材料科学
放电等离子烧结
碳化钨
微观结构
烧结
活化能
陶瓷
断裂韧性
钨
复合材料
晶界
碳化物
石墨
晶界扩散系数
碳纤维
冶金
复合数
有机化学
化学
作者
Е. А. Ланцев,П. В. Андреев,А. В. Нохрин,М. С. Болдин,A. A. Murashov,Г. В. Щербак,К. Е. Сметанина,В. Н. Чувильдеев,Yuriy Blagoveshchenskiy,Nataliya Isaeva,N. Yu. Tabachkova
标识
DOI:10.20944/preprints202305.1015.v1
摘要
This paper investigates the density, phase composition, microstructure and mechanical properties (microhardness, fracture toughness) of binderless WC + SiC ceramics obtained by conventional pressureless sintering (CPS) and Spark Plasma Sintering (SPS). α-WC nanopowders obtained by DC arc plasma chemical synthesis and β-SiC powders have been used as raw materials. The content of SiC particles was 1, 3, 5% wt. Excess graphite (0.3, 0.5% wt.) was added to α-WC nanopowders to decrease the volume fraction of W2C particles that negatively affect the mechanical properties of ceramics. WC + 1% wt. SiC + 0.3% wt. C ceramics are shown to have a homogeneous fine-grained microstructure, high relative density, increased microhardness and Palmquist fracture toughness. The CPS and SPS activation energies of WC + SiC nanopowders at an intensive shrinkage stage are determined using the Young-Cutler model. The effect of carbon and SiC particles on the CPS and SPS activation energies of tungsten carbide nanopowders has been analyzed. The CPS activation energies of WC, WC + C and WC + SiC + C nanopowders are shown to be closer to the carbon diffusion activation energy along α-WC grain boundaries. The SPS activation energies of WC and WC + SiC nanopowders turn out to be lower than the carbon grain boundary diffusion activation energy of α-WC.
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