Lang Shaoting, Sun Ningbo, Cao Junhui, Yu Weixin, Yang Zhijun, Hou Shusen
School of Mechanical and Electrical Engineering, Xinxiang University, Xinxiang 453000, China.
Foshan Institute for New Materials, Foshan 528200, China.
Materials (Basel). 2021 Oct 7;14(19):5865. doi: 10.3390/ma14195865.
In this paper, a simple method to fulfill the ideal microstructural design of particle reinforced tungsten (W) alloys with promising mechanical properties is presented. W-0.5 wt.% TiC powders with core-shell (TiC/W) structure are prepared by ball-milling and controlled hydrogen reduction processes. TEM observation demonstrates that the nano TiC particles are well coated by tungsten. The W-TiC powders are sintered by spark plasma sintering (SPS) under 1600 °C. The sintered microstructures are characterized by FESEM and TEM. It is found that the W-0.5TiC alloys obtain an ultra-fine-sized tungsten grain of approximately 0.7 μm. The TiC particles with the original nano sizes are uniformly distributed both in tungsten grain interiors and at tungsten grain boundaries with a high number density. No large agglomerates of TiC particles are detected in the microstructure. The average diameter of the TiC particles in the tungsten matrix is approximately 47.1 nm. The mechanical tests of W-0.5 TiC alloy show a significantly high microhardness and bending fracture strength of 785 Hv and 1132.7 MPa, respectively, which are higher than the values obtained in previous works. These results indicate that the methods used in our work are very promising to fabricate particle-dispersion-strengthened tungsten-based alloys with high performances.
本文提出了一种简单的方法,以实现具有良好力学性能的颗粒增强钨(W)合金的理想微观结构设计。通过球磨和可控氢还原工艺制备了具有核壳结构(TiC/W)的W-0.5 wt.% TiC粉末。透射电子显微镜(TEM)观察表明,纳米TiC颗粒被钨很好地包覆。W-TiC粉末在1600 °C下通过放电等离子烧结(SPS)进行烧结。通过场发射扫描电子显微镜(FESEM)和透射电子显微镜(TEM)对烧结后的微观结构进行了表征。结果发现,W-0.5TiC合金获得了尺寸约为0.7 μm的超细钨晶粒。原始纳米尺寸的TiC颗粒以高密度均匀分布在钨晶粒内部和钨晶界处。在微观结构中未检测到TiC颗粒的大团聚体。钨基体中TiC颗粒的平均直径约为47.1 nm。W-0.5 TiC合金的力学测试表明,其显微硬度和弯曲断裂强度分别高达785 Hv和1132.7 MPa,高于先前工作中获得的值。这些结果表明,我们工作中使用的方法对于制备具有高性能的颗粒弥散强化钨基合金非常有前景。