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首页> 外文期刊>Progress in Nuclear Energy >Modeling LWR fuel Rod's gap thickness heat transfer coefficient by artificial neural network technique
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Modeling LWR fuel Rod's gap thickness heat transfer coefficient by artificial neural network technique

机译:通过人工神经网络技术建模LWR燃料杆间隙厚度传热系数

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摘要

During the lifetime of nuclear Light Water Reactors (LWRs), the fuel-cladding gap thickness heat transfer coefficient (h(gap)) is the most crucial parameter of fuel rod performance that determines the fuel rod thermomechanical behavior as well as the maximum level of fuel burn-up during the normal operation. The main objective of the present work is to develop a smart calculative method by using the artificial neural network (ANN) technique to predict the h(gap) for a fuel rod of LWRs. The parameters of ANN input include those of fuel design gap initial thickness and pressure, operation time, Linear Heat Generation (LHG), and the average fuel burn-up while h(gap) is considered as the only output parameter. The obtained results of FRAPCON-3.5 steady-state fuel rod performance code is used to form the training data set. A Multi-Layer Perceptron feed-forward ANN with one hidden layer is trained with the Levenberg-Marquardt training algorithm. It has been illustrated that the created artificial network can accurately predict the h(gap). Through the weight matrix of the ANN, Garson's sensitive analysis procedure shows the significant role of fuel burn-up in determining the level of h(gap).
机译:在核光水反应器(LWRS)的寿命期间,燃料包层间隙厚度传热系数(H(间隙))是最重要的燃料杆性能参数,用于确定燃料棒热机械行为以及最大水平在正常操作期间燃料燃烧。本作工作的主要目的是通过使用人工神经网络(ANN)技术来开发智能计算方法来预测LWRS的燃料杆的H(间隙)。 ANN输入的参数包括燃料设计间隙初始厚度和压力,操作时间,线性发热(LHG)的参数,以及H(间隙)被认为是唯一的输出参数的同时燃烧的平均燃料燃烧。使用FRAPCON-3.5稳态燃料棒性能代码的结果用于形成训练数据集。具有一个隐藏层的多层的Perceptron前馈ANN与Levenberg-Marquardt训练算法培训。已经示出了所产生的人造网络可以准确地预测H(间隙)。通过ANN的重量矩阵,Garson的敏感性分析程序显示燃料燃烧在确定H(间隙)水平时的显着作用。

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