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Development of three methods for control rod position monitoring based on fixed in-core neutron detectors

机译:基于固定堆芯中子探测器的三种控制棒位置监测方法的开发

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摘要

Nuclear reactor core power distribution on-line monitoring system is very important in core surveillance, and this system should have the ability to indicate some abnormal conditions, such as the unacceptable control rod misalignment. In this study, the methodologies of radial basis function neural network (RBFNN), group method of data handling (GMDH) and Levenberg-Marquardt (LM) algorithm are utilized separately to unfold the control rod position from the fixed in-core neutron detector measurements. For using these methods, a large number of in-core detector signals corresponding to various known rod positions are needed. These data can be generated by an advanced core calculation code. In this study, the neutronics code SMART was used. The simulation results show that all these methods can unfold the control rod position accurately, and the performance comparison shows that the regularized RBFNN performs best. Two correction strategies are proposed to correct the simulated fixed in-core detector signals and improve the rod position monitoring accuracy when there are mismatches between actual physical factors and modeled physical factors.
机译:核反应堆堆芯功率在线监测系统在堆芯监测中非常重要,该系统应具有指示某些异常情况的能力,例如控制棒未对准。在这项研究中,分别利用径向基函数神经网络(RBFNN),数据处理分组方法(GMDH)和Levenberg-Marquardt(LM)算法的方法从固定堆芯中子探测器的测量结果中显示控制棒的位置。为了使用这些方法,需要对应于各种已知杆位置的大量堆芯内检测器信号。这些数据可以通过高级核心计算代码生成。在这项研究中,使用了中子学代码SMART。仿真结果表明,所有这些方法都可以准确地展开控制杆的位置,性能比较表明,正规化的RBFNN效果最好。当实际物理因素与建模物理因素不匹配时,提出了两种校正策略来校正模拟的固定岩心探测器信号并提高杆位置监测精度。

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