先进中子源堆三元件堆芯结构的中子分析

J. Gehin
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引用次数: 1

摘要

拟议的先进中子源概念前设计包括一个以高浓缩铀为燃料的330兆瓦双元件核反应堆,用重水冷却、减速和反射。最近,ANS的设计已改为三元素配置,以便在必要时减少富集,同时保持或提高热液裕度。堆芯由三个渐开线形燃料板组成的环形燃料元件组成。每个燃料板的厚度为1.27 mm,由U{sub 3}Si{sub 2}-Al(在一种情况下被提议富集50%)的燃料肉区和铝包层之间的铝填充区组成。单个板由1.27毫米的冷却剂通道分开。三元素堆芯的燃料装载量为31公斤铀,足以进行17天的燃料循环。获得新燃料分级的目标是使重要的温度裕度最大化。施加的限制是:(1)将覆层氧化层的温度降至119°C以下,以避免氧化物剥落。(2)将燃油中心线温度限制在400℃以下,以避免燃油损坏。(3)将包层壁温度限制在低于冷却剂的温度。防止冷却剂沸腾的初沸温度。其他热水力条件,如临界热通量,也被考虑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neutronic analysis of three-element core configurations for the Advanced Neutron Source Reactor
The proposed Advanced Neutron Source (ANS) pre-conceptual design consists of a two-element 330 MW{sub f} nuclear reactor fueled with highly-enriched uranium and is cooled, moderated, and reflected with heavy water. Recently, the ANS design has been changed to a three-element configuration in order to permit a reduction of the enrichment, if required, while maintaining or improving the thermal-hydraulic margins. The core consists of three annular fuel elements composed of involute-shaped fuel plates. Each fuel plate has a thickness of 1.27 mm and consists of a fuel meat region Of U{sub 3}Si{sub 2}-Al (50% enriched in one case that was proposed) and an aluminum filler region between aluminum cladding. The individual plates are separated by a 1.27 mm coolant channel. The three element core has a fuel loading of 31 kg of {sup 235}U which is sufficient for a 17-day fuel cycle. The goal in obtaining a new fuel grading is to maximize important temperature margins. The limits imposed axe: (1) Limit the temperature drop over the cladding oxide layer to less than 119{degrees}C to avoid oxide spallation. (2) Limit the fuel centerline temperature to less than 400{degrees}C to avoid fuel damage. (3) Limit the cladding wall temperature to less than the coolant. incipient-boiling temperature to avoid coolant boiling. Other thermal hydraulic conditions, such as critical heat flux, are also considered.
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