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Influence of carbon content and sintering temperature on the green and sintered properties of cemented carbide tool grades

机译:碳含量和烧结温度对硬质合金刀具牌号的生坯和烧结性能的影响

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摘要

A research study was done on four different cemented carbide cutting tool grades, which had different Co contents and different compositions of additional carbides such as TiC, TaC, NbC, Cr3C2 and TiCN. The tool grades were manufactured using the powder metallurgy process. The aims of the research were to investigate how carbon content and sintering temperature influences the material properties, and if possible to select the optimum parameters to yield the best sintered properties for each tool grade. The chemical analysis of the starting and milled powders with three different C contents were done using X-ray Fluorescence (XRF) and Inductively Coupled Plasma- Optical Emission Spectroscopy (ICP-OES), with phase identification and morphology done using X-Ray Diffraction (XRD) and Scanning Electron Microscopy (SEM) analysis. The milled and dried powders were pressed and sintered at three different sintering temperatures. Microstructural characterization of the sintered alloys included phase analysis, and measurement of the WC grain size, WC contiguity and Co binder mean free path. The hardness, toughness, coercivity, density, porosity and magnetic cobalt was determined using relevant standards. In general, as the C content increased, graphite formed in the alloys which resulted in lower hardness and toughness. The hardnesses of the different grades were affected in different ways and were dependent on the level of mixed carbides added and the Co content. It was also clear that as the Co content increased with the increase in C level, the hardness of the alloys decreased. The density for all the alloys decreased with an increase in C content. The porosity for all the alloys increased with an increase in C content. As the sintering temperature increased grain growth increased. However, with the addition of Cr3C2, which is a grain growth inhibitor, some alloys could be sintered at higher temperatures with limited grain growth. For all four tool grades the best material properties were obtained with the stoichiometric C content. With respect to sintering temperature, two grades showed the best properties at 1430°C while the other two grades had their best properties at 1510°C.
机译:对四种不同硬质合金刀具等级进行了研究,这些牌号具有不同的Co含量和不同的其他硬质合金成分,例如TiC,TaC,NbC,Cr3C2和TiCN。工具等级是使用粉末冶金工艺制造的。该研究的目的是研究碳含量和烧结温度如何影响材料性能,并在可能的情况下选择最佳参数,以使每种工具等级获得最佳烧结性能。使用X射线荧光(XRF)和电感耦合等离子体发射光谱(ICP-OES)对具有三种不同C含量的起始粉和研磨粉进行化学分析,并使用X射线衍射( XRD)和扫描电子显微镜(SEM)分析。将经研磨和干燥的粉末在三种不同的烧结温度下压制和烧结。烧结合金的微观结构表征包括相分析,以及WC粒度,WC连续性和Co粘结剂平均自由程的测量。使用相关标准确定硬度,韧性,矫顽力,密度,孔隙率和磁性钴。通常,随着C含量的增加,在合金中形成石墨,这导致较低的硬度和韧性。不同等级的硬度以不同的方式受到影响,并且取决于所添加的混合碳化物的含量和Co的含量。还清楚的是,随着Co含量随着C含量的增加而增加,合金的硬度降低。随着C含量的增加,所有合金的密度均降低。所有合金的孔隙率都随着C含量的增加而增加。随着烧结温度的升高,晶粒的生长增加。但是,通过添加Cr3C2(一种晶粒长大抑制剂),可以在更高的温度下烧结有限的晶粒长大,从而烧结某些合金。对于所有四个工具等级,化学计量的C含量均获得了最佳的材料性能。关于烧结温度,两个等级在1430℃下表现出最佳性能,而另外两个等级在1510℃下表现出最佳性能。

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