Zr-4和Zr-1Nb-O合金的高温氧化:影响因素、氧化行为及机理

IF 1.9 3区 工程技术 Q1 NUCLEAR SCIENCE & TECHNOLOGY
Huanteng Liu , Donghai Xu , Guanyu Jiang , Xueling Fan , Guangyi Liu
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引用次数: 0

摘要

在失冷剂事故中,锆合金的氧化速率迅速增加,可能导致包层失效,造成严重的安全隐患。因此,提高锆合金的抗氧化性能对保证核电的安全利用至关重要。本文综述了Zr-4和Zr-1Nb-O合金高温氧化性能的影响因素和机理。这些因素主要包括合金成分、氧化气氛、氧化温度、预氧化、辐照、氢吸收等。深入讨论了氧化动力学、氧化行为和氧化机理,并对氧化动力学进行了比较分析。总的来说,Nb的加入增强了锆合金的抗氧化性。在空气中,由于ZrN的形成,锆合金的氧化速度明显快于蒸汽和O2环境。在高温下,氧化锆的临界尺寸增加,导致相变和单斜氧化锆的体积分数降低。相变使氧化锆层开裂,降低了氧化锆层的稳定性。在O2或蒸汽中低温预氧化可显著提高样品的抗氧化性。锆合金氧化过程中氧化物的形成受O2 -扩散控制。氧化锆的分离氧化是由于氧化锆由四方相向单斜相转变,以及氧化锆在达到临界厚度时的应力松弛和氧化锆形态的演化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-temperature oxidation of Zr-4 and Zr-1Nb-O alloys: Influencing factors, oxidation behaviors and mechanisms
Under loss-of-coolant accidents, the oxidation rate of zircaloy rapidly increases, which can cause cladding failure and pose serious safety risks. Thus, enhancing the oxidation resistance of zircaloy is of utmost importance to ensure the safe utilization of a nuclear power. This work provides a comprehensive review on influencing factors and mechanisms for high-temperature oxidation performance of Zr-4 and Zr-1Nb-O alloys. These factors mainly include alloying composition, oxidizing atmosphere, oxidation temperature, pre-oxidation, irradiation, and hydrogen absorption. Oxidation kinetics, behavior, and mechanisms in steam, O2 and air are thoroughly discussed, and a comparative analysis of oxidation kinetics is presented. Overall, the addition of Nb enhances the oxidation resistance of zircaloy. In air, the oxidation rate of zircaloy is notably faster compared with that in steam and O2 environments due to the formation of ZrN. At elevated temperatures, the critical size of zirconia increases, leading to a phase transition and a reduction in the volume fraction of monoclinic zirconia. The phase transition makes the zirconia oxide layer crack and less stable. Pre-oxidation at low temperatures in O2 or steam significantly improves the oxidation resistance of samples. The formation of oxides during the oxidation process of zircaloy is controlled by O2– diffusion. The breakaway oxidation of zircaloys occurs as a result of the transformation from tetragonal to monoclinic phase of zirconia, as well as stress relaxation of oxides and evolution of oxide morphology when reaching critical thickness.
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来源期刊
Nuclear Engineering and Design
Nuclear Engineering and Design 工程技术-核科学技术
CiteScore
3.40
自引率
11.80%
发文量
377
审稿时长
5 months
期刊介绍: Nuclear Engineering and Design covers the wide range of disciplines involved in the engineering, design, safety and construction of nuclear fission reactors. The Editors welcome papers both on applied and innovative aspects and developments in nuclear science and technology. Fundamentals of Reactor Design include: • Thermal-Hydraulics and Core Physics • Safety Analysis, Risk Assessment (PSA) • Structural and Mechanical Engineering • Materials Science • Fuel Behavior and Design • Structural Plant Design • Engineering of Reactor Components • Experiments Aspects beyond fundamentals of Reactor Design covered: • Accident Mitigation Measures • Reactor Control Systems • Licensing Issues • Safeguard Engineering • Economy of Plants • Reprocessing / Waste Disposal • Applications of Nuclear Energy • Maintenance • Decommissioning Papers on new reactor ideas and developments (Generation IV reactors) such as inherently safe modular HTRs, High Performance LWRs/HWRs and LMFBs/GFR will be considered; Actinide Burners, Accelerator Driven Systems, Energy Amplifiers and other special designs of power and research reactors and their applications are also encouraged.
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