首页> 外文期刊>Metallurgical and Materials Transactions A >Densification, Microstructure, and Wear Property of In Situ Titanium Nitride-Reinforced Titanium Silicide Matrix Composites Prepared by a Novel Selective Laser Melting Process
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Densification, Microstructure, and Wear Property of In Situ Titanium Nitride-Reinforced Titanium Silicide Matrix Composites Prepared by a Novel Selective Laser Melting Process

机译:新型选择性激光熔融工艺制备的原位氮化钛增强钛硅化物基复合材料的致密化,微观结构和磨损性能

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摘要

This work presents the densification behavior, microstructural features, microhardness, and wear property of in situ TiN/Ti5Si3 composite parts prepared by a novel Selective Laser Melting (SLM) process. The occurrence of balling phenomenon at a low laser energy density combined with a high scan speed and the formation of thermal cracks at an excessive laser energy input generally decreased densification rate. The in situ-formed TiN reinforcing phase experienced a successive morphological change: an irregular polyangular shape—a refined near-round shape—a coarsened dendritic shape, as the applied laser energy density increased. The variations in liquid-solid wettability and intensity of Marangoni convection within laser molten pool accounted for the different growth mechanisms of TiN reinforcement. The TiN/Ti5Si3 composite parts prepared under the optimal SLM conditions had a near-full 97.7 pct theoretical density and a uniform microhardness distribution with a significantly increased average value of 1358.0HV0.3. The dry sliding wear tests revealed that a considerably low friction coefficient of 0.19 without any apparent fluctuation and a reduced wear rate of 6.84 × 10−5mm3/Nm were achieved. The enhanced wear resistance was attributed to the formation of adherent strain-hardened tribolayer covered on the worn surface.
机译:这项工作介绍了一种新型的选择性激光熔化(SLM)制备的原位TiN / Ti 5 Si 3 复合部件的致密化行为,显微组织特征,显微硬度和耐磨性。处理。在低激光能量密度下结合高扫描速度而产生的球形现象以及在过量激光能量输入下形成热裂纹通常会降低致密化率。原位形成的TiN增强相经历了连续的形态变化:随着所施加的激光能量密度的增加,不规则的多角形-细化的近圆形-粗化的树枝状形状。激光熔池内液固可湿性和Marangoni对流强度的变化解释了TiN增强的不同生长机理。在最佳SLM条件下制备的TiN / Ti 5 Si 3 复合零件的理论密度接近97.7 pct且显微硬度分布均匀,平均值显着增加。 1358.0HV 0.3 。干滑动磨损测试表明,摩擦系数仅为0.19,无明显波动,磨损率降低为6.84×10 -5 mm 3 / Nm。增强的耐磨性归因于覆盖在磨损表面上的粘附应变硬化摩擦层的形成。

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