Revealing anti-corrosion mechanism of low-alloyed Mg-Gd-Zn-Zr alloy with ultra-low corrosion rate

IF 7.4 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Corrosion Science Pub Date : 2025-07-15 Epub Date: 2025-04-07 DOI:10.1016/j.corsci.2025.112931
Zhihao Xu , Jinghuai Zhang , Yuying He , Qiang Yang , Shujuan Liu , Tengfei Zhao , Hao Dong , Ruizhi Wu , Xiaobo Zhang , Xin Qiu
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Abstract

Poor corrosion resistance is the inherent weakness of common Mg alloys, and consequentially, it would be a long-standing challenge to improve the corrosion resistance of Mg alloys to reach or approach that of other stainless metals while maintaining mechanical properties. Here, we successfully develop a low-alloyed Mg-2Gd-0.6Zn-0.3Zr (wt%) alloy having an ultra-low corrosion rate of 0.09 mm y−1 coupled with good mechanical properties. Its corrosion resistance in 3.5 wt% NaCl solution is superior to that of ultra-high-purity Mg and other comparative Mg alloys. The ultra-high corrosion resistance is mainly attributed to three key factors. The relatively uniform microstructure of alloy substrate in terms of potential is the basic factor. The corrosion film exhibits superior corrosion resistance and passivation effect as well as self-healing ability. The enrichment of alloying elements and the formation of ZrO2, Gd2O3, and ZnO with Pilling Bedworth Ratio between 1 and 2 in the corrosion film are conducive to reduce macroscopic defects and thus improve the stability and compactness of the corrosion film, which is another key factor. Amorphous ZrO2 plays an important role in rapid formation of compact film. The more important finding of this study is that this corrosion film has amorphous characteristics to a large extent, which is believed to avoid microscopic defects from grain boundaries as rapid channels for Cl- transport, and this is the third key factor for further reduction to achieve the ultra-low corrosion rate for the developed alloy. Our findings are expected to inspire the development of real stainless Mg alloys.
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揭示了超低腐蚀速率低合金Mg-Gd-Zn-Zr合金的防腐机理
耐蚀性差是普通镁合金的固有弱点,因此,如何在保持机械性能的同时提高镁合金的耐蚀性,达到或接近其他不锈钢的耐蚀性,将是一个长期的挑战。在这里,我们成功地开发了低合金Mg-2Gd-0.6Zn-0.3Zr (wt%)合金,具有0.09 mm y−1的超低腐蚀速率和良好的力学性能。其在3.5 wt% NaCl溶液中的耐蚀性优于超高纯Mg和其他同类镁合金。超高的耐腐蚀性主要归因于三个关键因素。合金基体在电位方面相对均匀的组织是基本因素。该腐蚀膜具有良好的耐蚀性、钝化效果和自愈能力。在腐蚀膜中富集合金元素,形成起球贝德沃斯比为1 ~ 2的ZrO2、Gd2O3和ZnO有利于减少宏观缺陷,从而提高腐蚀膜的稳定性和致密性,这是另一个关键因素。非晶ZrO2在致密膜的快速形成中起着重要的作用。本研究更重要的发现是,该腐蚀膜在很大程度上具有非晶态特征,这可以避免晶界上的微观缺陷成为Cl-快速输运的通道,这是进一步降低合金腐蚀速率以实现超低腐蚀速率的第三个关键因素。我们的发现有望激发真正的不锈钢镁合金的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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