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Densification, microstructure and tribomechanical properties of SPS processed beta-SiAlON bonded WC composites

机译:SPS加工β-Sialon键合WC复合材料的致密化,微观结构和纤维学性能

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Densification, microstructure and tribomechanical properties of spark plasma sintering (SPS) processed beta-SiAlON (20-40 wt%) bonded WC matrix composites have been reported. All the specimens achieved almost their theoretical density values after SPS at 1750 degrees C for 25 min under 40 MPa. Incorporation of beta-SiAlON in WC significantly altered the densification trend of the composites resembling that of pure beta-SiAlON. Microstructural investigations using scanning and transmission electron microscopy revealed formation of principally equiaxed, micron sized WC grains surrounded by the sub-micron to micron sized beta-SiAlON phase. The interface region between WC and beta-SiAlON was found to be free of any reaction product. Energy dispersive X-ray spectrum confirmed presence of characteristics elements in both WC and beta-SiAlON phases in the composite. The maximum Vickers hardness (similar to 18 GPa) and fracture toughness (similar to 6.8 MPa-m(0.5)) under 10 kgf were obtained for the 30 wt% beta-SiAlON/WC composite. These were almost 6% and 50% higher, respectively, than those obtained for pure WC. Indentation size effect (ISE) analyses of some selected specimens indicated moderate sensitivity towards ISE (Meyer's exponent = 1.802) of the 30 wt% beta-SiAlON/WC composite and higher true hardness (similar to 15.4 GPa) than those obtained for both the constituent phases. The load dependence of fracture toughness of some selected specimens has also been reported. Unlubricated wear studies under 30 N up to 250 m using ball-on-disc configuration indicated similar to 46-55 times higher specific wear rate of the beta-Si3N4 ball when rubbed against the composites compared to that (similar to 8 x 10(-6) mm(3)/N-m) obtained against pure WC. Formation of compacted flaky tribo-layer within the wear track of the composites was evidenced.
机译:已经报道了火花血浆烧结(SPS)的致密化,微观结构和染色机械性能(20-40wt%)键合的WC基复合材料。所有标本在40MPa下,在1750℃下的SPS在SPS时几乎实现了它们的理论密度值。 WC中的Beta-Sialon掺入显着改变了类似于纯Beta-Sialon的复合材料的致密化趋势。使用扫描和透射电子显微镜的微观结构研究显示,由亚微米围绕的亚微米括起来形成的主要等轴的形成。发现WC和Beta-Sialon之间的界面区域不含任何反应产物。能量分散X射线光谱证实了复合材料中WC和β-唾液相中的特性元素的存在。对于30wt%β-唾液酸/ WC复合材料,得到10kgF下的最大维氏硬度(类似于18GPa)和裂缝韧性(类似于6.8MPa-m(0.5))。这些近6%和50%,分别比纯WC所获得的6%和50%。缩进尺寸效应(ISE)分析一些选定的样本表明,对30wt%的β-唾液酸/ Wc复合材料的ISE(Meyer的Idonent = 1.802)和较高的真实硬度(类似于15.4GPa)的敏感性,而不是组成部分阶段。还报道了一些选定标本的断裂韧性的负荷依赖性。在与复合材料摩擦相比(类似于8 x 10( - 4×10( - 6)毫米(3)/ nm)与纯WC获得。证明了复合材料磨损轨道内的压实式片状摩擦层的形成。

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