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PWR MOX FUEL PHYSICS MODELS FOR THE DYNAMIC FUEL CYCLE SIMULATION TOOL CLASS

机译:动态燃料循环仿真工具类别的PWR MOX燃料物理模型

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Dynamic fuel cycle simulation tools model the entire fuel cycle, from fuel fabrication to spent fuel storage, and calculate nuclei inventories and material flows evolution in each unit. In the fuel cycle simulation tool CLASS, a fuel loading model builds a fresh fuel meeting the reactor requirements at each reactor loading and a cross-section predictor provides the mean cross-sections required to calculate its depletion during irradiation. This paper focuses on the elaboration of these models in the case of a PWR MOx-extended fuel, which includes MOx and multi-recycled MOx on uranium enriched support (MOxEUS) fuels. These models are built using neural networks applied on a databank gathering a thousand depletion simulations results. A fuel loading model based on a infinite multiplication factor (fcoo) calculation predicts the plutonium content, and in specific cases the uranium enrichment, required in the fuel to reach the target burn-up. This method allows an accuracy of 270 pcm on the reconstructed k_∞. The neural network mean cross-sections reconstruction coupled to the Bateman equation solving allows a depletion calculation with a deviation at the end of cycle (EOC) lower than 4 % on main nuclei compared to the fuel depletion reference calculation. PWR MOx-extended models are also compared to a previous equilibrium MOxEUS strategy calculation, showing a good general agreement on calculated equilibrium isotopic vectors.
机译:动态燃料循环仿真工具可对从燃料制造到乏燃料存储的整个燃料循环进行建模,并计算每个单元的核库存和物料流演变。在燃料循环模拟工具CLASS中,燃料装载模型会构建满足每个反应堆载荷下反应堆要求的新鲜燃料,并且横截面预测器会提供计算其在辐照期间的损耗所需的平均横截面。本文重点介绍了在PWR MOx扩展燃料(包括MOx和铀富集支持(MOxEUS)燃料的多循环MOx)情况下这些模型的详细说明。这些模型是使用应用于数据库的神经网络构建的,该数据库收集了上千次耗竭模拟结果。基于无限乘数(fcoo)计算的燃料装载模型可以预测燃料中的content含量,在特定情况下还可以达到目标燃耗所需的铀浓缩。该方法在重建的k_∞上具有270 pcm的精度。与燃料消耗参考计算相比,与贝特曼方程求解耦合的神经网络平均横截面重建功能可实现消耗计算,其循环末期(EOC)的偏差小于主核的4%。 PWR MOx扩展的模型也与先前的平衡MOxEUS策略计算进行了比较,显示出在计算的平衡同位素矢量上的良好总体一致性。

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