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Microstructure and properties of selected WC-cemented carbides manufactured by SPS method

机译:通过SPS方法制造的精选WC硬质合金的组织和性能

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摘要

The effects of spark plasma sintering (SPS), WC starting particle size (0.1-0.8 μm), NbC, TiC and Mo2C additions on the microstructure and mechanical properties of WC-Co and WC-Ni alloys were investigated. Spark plasma sintering has the main advantage of very high degrees of densification obtainable at low temperatures within short sintering times, preventing Ostwald ripening. Spark plasma sintered WC-0.5Cr3C2-10Co (wt%) and WC-9.3Ni (wt%) samples had finer WC grains with poorly distributed binder pools than similar liquid phase sintered (LPS) samples, resulting in higher hardness, lower fracture toughness (K1C) and transverse rupture strength (TRS). Although the SPS samples had smaller WC grains than the LPS samples, WC grains of up to 1μm occurred in the nano and ultrafine grades, due to coalescence of fine particles. High NbC additions (≥20 wt%) to WC-10Co (wt%) reduced the WC grain size, hardness, K1C, TRS and modulus of elasticity in all grades. The poor mechanical properties were attributed to the reduction of WC volume fraction, formation of the (Nb,W) solid solution and poor wetting of NbC by Co. Additions of 6.25 wt% TiC and 0.5-5 wt% Mo2C to the WC-9.3Ni (wt%) nano and ultrafine samples gave the finest WC grain sizes, due to good grain growth inhibition. Molybdenum carbide also improved the Ni binder distribution due to better wetting of WC by the Ni. The refined microstructure and improved Ni binder distribution, together with reduced binder amount (7 wt%) gave >20 GPa hardness, slight reduction in K1C, good modulus of elasticity and lower TRS.udThe abrasion wear resistance increased with reduced WC grain size and binder amount, explaining the significantly higher abrasion resistance of the SPS WC-5Mo2C-6.25TiC-7Ni (wt%) ultrafine and nano grades than the LPS samples. The LPS WC-9.3Ni sample, had higher abrasion wear resistance than the LPS WC-0.5Cr3C2-10Co (wt%) sample, because of the slightly lower binder content and the Ni binder’s better wear properties. The LPS samples had the highest thermal shock and impact resistance (higher TRS and K1C). The WC-0.5Cr3C2-5NbC-10Co (wt%) sample had a good hardness, from SPS and the addition of NbC and Cr3C2 grain growth inhibitors, as well as good K1C and TRS, from its high binder amount and good wetting of WC by Co. These resulted in a good combination of abrasion wear, thermal shock and impact resistance in the WC-0.5Cr3C2-5NbC-10Co (wt%) sample. The WC-5Mo2C-6.25TiC-7Ni (wt%) ultrafine grade sample had the lowest thermal shock and impact resistance because of its poor K1C and TRS.
机译:研究了火花等离子体烧结(SPS),WC起始粒径(0.1-0.8μm),NbC,TiC和Mo2C添加量对WC-Co和WC-Ni合金的组织和力学性能的影响。火花等离子体烧结的主要优点是,在短时间内烧结,可以在低温下获得很高的致密化程度,从而防止奥斯特瓦尔德熟化。与类似的液相烧结(LPS)样品相比,火花等离子体烧结的WC-0.5Cr3C2-10Co(wt%)和WC-9.3Ni(wt%)样品具有更细的WC晶粒,且粘结剂池分布较差,从而导致更高的硬度和更低的断裂韧性(K1C)和横向断裂强度(TRS)。尽管SPS样品的WC晶粒比LPS样品小,但由于细小颗粒的聚结,在纳米级和超细级中出现了高达1μm的WC晶粒。 WC-10Co(wt%)中大量添加NbC(≥20wt%)降低了所有等级的WC晶粒尺寸,硬度,K1C,TRS和弹性模量。较差的机械性能归因于WC体积分数的降低,(Nb,W)固溶体的形成以及Co对NbC的润湿性较差。在WC-9.3中添加了6.25 wt%的TiC和0.5-5 wt%的Mo2C由于良好的晶粒生长抑制作用,Ni(wt%)纳米和超细样品给出了最佳的WC晶粒尺寸。由于Ni更好地润湿了WC,碳化钼还改善了Ni粘结剂的分布。细化的微观结构和改善的Ni粘结剂分布,以及减少的粘结剂量(7 wt%)使硬度> 20 GPa,K1C略有降低,弹性模量和TRS降低。 ud耐磨性随WC晶粒尺寸和粘合剂含量,可以解释SPS WC-5Mo2C-6.25TiC-7Ni(wt%)超细和纳米级的耐磨性比LPS样品高得多。 LPS WC-9.3Ni样品比LPS WC-0.5Cr3C2-10Co(wt%)样品具有更高的耐磨性,这是因为粘合剂含量略低,并且Ni粘合剂具有更好的耐磨性。 LPS样品具有最高的抗热震性和抗冲击性(较高的TRS和K1C)。 WC-0.5Cr3C2-5NbC-10Co(wt%)样品具有较高的硬度,这是由于SPS以及添加的NbC和Cr3C2晶粒长大抑制剂,以及良好的K1C和TRS,其原因是其高粘合剂含量和WC的良好润湿性在WC-0.5Cr3C2-5NbC-10Co(wt%)样品中,这些特性将磨损,热冲击和抗冲击性很好地结合在一起。 WC-5Mo2C-6.25TiC-7Ni(wt%)超细级样品由于其差的K1C和TRS而具有最低的热冲击和抗冲击性。

著录项

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    Genga Rodney Michael;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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