, physical field reconstruction, and uncertainty quantification problems using diverse types of detectors and data assimilation algorithms is the core of the monitoring inverse problem. The diagnosis inverse problem primarily relies on in-core and ex-core neutron detector information to analyze the causes of control rod drop, self-powered neutron detector anomalies, and vibration abnormalities. Utilizing the theoretical models of core tracking, various types of reactivity or power distribution control constitute the main tasks of the operational support inverse problem. Furthermore, this paper points out the existing issues in current online CMS technology research, such as multi-source information fusion, uncertainty quantification, and operational procedures. Particularly, considering the influence of various uncertainty factors within the framework of digital twins and numerical reactors, to enhance the plant operating capability, is one of the future development directions for online CMS and its underlying technologies.

     

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