Sliding wear-induced compositional lamination in a VCoNi alloy at elevated temperatures, and its implications for reduced friction and wear

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Acta Materialia Pub Date : 2024-07-10 DOI:10.1016/j.actamat.2024.120171
Chengxia Wei , Lu Yang , Ranxi Duan, Kangjie Chu, Fuzeng Ren
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Abstract

During tribological loading of metallic alloys at elevated temperatures, the thermo-mechanical coupling effect can lead to the development of a distinct tribolayer, profoundly influencing their tribological behavior. This study reports on the compositional lamination in the tribolayer during dry sliding wear of a VCoNi multi-principal element alloy at elevated temperatures. As the temperature increases from 25 °C to 600 °C, the alloy exhibits a remarkable 40% reduction in the coefficient of friction and a notable two-order-of-magnitude decrease in wear rate. The compositional lamination at 600 °C reveals a distinct tribolayer comprising a nanocrystalline-amorphous oxide glaze layer, a Ni-rich dealloyed layer, and a plastic deformation layer. Within the oxide glaze layer, three sublayers are identified, each featuring a nanocrystalline-amorphous nanocomposite structure with unique equiaxed nanograins. Specifically, the outermost sublayer comprises Co3O4, the intermediate sublayer contains a mixture of Co3O4 and Ni2V2O7, and the inner sublayer consists of V2O5. This multilayered structure is attributed to significant differences in the chemical affinity for oxygen among the constituent elements and their respective diffusion rates in the oxide scale. Significantly, the tribolayer formed at 600 °C exhibits a remarkable 70% increase in yield strength compared to its formation at 25 °C, correlating with a substantial reduction in wear. These findings present a novel avenue for designing self-adaptive, high-temperature wear-resistant alloys through the in-situ formation of a protective compositionally-laminated tribolayer.

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高温下 VCoNi 合金中滑动磨损引起的成分层压及其对减少摩擦和磨损的影响
金属合金在高温下进行摩擦加载时,热机械耦合效应会导致形成独特的摩擦层,从而对其摩擦学行为产生深远影响。本研究报告了钴镍多主元素合金在高温下干式滑动磨损过程中摩擦层的成分层状结构。当温度从 25 °C 升至 600 °C 时,合金的摩擦系数显著降低了 40%,磨损率也明显降低了两个数量级。600 °C时的成分分层显示了一个独特的摩擦层,由纳米晶-非晶氧化物釉层、富镍合金层和塑性变形层组成。在氧化物釉层中,可识别出三个子层,每个子层都具有独特的等轴纳米晶粒的纳米晶-非晶纳米复合结构。具体来说,最外层由 Co3O4 组成,中间层包含 Co3O4 和 Ni2V2O7 的混合物,内层由 V2O5 组成。这种多层结构是由于各组成元素对氧的化学亲和力和各自在氧化物尺度中的扩散速度存在显著差异。值得注意的是,与在 25 °C 下形成的摩擦层相比,在 600 °C 下形成的摩擦层的屈服强度显著提高了 70%,这与磨损的大幅减少有关。这些发现为设计自适应高温耐磨合金提供了一条新途径,即在原位形成成分层状保护摩擦层。
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来源期刊
Acta Materialia
Acta Materialia 工程技术-材料科学:综合
CiteScore
16.10
自引率
8.50%
发文量
801
审稿时长
53 days
期刊介绍: Acta Materialia serves as a platform for publishing full-length, original papers and commissioned overviews that contribute to a profound understanding of the correlation between the processing, structure, and properties of inorganic materials. The journal seeks papers with high impact potential or those that significantly propel the field forward. The scope includes the atomic and molecular arrangements, chemical and electronic structures, and microstructure of materials, focusing on their mechanical or functional behavior across all length scales, including nanostructures.
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