Corrosion behavior and mechanisms of rare-earth ferrite/martensite steel weldment in liquid lead-bismuth eutectic

IF 7.4 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Wenyao Li , Jin Zhou , Jun Zhang , Hao Ren , Xingyuan Mei , Lining Xu , Feifei Zhang , Xiaoxin Zhang , Qingzhi Yan , Yang He , Lijie Qiao
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引用次数: 0

Abstract

With the increasing operating temperatures in fast neutron nuclear reactor designs, the incorporation of Cr, Si, and rare earth elements into the ferrite/martensite (F/M) steels has become common practice to bolster high-temperature mechanical properties and corrosion resistance. Nonetheless, weld joints often emerge as critical positions limiting the steel service life. Research on the service performances of weld joints in novel F/M steels enriched with Cr, Si, and especially rare earth elements remains lacking. Here, by studying a rare earth F/M steel and its weld joints, we systematically evaluated the corrosion resistance and degradation mechanism of laser-weld joints of the steels in liquid lead-bismuth eutectic alloy. Atomic-scale structural and chemical characterizations revealed that the welding process leads to a loss of solute Y and hence hinders the formation of the crucial Cr2O3-rich anti-oxidation layer. Without the protection, oxygen diffusion zone develops in the coarse columnar crystals in the weldment, which further undermines the density of the oxide scale. These findings provide critical fundamental information with insights for enhancing the service performance of weldments in advanced F/M steels.
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来源期刊
Corrosion Science
Corrosion Science 工程技术-材料科学:综合
CiteScore
13.60
自引率
18.10%
发文量
763
审稿时长
46 days
期刊介绍: Corrosion occurrence and its practical control encompass a vast array of scientific knowledge. Corrosion Science endeavors to serve as the conduit for the exchange of ideas, developments, and research across all facets of this field, encompassing both metallic and non-metallic corrosion. The scope of this international journal is broad and inclusive. Published papers span from highly theoretical inquiries to essentially practical applications, covering diverse areas such as high-temperature oxidation, passivity, anodic oxidation, biochemical corrosion, stress corrosion cracking, and corrosion control mechanisms and methodologies. This journal publishes original papers and critical reviews across the spectrum of pure and applied corrosion, material degradation, and surface science and engineering. It serves as a crucial link connecting metallurgists, materials scientists, and researchers investigating corrosion and degradation phenomena. Join us in advancing knowledge and understanding in the vital field of corrosion science.
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