Achieving excellent wear resistance in NbTiTa medium-entropy alloy self-lubricating composites at high-temperature via nano-Al2O3 reinforcement

IF 11.2 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Kaixuan Yu, Qianqian Cheng, Jun Cheng, Yushan Geng, Shengyu Zhu, Kaifeng Zhang, Shanhong Wan, Jun Yang
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引用次数: 0

Abstract

Refractory high-entropy/medium-entropy alloys (RHEAs/RMEAs) demonstrate excellent thermal stability and mechanical properties at elevated temperatures. However, under high-temperature non-inert tribological conditions, the differences in oxidation activity among the constituent elements lead to instability at the sliding interface, thereby affecting the wear resistance of the material. In this work, we report a novel strategy to achieve low wear rates in NbTiTa self-lubricating composites by in situ formation of a nanocrystalline-amorphous composite layer and phase boundary transformation of Al2O3 nanoparticles. During high-temperature friction, the complex composition (NbTiTa, Al2O3, Ag, and CaF2/BaF2 eutectics) and the high-density grain boundary of the composites promote the formation of oxide glazes on the sliding surface. An amorphous (NbTiTa-O)-nanocrystalline tribo-layer of approximately 2.1 μm thick is formed at 600°C, exhibiting a microhardness of approximately 15.8 ± 1.6 GPa and remarkable resistance to plastic deformation. Furthermore, the incompatible deformation between the NbTiTa alloy and Al2O3 during friction induces the interphase boundary transition from an incoherent to an amorphous structure. This interfacial transformation effectively absorbs the strain energy of the alloy during friction and inhibits crack nucleation. Consequently, the designed NbTiTa self-lubricating composite maintains an exceptionally low wear rate (10−7–10−6 mm3 N−1 m−1) at 600 and 800°C. Therefore, this study provides a universally applicable strategy and valuable insights for the design of high-temperature wear-resistant self-lubricating composites.

Abstract Image

通过纳米al2o3增强NbTiTa中熵合金自润滑复合材料获得优异的高温耐磨性
耐火高熵/中熵合金(RHEAs/RMEAs)在高温下表现出优异的热稳定性和机械性能。然而,在高温非惰性摩擦学条件下,组成元素之间氧化活性的差异导致滑动界面处不稳定,从而影响材料的耐磨性。在这项工作中,我们报告了一种新的策略,通过原位形成纳米晶-非晶复合层和Al2O3纳米颗粒的相边界转变来实现NbTiTa自润滑复合材料的低磨损率。在高温摩擦过程中,复合材料的复合成分(NbTiTa、Al2O3、Ag和CaF2/BaF2共晶)和高密度的晶界促进了滑动表面氧化釉的形成。在600℃下形成厚度约为2.1 μm的非晶(nbti - o)纳米晶摩擦层,其显微硬度约为15.8±1.6 GPa,具有良好的抗塑性变形能力。此外,摩擦过程中NbTiTa合金与Al2O3之间的不相容变形导致了相界面由非共格组织向非晶态组织的转变。这种界面转变有效地吸收了摩擦过程中合金的应变能,抑制了裂纹的形核。因此,设计的NbTiTa自润滑复合材料在600°C和800°C时保持极低的磨损率(10−7-10−6 mm3 N−1 m−1)。因此,本研究为高温耐磨自润滑复合材料的设计提供了一种普遍适用的策略和有价值的见解。
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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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