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Nanocrystallization and thermal stability of the Fe45Ni19.4Co8.5Cr5.7Mo1.9B14Si5.5 amorphous alloy

机译:Fe45Ni19.4Co8.5Cr5.7Mo1.9B14Si5.5非晶合金的纳米晶化和热稳定性

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Thermal stability, structural changes and nanocrystallization kinetics of the Fe80B14Si6 and Fe45Ni19.4Co8.5Cr5.7Mo1.9VB14Si5.5 amorphous alloys under continuous heating and isothermal annealings as well as the changes of microhardness caused by the phase transitions have been experimentally studied by a combination of X-ray diffraction analysis, differential scanning calorimetry, by measurements of electrical resistance and microhardness. The partial replacement of Fe in the Fe80B14Si6 alloy by a number of transition metals results in lowering of the onset crystallization temperature, facilitating the nanocrystal forming tendency, and enhancement of the microhardness values of the samples in the non-equilibrium structural states. The temperature dependencies of effective diffusion coefficients governing nanocrystallization are determined by approximation of the experimentally measured changes of the a-Fe nanocrystal sizes and the kinetic curves of nanocrystallization within the appropriate analytical models. The essentially lower thermal stability of the Fe45Ni19.4Co8.5Cr5.7Mo1.9VB14Si5.5 amorphous alloy compared with that of Fe80B14Si6 is associated with about two orders of magnitude lower effective diffusivity at the onset crystallization temperatures. From comparison of the rates of growth of a-Fe nanocrystals and their numbers of volume density in nanocomposite structures, it is suggested that the thermal stability of the former amorphous alloy is limited by slow diffusion-limited growth, while that of the latter one is controlled by nucleation. (C) 2015 Elsevier B.V. All rights reserved.
机译:结合实验研究了Fe80B14Si6和Fe45Ni19.4Co8.5Cr5.7Mo1.9VB14Si5.5非晶合金在连续加热和等温退火下的热稳定性,结构变化和纳米结晶动力学,以及由相变引起的显微硬度变化通过测量电阻和显微硬度来进行X射线衍射分析,差示扫描量热法。用多种过渡金属部分取代Fe80B14Si6合金中的Fe会降低起始结晶温度,促进纳米晶的形成趋势,并提高非平衡结构状态下样品的显微硬度值。在适当的分析模型内,通过近似估算实验测量的a-Fe纳米晶尺寸的变化以及纳米晶化的动力学曲线,可以确定控制纳米晶化的有效扩散系数的温度依赖性。与Fe80B14Si6相比,Fe45Ni19.4Co8.5Cr5.7Mo1.9VB14Si5.5非晶合金实质上较低的热稳定性与在开始结晶温度下的有效扩散率降低约两个数量级有关。通过比较a-Fe纳米晶体的生长速率及其在纳米复合结构中的体积密度数,可以看出前者非晶态合金的热稳定性受到缓慢的扩散限制生长的限制,而后者的热稳定性受到缓慢扩散限制的生长的限制。由成核控制。 (C)2015 Elsevier B.V.保留所有权利。

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