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首页> 外文期刊>Journal of nuclear engineering and radiation science >Comparison of the Reactivity Effects Calculated by DRAGON and Serpent for a PHWR 37-Element Fuel Bundle
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Comparison of the Reactivity Effects Calculated by DRAGON and Serpent for a PHWR 37-Element Fuel Bundle

机译:DRAGON 和 Serpent 计算的 PHWR 37 元素燃料束的反应效应比较

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摘要

Deterministic and Monte Carlo methods are regularly employed to conduct lattice calculations. Monte Carlo methods can effectively model a large range of complex geometries and, compared to deterministic methods, they have the major advantage of reducing systematic errors and are computationally effective when integral quantities such as effective multiplication factor or reactivity are calculated. In contrast, deterministic methods do introduce discretization approximations but usually require shorter computation times than Monte Carlo methods when detailed flux and reaction-rate solutions are sought. This work compares the results of the deterministic code DRAGON to the Monte Carlo code Serpent in the calculation of the reactivity effects for a pressurized heavy water reactor (PHWR) lattice cell containing a 37-element, natural uranium fuel bundle with heavy water coolant and moderator. The reactivity effects are determined for changes to the coolant, moderator, and fuel temperatures and to the coolant and moderator densities for zero-burnup, mid-burnup 3750 MWd/t(U) and discharge burnup 7500 MWd/t(U) fuel. It is found that the overall trend in the reactivity effects calculated using DRAGON match those calculated using Serpent for the burnup cases considered. However, differences that exceed the amount attributable to statistical error have been found for some reactivity effects, particularly for perturbations to coolant and moderator density and fuel temperature.
机译:确定性和蒙特卡洛方法通常用于进行晶格计算。蒙特卡罗方法可以有效地对大范围的复杂几何形状进行建模,与确定性方法相比,它们的主要优点是减少了系统误差,并且在计算有效乘法因子或反应性等积分量时计算有效。相比之下,确定性方法确实引入了离散化近似,但在寻求详细的通量和反应速率解时,通常需要比蒙特卡罗方法更短的计算时间。这项工作将确定性代码 DRAGON 的结果与蒙特卡洛代码 Serpent 在计算加压重水反应堆 (PHWR) 晶格单元的反应效应时进行了比较,该晶格单元包含 37 元素、天然铀燃料束和重水冷却剂和慢化剂。零燃耗、中燃耗 [3750 MWd/t(U)] 和排放燃耗 [7500 MWd/t(U)] 燃料的冷却剂和慢化剂密度的变化决定了反应效应。结果发现,对于所考虑的燃尽情况,使用 DRAGON 计算的反应效应的总体趋势与使用 Serpent 计算的反应效应的总体趋势相匹配。然而,对于某些反应性效应,特别是冷却剂和慢化剂密度以及燃料温度的扰动,已经发现超过统计误差的差异。

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