首页> 外文期刊>Calphad: Computer Coupling of Phase Diagrams and Thermochemistry >Optimization of the mechanical properties of ultra-fine WC-Co-Cr3C2 cemented carbides via an approach based on thermodynamic calculations and characterization of the experimental results by the Weibull distribution
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Optimization of the mechanical properties of ultra-fine WC-Co-Cr3C2 cemented carbides via an approach based on thermodynamic calculations and characterization of the experimental results by the Weibull distribution

机译:通过基于热力学计算的方法优化超细WC-CO-CR3C2粘合碳化物的机械性能,并通过Weibull分布表征实验结果

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摘要

The influence of sintering temperature on the grain distribution, mechanical properties and fracture probability of WC-10 wt% Co-Cr3C2 cemented carbide was studied. Based on thermodynamic calculations, the complete liquefaction temperature of the WC-10 wt% Co-Cr3C2 cemented carbides shows a descend trend with the increase of Cr content. The addition of 0.5 wt% Cr decreases the complete liquefaction temperature of the WC-10 wt% Co cemented carbides from about 1360 degrees C to 1310 degrees C, the sintering temperature were defined starting from this result and adding 30, 50 and 80 degrees C. For comparison, an industrial production sintering temperature of 1410 degrees C is also used. Compared with four sintering schedules, WC-10 wt%Co-0.5 wt% Cr cemented carbides has more uniform grain size and better mechanical properties at sintering temperature for 1360 degrees C. In addition, the fracture probability of WC-10 wt%Co-0.5 wt% Cr cemented carbides is improved at sintering temperature for 1360 degrees C. An appropriate sintering temperature can be established by thermodynamic calculations, which enables effectively control of grain size and mechanical properties.
机译:研究了烧结温度对WC-10wt%CO-CR3C2硬质合金的晶粒分布,机械性能和断裂概率的影响。基于热力学计算,WC-10wt%CO-CR3C2硬质合金的完全液化温度显示CR含量增加的下降趋势。添加0.5wt%Cr从约1360℃至1310℃降低WC-10wt%Co硬质碳化物的完全液化温度,从该结果开始定义烧结温度并加入30,50和80℃ 。相比之下,还使用1410℃的工业生产烧结温度。与四种烧结调度相比,WC-10wt%CO-0.5wt%Cr硬质碳化物在烧结温度下具有更均匀的粒度和更好的机械性能,烧结温度为1360℃。此外,WC-10wt%的裂缝概率在烧结温度下,0.5wt%Cr碳化物在烧结温度下提高1360℃。可以通过热力学计算建立适当的烧结温度,这使得能够有效地控制晶粒尺寸和机械性能。

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