Grain size effect on tribocorrosion kinetics in ultrahigh-purity magnesium

IF 11.2 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Materials Science & Technology Pub Date : 2024-09-07 DOI:10.1016/j.jmst.2024.08.024
Yue Xiang, Yaping Zhang, Yong Li, Fei Liang, Yan Lin, Chen Liu, Ming Lou, Keke Chang, Yuntian Zhu, Xiang Chen
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Abstract

Tribocorrosion readily removes the protective corrosion product, creates new reactive corrosion sites and thus accelerates material loss in metallic materials. This is evidenced by a pronounced or gradual decline in open circuit potential (OCP) during tribocorrosion assessments. Here we report that grain refinement can not only enhance wear resistance in dry conditions, but also induce an anomalously stable OCP variation and fortify tribocorrosion resistance in ultrahigh-purity magnesium during tribocorrosion. The tribocorrosion tests revealed that the fine-grained Mg (FG-Mg) sample exhibited a wear rate (4.56 × 10−4 mm3/Nm) approximately half that of the coarse-grained Mg (CG-Mg) sample (7.87 × 10−4 mm3/Nm). CG-Mg showed a gradual OCP decrease, associated with a thin, unprotective tribocorrosion layer, even thinner than that resulting from dry sliding. Conversely, FG-Mg exhibited stable OCP evolution and quasi-linear tribocorrosion kinetics over time, attributed to a thick, protective tribocorrosion layer. Transmission electron microscopy data suggest that high-diffusivity pathways for oxygen along grain boundaries at the early tribocorrosion stages facilitate the formation of a continuous, protective MgO layer and an adjacent oxidized layer with a depth-dependent oxygen content gradient, enhancing tribocorrosion resistance in FG-Mg. Our findings offer valuable insights for strategically tailoring tribocorrosion resistance by modulating the OCP variation of highly active metals and alloys.

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晶粒尺寸对超高纯镁摩擦腐蚀动力学的影响
摩擦腐蚀很容易去除保护性腐蚀产物,产生新的反应性腐蚀点,从而加速金属材料的材料损耗。在摩擦磨损评估过程中,开路电位(OCP)的明显或逐渐下降就证明了这一点。在此,我们报告了晶粒细化不仅能增强干燥条件下的耐磨性,还能诱发异常稳定的 OCP 变化,并增强超高纯镁在摩擦腐蚀过程中的耐摩擦腐蚀性。摩擦腐蚀试验表明,细粒度镁(FG-Mg)样品的磨损率(4.56 × 10-4 mm3/Nm)约为粗粒度镁(CG-Mg)样品(7.87 × 10-4 mm3/Nm)的一半。CG-Mg 的 OCP 值逐渐下降,与薄而无保护的摩擦腐蚀层有关,甚至比干滑动产生的腐蚀层还要薄。相反,随着时间的推移,FG-Mg 表现出稳定的 OCP 演变和准线性摩擦磨损动力学,这归因于厚的摩擦磨损保护层。透射电子显微镜数据表明,在摩擦生锈的早期阶段,沿晶界的高扩散性氧气通道有助于形成连续的保护性氧化镁层和邻近的氧化层,氧化层的氧含量梯度取决于深度,从而增强了 FG-Mg 的抗摩擦生锈能力。我们的研究结果为通过调节高活性金属和合金的 OCP 变化战略性地定制耐摩擦腐蚀性提供了宝贵的见解。
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来源期刊
Journal of Materials Science & Technology
Journal of Materials Science & Technology 工程技术-材料科学:综合
CiteScore
20.00
自引率
11.00%
发文量
995
审稿时长
13 days
期刊介绍: Journal of Materials Science & Technology strives to promote global collaboration in the field of materials science and technology. It primarily publishes original research papers, invited review articles, letters, research notes, and summaries of scientific achievements. The journal covers a wide range of materials science and technology topics, including metallic materials, inorganic nonmetallic materials, and composite materials.
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