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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Impact of mechanical activation on sintering kinetics and mechanical properties of ultrafine-grained 95W-Ni-Fe tungsten heavy alloys
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Impact of mechanical activation on sintering kinetics and mechanical properties of ultrafine-grained 95W-Ni-Fe tungsten heavy alloys

机译:机械活化对超细粒灰95W-Ni-Fe钨铬合金烧结动力学和力学性能的影响

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This paper is a study of sintering mechanisms, structure, and mechanical properties of ultrafine-grained 95W-Ni-Fe tungsten heavy alloys. Powder particle sizes were controlled by mechanical activation (MA) of original coarse-grained components and by addition of ultrafine particles. W-Ni-Fe alloys were obtained by sintering in hydrogen and Spark Plasma Sintering (SPS) in a vacuum. The dependence of ultrafine-grained (UFG) alloy density on sintering temperatures has been found to be non-monotonic with a maximum corresponding to the optimal sintering temperature. It has been demonstrated that the sintering activation energy of UFG alloys is significantly lower than that of coarse-grained alloys. It has been shown that the optimal SPS temperature for mechanically activated nanopowders goes down by 350–400?°C in comparison with the optimal sintering temperature in hydrogen for coarse-grained 95W-Ni-Fe powder composition. The reason for a lower optimal sintering temperature lies in a decreased activation energy of grain-boundary diffusion and formation of a non-equilibrium solid solution of nickel and iron in the surface layer of tungsten α-W particles during high-energy MA. High-energy MA and SPS were used to obtain samples of UFG tungsten alloys with high mechanical properties: macro-elastic limit – up to 2250?MPa, yield stress – up to 2500?MPa.
机译:本文是对超细晶体95W-Ni-Fe钨钨钨的烧结机构,结构和机械性能研究。粉末粒径由原始粗粒组分的机械活化(MA)控制,并加入超细颗粒。通过在真空中烧结氢气和火花等离子体烧结(SPS)来获得W-Ni-Fe合金。已经发现超细粒子(UFG)合金密度对烧结温度的依赖性是非单调的,最大值对应于最佳烧结温度。已经证明了UFG合金的烧结活化能量显着低于粗粒合金的烧结活化能。已经表明,与粗晶粒95W-镍氢粉组合物的氢气中的最佳烧结温度相比,机械活化纳米孔的最佳SPS温度下降350-400℃。较低的最佳烧结温度的原因在于在高能量MA期间,晶粒 - 边界扩散的激活能量降低,形成镍α-W颗粒的表面层中的镍和铁的非平衡固体溶液。高能量MA和SPS用于获得高机械性能的UFG钨合金样品:宏观弹性限制 - 高达2250?MPa,屈服应力 - 高达2500?MPa。

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