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DIAGNOSING UNDERSAMPLING IN MONTE CARLO EIGENVALUE AND FLUX TALLY ESTIMATES

机译:诊断蒙特卡洛特征值和通量总计估计值

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This study explored the impact of undersampling on the accuracy of tally estimates in Monte Carlo (MC) calculations. Steady-state MC simulations were performed for models of several critical systems with varying degrees of spatial and isotopic complexity, and the impact of undersampling on eigenvalue and fuel pin flux/fission estimates was examined. This study observed biases in MC eigenvalue estimates as large as several percent and biases in fuel pin flux/fission tally estimates that exceeded tens, and in some cases hundreds, of percent. This study also investigated five statistical metrics for predicting the occurrence of undersampling biases in MC simulations. Three of the metrics (the Heidelberger-Welch RHW, the Geweke Z-Score, and the Gelman-Rubin diagnostics) are commonly used for diagnosing the convergence of Markov chains, and two of the methods (the Contributing Particles per Generation and Tally Entropy) are new convergence metrics developed in the course of this study. These metrics were implemented in the KENO MC code within the SCALE code system and were evaluated for their reliability at predicting the onset and magnitude of undersampling biases in MC eigenvalue and flux tally estimates in two of the critical models. Of the five methods investigated, the Heidelberger-Welch RHW, the Gelman-Rubin diagnostics, and Tally Entropy produced test metrics that correlated strongly to the size of the observed undersampling biases, indicating their potential to effectively predict the size and prevalence of undersampling biases in MC simulations.
机译:这项研究探讨了欠采样对蒙特卡洛(MC)计算中提示估计的准确性的影响。对具有不同程度的空间和同位素复杂性的几个关键系统的模型进行了稳态MC模拟,并研究了欠采样对特征值和燃料销通量/裂变估计的影响。这项研究发现,MC特征值估计值的偏差高达百分之几,而燃料销通量/裂变计数估计值的偏差超过百分之十,在某些情况下甚至超过百分之百。这项研究还调查了五种统计指标,以预测MC模拟中欠采样偏差的发生。三种度量标准(Heidelberger-Welch RHW,Geweke Z-Score和Gelman-Rubin诊断程序)通常用于诊断马尔可夫链的收敛性,另外两种方法(每代贡献粒子数和Tally熵)是在研究过程中开发的新收敛指标。这些指标在SCALE代码系统内的KENO MC代码中实现,并在预测两个关键模型中MC特征值和通量计数估算中欠采样偏差的发生和幅度时评估了它们的可靠性。在所研究的五种方法中,Heidelberger-Welch RHW,Gelman-Rubin诊断方法和Tally Entropy产生了与所观察到的欠采样偏差的大小密切相关的测试指标,表明它们有可能有效预测低采样偏差的大小和普遍程度。 MC模拟。

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