Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1730428 | Annals of Nuclear Energy | 2006 | 13 Pages |
Abstract
As a result of improvements in computer technology, the continuous energy Monte Carlo burn-up calculation has received attention as a good candidate for an assembly calculation method. However, the results of Monte Carlo calculations contain the statistical errors. The results of Monte Carlo burn-up calculations, in particular, include propagated statistical errors through the variance of the nuclide number densities. Therefore, if statistical error alone is evaluated, the errors in Monte Carlo burn-up calculations may be underestimated. To make clear this effect of error propagation on Monte Carlo burn-up calculations, we here proposed an equation that can predict the variance of nuclide number densities after burn-up calculations, and we verified this equation using enormous numbers of the Monte Carlo burn-up calculations by changing only the initial random numbers. We also verified the effect of the number of burn-up calculation points on Monte Carlo burn-up calculations. From these verifications, we estimated the errors in Monte Carlo burn-up calculations including both statistical and propagated errors. Finally, we made clear the effects of error propagation on Monte Carlo burn-up calculations by comparing statistical errors alone versus both statistical and propagated errors. The results revealed that the effects of error propagation on the Monte Carlo burn-up calculations of 8Â ÃÂ 8 BWR fuel assembly are low up to 60Â GWd/t.
Related Topics
Physical Sciences and Engineering
Energy
Energy Engineering and Power Technology
Authors
Masayuki Tohjoh, Tomohiro Endo, Masato Watanabe, Akio Yamamoto,