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A neutronic design study of lead-bismuth-cooled small and safe ultra-long-life cores

机译:铅铋冷却小型安全超长寿命磁芯的中子学设计研究

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In this paper, two small ultra-long-life lead-bismuth-cooled cores having 48 and 58 effective full power years (EFPYs) of operation life are neutronically designed, and their core physics characteristics including safety-related parameters are analyzed and inter-compared. Each core's rate is 110 MWt (36 MWe), and they use depleted uranium and thorium blankets, respectively, for achieving ultra-long life and high burnup while the ternary metallic fuels having TRU from LWR spent fuels are adopted as driver fuels. They adopt a low power density for ultra-long life and for considering some possibilities of high peak power density. This work provides a consistent comparison of the effects of the depleted uranium and thorium blankets on the performances of small ultra-long-life lead-bismuth-cooled cores. The results of the detailed neutronic analyses show that the core with depleted uranium has a significantly longer life because of the better breeding characteristics of depleted uranium versus the core with a thorium blanket and that all of the cores have negative reactivity coefficients except for the very small positive coolant expansion reactivity coefficients and low peak linear power densities. Additionally, a detailed decomposition analysis is performed to better understand the effects of coolant voiding on reactivity. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文对两个具有48和58有效全功率年(EFPY)使用寿命的超长寿命铅铋冷却小型磁芯进行了中子设计,并对其磁芯物理特性(包括与安全相关的参数)进行了分析,并进行了相互比较。比较。每个堆芯的功率为110 MWt(36 MWe),它们分别使用贫铀和th气层,以实现超长寿命和高燃耗,而采用LWR乏燃料中具有TRU的三元金属燃料作为驱动燃料。它们采用低功率密度以实现超长寿命,并考虑了一些高峰值功率密度的可能性。这项工作对贫化的铀和or覆盖层对小型超长寿命铅铋冷却磁芯性能的影响提供了一致的比较。详细的中子学分析结果表明,贫铀芯的寿命明显更长,这是因为贫铀的育种特性优于含blanket毯的芯,并且除很小的核外,所有芯的反应系数均为负正的冷却剂膨胀反应性系数和低的峰值线性功率密度。另外,进行了详细的分解分析,以更好地了解冷却液排空对反应性的影响。 (C)2015 Elsevier Ltd.保留所有权利。

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