材料科学
硬质合金
微观结构
钴
断裂韧性
冶金
碳化物
维氏硬度试验
烧结
合金
粉末冶金
粒度
韧性
复合材料
作者
Xiaohui Yang,Kai‐Fei Wang,Guo–Hua Zhang,Kuo‐Chih Chou
摘要
Abstract WC‐Co cemented carbides with a low cobalt content (≤3 wt.%) were successfully manufactured by the powder metallurgy method. The cobalt content is lower than conventional cemented carbide (3–30 wt.%), which makes the prepared alloys possess excellent hardness. The effects of cobalt content on the densification behavior, phase composition, micromorphology, and mechanical performances of cemented carbides were investigated in detail. The results revealed that all the sintered alloys were almost completely consolidated with a relative density of greater than 98.0%. Moreover, abnormal grain growth was observed, and the inhomogeneity of WC grains decreased with the increment in cobalt content. In order to obtain cemented carbides with homogeneous microstructure and outstanding performances, VC was added to inhibit grain growth. Microstructure and performances were significantly affected by the addition of VC. The maximum Vickers hardness of cemented carbides without the addition of vanadium was 2234 HV30, while the fracture toughness was 7.96 MPa·m 1/2 after sintering WC‐2 wt.%Co. After adding VC, the ultimate hardness and fracture toughness of WC‐3 wt.%Co‐0.5 wt.%VC alloy could reach 2200 HV30 and 8.61 MPa·m 1/2 , respectively. In addition, the obvious crack deflexion and transgranular behavior can be noticed, which can prevent the extension of crack and achieve an increase in fracture toughness of cemented carbides.
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