Consideration of Thermal Embrittlement in Alloy 316H for Advanced Non-Light Water Reactor Applications

W. Ren, Lianshan Lin
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引用次数: 2

Abstract

To construct advanced non-light water reactors (ANLWRs) operating in the temperature range above that for the traditional light water reactors (LWRs), Alloy 316H is one of the candidate materials because of its inexpensiveness, significant service experience, and qualification for nuclear applications by the American Society of Mechanical Engineers (ASME). However, during the life span at temperatures expected for the ANLWRs, the alloy is likely to experience thermal embrittlement that has not been a concern for the traditional LWRs. To prepare for the development, the possibility of adverse thermal embrittlement effects on Alloy 316H performance in the ANLWRs must be evaluated and a technical basis regarding thermal embrittlement, if necessary, must be established for structural integrity analysis to provide reasonable assurance of adequate nuclear safety protection. In this paper, current technical basis for nuclear applications of Alloy 316H deterioration from thermal aging is briefly introduced. The likelihood of adverse thermal embrittlement effects on Alloy 316H performance is evaluated through historical data on microstructural and mechanical property evolution. Characterization of thermal embrittlement is then discussed, followed by a review of predictive models and trend curves for alloy embrittlement. Based on the review and evaluation, technical gaps for addressing thermal embrittlement issues are identified and gap-filling actions are recommended for establishing a technical basis to enable adequate consideration of thermal embrittlement in Alloy 316H applications to the ANLWRs.
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先进非轻水反应堆用316H合金热脆的研究
为了建造在高于传统轻水反应堆温度范围内运行的先进非轻水反应堆,316H合金因其价格低廉、丰富的服务经验以及获得美国机械工程师协会(ASME)核应用资格而成为候选材料之一。然而,在ANLWRs预期温度下的寿命期间,合金可能会经历传统LWRs所没有的热脆化。为了准备开发,必须评估在ANLWRs中对316H合金性能产生不利热脆化影响的可能性,并在必要时建立有关热脆化的技术基础,以进行结构完整性分析,为充分的核安全保护提供合理保证。本文简要介绍了目前316H合金热老化核应用的技术基础。通过显微组织和力学性能演变的历史数据,评估了不良热脆对316H合金性能影响的可能性。然后讨论了热脆化的特征,然后回顾了合金脆化的预测模型和趋势曲线。在审查和评估的基础上,确定了解决热脆问题的技术差距,并建议了填补差距的措施,以建立技术基础,以便在ANLWRs中充分考虑316H合金应用中的热脆问题。
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