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DNB limit estimation using an adaptive fuzzy inference system

机译:使用自适应模糊推理系统的DNB极限估计

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摘要

The onset of nucleate boiling is characterized by extremely high heat transfer rates. However, if the fuel rod is operated at a high enough power density, the heat transfer mechanism becomes film boiling with severely reduced heat transfer ability, which is called departure from nucleate boiling (DNB). In this work, the DNB is predicted by an adaptive fuzzy inference system using the measured signals of the average temperature, pressure, and coolant flowrate of a reactor core. An adaptive fuzzy inference system is a fuzzy inference system equipped with a training algorithm. The training method of the adaptive fuzzy inference system is accomplished by two steps: the combined genetic and least-squares algorithms (first step), and the combined backpropagation and least-squares algorithms (second step). The proposed method was verified by using the nuclear and thermal data of the Yonggwang 3 and 4 nuclear power plants. Even though the rule number of this algorithm is small (4 rules), the estimate is accurate. Therefore, this algorithm can provide good information for nuclear power plant operation and diagnosis by predicting the DNB each time step.
机译:核沸腾的开始的特征在于极高的传热速率。然而,如果燃料棒以足够高的功率密度运行,则传热机构变成膜沸腾而传热能力大大降低,这被称为背离核沸腾(DNB)。在这项工作中,DNB由自适应模糊推理系统使用反应堆堆芯的平均温度,压力和冷却剂流量的测量信号进行预测。自适应模糊推理系统是一种配备有训练算法的模糊推理系统。自适应模糊推理系统的训练方法分两步完成:遗传和最小二乘相结合的算法(第一步),反向传播和最小二乘相结合的算法(第二步)。利用永光三号和四号核电厂的核能和热力数据验证了该方法的有效性。即使该算法的规则数量很小(4个规则),估计也是准确的。因此,该算法通过预测每个时间步长的DNB,可以为核电站的运行和诊断提供良好的信息。

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