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Microstructure and Mechanical Properties of TiC0.7N0.3-HfC-WC-Ni-Mo Cermet Tool Materials

机译:TiC0.7N0.3-HfC-WC-Ni-Mo金属陶瓷工具材料的组织与力学性能

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摘要

TiC0.7N0.3-HfC-WC-Ni-Mo cermet tool materials were fabricated by hot pressing technology at 1450 °C. The effects of WC (tungsten carbide) content on the microstructure and mechanical properties of TiC0.7N0.3-HfC-WC-Ni-Mo cermet tool materials were investigated. The results showed that the TiC0.7N0.3-HfC-WC-Ni-Mo cermets were mainly composed of TiC0.7N0.3, Ni, and (Ti, Hf, W, Mo)(C, N); there were three phases: a dark phase, a gray phase, and a light gray phase. The dark phase was the undissolved TiC0.7N0.3, the gray phase was the solid solution (Ti, Hf, W, Mo)(C, N) poor in Hf, W, and Mo, and the light gray phase was the solid solution (Ti, Hf, W, Mo)(C, N) rich in Hf, W, and Mo. The increase of WC content could promote the process of HfC to form a solid solution and the HfC formed a solid solution more easily with WC than with TiCN. The increase of the solid solution made the microstructure more uniform and the mechanical properties better. In addition, the Vickers hardness, flexural strength, and fracture toughness of the TiC0.7N0.3-HfC-WC-Ni-Mo cermet increased with the increase of WC content. When the content of WC was 32 wt %, the cermet obtained the optimal comprehensive mechanical properties in this investigation. The toughening mechanism of TiC0.7N0.3-HfC-WC-Ni-Mo cermet tool materials included solid solution toughening, particle dispersion toughening, crack bridging, and crack deflection.
机译:TiC0.7N0.3-HfC-WC-Ni-Mo金属陶瓷工具材料是在1450°C下通过热压技术制造的。研究了WC(碳化钨)含量对TiC0.7N0.3-HfC-WC-Ni-Mo金属陶瓷工具材料的组织和力学性能的影响。结果表明,TiC0.7N0.3-HfC-WC-Ni-Mo金属陶瓷主要由TiC0.7N0.3,Ni和(Ti,Hf,W,Mo)(C,N)组成。分为三个阶段:暗阶段,灰色阶段和浅灰色阶段。暗相是未溶解的TiC0.7N0.3,灰相是固溶体(Ti,Hf,W,Mo)(C,N),Hf,W和Mo贫乏,浅灰相是固体。溶液(Ti,Hf,W,Mo)(C,N)中富含Hf,W和Mo.WC含量的增加可以促进HfC形成固溶体的过程,而HfC则更容易形成固溶体WC比使用TiCN要好。固溶体的增加使微结构更均匀并且机械性能更好。另外,随着WC含量的增加,TiC0.7N0.3-HfC-WC-Ni-Mo金属陶瓷的维氏硬度,挠曲强度和断裂韧性均增加。当WC的含量为32wt%时,金属陶瓷在该研究中获得了最佳的综合机械性能。 TiC0.7N0.3-HfC-WC-Ni-Mo金属陶瓷工具材料的增韧机理包括固溶增韧,颗粒分散增韧,裂纹桥接和裂纹变形。

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