Jing Yi, Yuan Hongbing, Lian Zisheng
College of Mechanical Engineering, Taiyuan University of Technology, Taiyuan 030024, China.
Shanxi Key Laboratory of Fully Mechanized Coal Mining Equipment, Taiyuan 030024, China.
Materials (Basel). 2018 Oct 20;11(10):2046. doi: 10.3390/ma11102046.
ZrB₂⁻HfC ceramics have been fabricated using the liquid phase sintering technique at a sintering temperature as low as 1750 °C through the addition of Ni. The effects of HfC addition on the microstructure and mechanical properties of ZrB₂⁻based ceramics have been investigated. These ceramics were composed of ZrB₂, HfC, Ni, and a small amount of possible (Zr, Hf)B₂ solid solution. Small HfC grains were distributed among ZrB₂ grain boundaries. These small grains could improve the density of ZrB₂⁻based ceramics and play a pinning role. With HfC content increasing from 10 wt % to 30 wt %, more HfC grains were distributed among ZrB₂ grain boundaries, leading to weaker interface bonding among HfC grains; the relative density and Vickers hardness increased, and flexural strength and fracture toughness decreased. The weak interface bonding for 20 and 30 wt % HfC contents was the main cause of the decrease in both flexural strength and fracture toughness.
通过添加镍,采用液相烧结技术在低至1750℃的烧结温度下制备了ZrB₂-HfC陶瓷。研究了添加HfC对ZrB₂基陶瓷微观结构和力学性能的影响。这些陶瓷由ZrB₂、HfC、Ni和少量可能的(Zr, Hf)B₂固溶体组成。细小的HfC晶粒分布在ZrB₂晶界之间。这些小晶粒可以提高ZrB₂基陶瓷的密度并起到钉扎作用。随着HfC含量从10 wt%增加到30 wt%,更多的HfC晶粒分布在ZrB₂晶界之间,导致HfC晶粒之间的界面结合变弱;相对密度和维氏硬度增加,而抗弯强度和断裂韧性降低。20 wt%和30 wt% HfC含量下的弱界面结合是抗弯强度和断裂韧性下降的主要原因。