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首页> 外文期刊>CERAMICS INTERNATIONAL >Influence of Y2O3 on the microstructure and tribological properties of Ti-based wear-resistant laser-clad layers on TC4 alloy
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Influence of Y2O3 on the microstructure and tribological properties of Ti-based wear-resistant laser-clad layers on TC4 alloy

机译:Y2O3对TI4合金Ti基耐磨激光覆层的微观结构和摩擦学性能的影响

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摘要

Multi-track Ti-based wear-resistant composite coatings were fabricated on TC4 alloy surfaces using laser-clad TC4 + Ni45 + Co-WC mixed powders with different Y2O3 contents (0, 1, and 3 wt%). The microstructure, microhardness, and tribological properties of the coatings were characterised using X-ray diffraction, scanning electron microscopy, energy dispersive spectrometry, electron probe X-ray micro analyser, microhardness tester, and friction and wear testing apparatus. The results showed that the number of cracks on the coating surfaces gradually decreased with the addition of Y2O3 and that residual Co-WC powders existed in the coating subsurfaces. The phase composition of the coatings with different Y2O3 contents remained unchanged and was mainly composed of reinforcing phases of TiC, TiB2, Ti2Ni, and matrix alpha-Ti. With the addition of Y2O3, the coating microstructure was remarkably refined, the direction characteristic of the TiC dendrites obviously weakened, and the nucleation rate significantly increased. When the added Y2O3 was 3 wt%, a large amount of TiB2-TiC-dependent growth composite phases precipitated in the coating. The two-dimensional lattice misfit between (0001)(TiB2) and (111)(TiC) was 0.912%, which indicated that TiB2 and TiC formed a coherent interface. When the amount of Y(2)O(3)( )was increased, the microhardness of the coatings gradually decreased, and the wear volume of the coatings first increased and then decreased. Under the effect of the TiB2-TiC composite phases, the wear resistance of the 3 wt% Y2O3 coating was optimal. The 3 wt% Y2O3 coating friction coefficient was the lowest, and the wear mechanism was abrasive wear.
机译:使用具有不同Y2O3含量(0,1和3wt%)的激光覆盖TC4 + Ni45 + Co-WC混合粉末在TC4合金表面上制造多轨Ti基耐磨复合涂层。使用X射线衍射,扫描电子显微镜,能量分散光谱,电子探针X射线微分析仪,微硬度测试仪和摩擦和磨损试验装置,表征涂层的微观结构,微硬度和摩擦学性质。结果表明,涂​​层表面上的裂缝数随着Y2O3的添加逐渐降低,并且在涂层地区中存在残留的CO-WC粉末。具有不同Y2O3内容物的涂层的相组合物保持不变,主要由TIC,TIB2,TI2NI和基质α-TI的增强相组成。随着Y2O3的加入,涂层微观结构显着精制,TiC树突的方向特征明显削弱,成核速率显着增加。当添加的Y 2 O 3为3wt%时,在涂层中沉淀出大量的TIB2-TIC依赖性生长复合相。 (0001)(TIB2)和(111)(TIC)之间的二维晶格不足为0.912%,表明TIB2和TIC形成相干界面。当y(2)o(3)()的量增加时,涂层的微硬度逐渐降低,并且涂层的磨损体积首先增加,然后减少。在TIB2-TIC复合阶段的影响下,3wt%Y2O3涂层的耐磨性是最佳的。 3wt%Y2O3涂层摩擦系数是最低的,磨损机构磨损。

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