The effects of TiN nanoparticle incorporation on the microstructure and wear resistance of additively manufactured CoCrMoW alloys

Canjuan Xiao , Wenting Jiang , Yi Huang , Song Ni
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Abstract

To enhance the wear resistance of CoCrMoW alloys, this study used laser powder bed fusion (LPBF) to fabricate TiN nanoparticle-incorporated composites. By conducting microstructure characterization and wear resistance testing, the intricate relationship between microstructure and wear behavior was elucidated. The LPBF-fabricated samples presented dual-phase structures comprising face-centered cubic and hexagonal close-packed phases along with numerous stacking faults. The TiN particles were uniformly distributed in the sample with a 1 wt% addition. However, as the additive content increased, the TiN particles grew, and the interparticle spacing correspondingly decreased. Notably, robust interfacial bonding existed between the TiN nanoparticles and the matrix material. The interface between the TiN particles and the matrix displayed a semicoherent nature characterized by a specific orientation relationship: [001] TiN//[011]γ and (020)TiN//(111)γ. Compared to the nonincorporated sample, the incorporated samples demonstrated reduced friction coefficients and wear rates. A comparative analysis of the nonincorporated and incorporated samples’ wear behaviors revealed that oxidation wear predominantly characterized the nonincorporated sample, which displayed significant plastic deformation along with fragmented debris and loose oxides. In contrast, the incorporated samples presented relatively smooth wear surfaces where abrasive wear emerged as the primary mechanism. These findings underscore enhancements in tribological properties due to TiN incorporation and offer valuable insights into its fundamental behavior during wear.

Abstract Image

TiN纳米颗粒掺入对CoCrMoW合金组织和耐磨性的影响
为了提高CoCrMoW合金的耐磨性,本研究采用激光粉末床熔合(LPBF)法制备了TiN纳米复合材料。通过组织表征和耐磨性测试,阐明了组织与磨损行为之间的复杂关系。lpbf制备的样品呈现面心立方相和六边形密排相的双相结构,并伴有大量的层错。添加1 wt%的TiN颗粒均匀分布在样品中。随着添加剂含量的增加,TiN颗粒增大,颗粒间距相应减小。值得注意的是,TiN纳米颗粒与基体材料之间存在牢固的界面键合。TiN颗粒与基体之间的界面呈现半相干性质,具有特定的取向关系:[001]TiN//[011]γ和(020)TiN//(111)γ。与未掺入样品相比,掺入样品的摩擦系数和磨损率都有所降低。对比分析了未掺入和掺入试样的磨损行为,发现未掺入试样的主要特征是氧化磨损,表现出明显的塑性变形以及碎片和松散的氧化物。相比之下,掺入样品呈现出相对光滑的磨损表面,其中磨粒磨损作为主要机制出现。这些发现强调了由于TiN的加入而增强的摩擦学性能,并为其在磨损过程中的基本行为提供了有价值的见解。
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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