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TiC含量对间接金属3D打印制备的17-4PH不锈钢复合材料微观结构及磨损性能的影响

Effect of TiC Content on Microstructure and Wear Performance of 17-4PH Stainless Steel Composites Manufactured by Indirect Metal 3D Printing.

作者信息

Huang Xiao, Mei Shuo, Li Yazhi, Li Mingyang, Zhou Shujun, Shang Hongfei

机构信息

School of Mechanical and Electrical Engineering, China University of Mining and Technology (Beijing), Beijing 100083, China.

State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China.

出版信息

Materials (Basel). 2023 Sep 28;16(19):6449. doi: 10.3390/ma16196449.

Abstract

In order to improve the performance of 17-4PH under wear conditions (e.g., gears, etc.) and reduce the cost of metal additive manufacturing, TiC needs to be added to 17-4PH to improve its wear resistance. Micron-sized TiC-reinforced 17-4PH stainless steel composites with different contents (0-15 wt%) have been prepared by fused filament fabrication 3D printing for the first time. The effects of TiC content on the structure and properties of composites were studied by XRD, SEM, and sliding wear. The obtained results show that the microstructure of TiC-reinforced 17-4PH stainless steel composites mainly consists of austenite. With the increase in TiC content, the grain size is obviously refined, and the average grain size decreases from 65.58 μm to 19.41 μm. The relative densities of the composites are maintained above 95% with the addition of TiC. The interfaces between TiC particles and the 17-4PH matrix are metallurgical bonds. The hardness of the composites increases and then decreases with increasing TiC content, and the maximum hardness (434 HV) is obtained after adding 10 wt.% of TiC content. The wear rate of the composites was reduced from 2.191 × 10 mm /(N‧m) to 0.509 × 10 mm /(N‧m), which is a 3.3-fold increase in wear resistance. The COF value declines with the addition of TiC. The reasons for the significant improvement in the composites' performance are fine grain strengthening, solid solution strengthening, and second phase strengthening. The wear mechanisms are mainly abrasive and adhesive wear. Compared to the 10 wt% TiC composites, the 15 wt% TiC composites show limited improvement in wear resistance due to more microcracks and TiC agglomeration.

摘要

为了提高17-4PH在磨损条件下(如齿轮等)的性能并降低金属增材制造的成本,需要向17-4PH中添加TiC以提高其耐磨性。首次通过熔丝制造3D打印制备了不同含量(0-15 wt%)的微米级TiC增强17-4PH不锈钢复合材料。通过XRD、SEM和滑动磨损研究了TiC含量对复合材料组织和性能的影响。结果表明,TiC增强17-4PH不锈钢复合材料的微观组织主要由奥氏体组成。随着TiC含量的增加,晶粒尺寸明显细化,平均晶粒尺寸从65.58μm减小到19.41μm。添加TiC后复合材料的相对密度保持在95%以上。TiC颗粒与17-4PH基体之间的界面为冶金结合。复合材料的硬度随TiC含量的增加先增大后减小,在添加10 wt.%TiC含量后获得最大硬度(434 HV)。复合材料的磨损率从2.191×10⁻⁶mm³/(N‧m)降低到0.509×10⁻⁶mm³/(N‧m),耐磨性提高了3.3倍。COF值随TiC的添加而下降。复合材料性能显著提高的原因是细晶强化、固溶强化和第二相强化。磨损机制主要是磨粒磨损和粘着磨损。与10 wt%TiC复合材料相比,15 wt%TiC复合材料由于更多的微裂纹和TiC团聚,其耐磨性的提高有限。

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