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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Advanced oxidation-resistant iron-based alloys for LWR fuel cladding
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Advanced oxidation-resistant iron-based alloys for LWR fuel cladding

机译:用于轻水堆燃料包壳的高级抗氧化铁基合金

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摘要

Application of advanced oxidation-resistant iron alloys as light water reactor fuel cladding is proposed. The motivations are based on specific limitations associated with zirconium alloys, currently used as fuel cladding, under design-basis and beyond-design-basis accident scenarios. Using a simplified methodology, gains in safety margins under severe accidents upon transition to advanced oxidation-resistant iron alloys as fuel cladding are showcased. Oxidation behavior, mechanical properties, and irradiation effects of advanced iron alloys are briefly reviewed and compared to zirconium alloys as well as historic austenitic stainless steel cladding materials. Neutronic characteristics of iron-alloy-clad fuel bundles are determined and fed into a simple economic model to estimate the impact on nuclear electricity production cost. Prior experience with steel cladding is combined with the current understanding of the mechanical properties and irradiation behavior of advanced iron alloys to identify a combination of cladding thickness reduction and fuel enrichment increase (~0.5%) as an efficient route to offset any penalties in cycle length, due to higher neutron absorption in the iron alloy cladding, with modest impact on the economics.
机译:提出了先进的抗氧化铁合金作为轻水堆燃料包壳的应用。动机基于与锆合金相关的特定限制,目前在设计基准事故和超出设计基准事故的情况下,锆合金均用作燃料包壳。通过简化的方法,展示了在过渡到高级耐氧化铁合金作为燃料包壳时发生严重事故时安全裕度的提高。简要回顾了高级铁合金的氧化行为,力学性能和辐照效果,并将其与锆合金以及历史悠久的奥氏体不锈钢熔覆材料进行了比较。确定了铁合金包燃料的中子学特性,并将其输入到简单的经济模型中,以估算其对核电生产成本的影响。将钢包层的先前经验与对先进铁合金的机械性能和辐照行为的当前了解相结合,以确定包层厚度减小和燃料富集度增加(约0.5%)的组合,是抵消循环长度任何不利影响的有效途径,这是由于铁合金覆层中的中子吸收更高,对经济影响不大。

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