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On the Superposition of Strengthening Mechanisms in Dispersion Strengthened Alloys and Metal-Matrix Nanocomposites: Considerations of Stress and Energy

机译:弥散强化合金和金属基纳米复合材料中强化机理的叠加:应力和能量的考虑

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摘要

Yield strength improvement in dispersion strengthened alloys and nano particle-reinforced composites by well-known strengthening mechanisms such as solid solution, grain refinement, coherent and incoherent dispersed particles, and increased dislocation density resulting from work-hardening can all be described individually. However, there is no agreed upon description of how these mechanisms combine to determine the yield strength. In this work, we propose an analytical yield strength prediction model combining arithmetic and quadratic addition approaches based on the consideration of two types of yielding mechanisms; stress-activated and energy-activated. Using data available in the literature for materials of differing grain sizes, we consider the cases of solid solutions and coherent precipitates to show that they follow stress-activated behavior. Then, we applied our model with some empirical parameters to precipitation-hardenable materials of various grain sizes in both coherent and incoherent precipitate conditions, which demonstrated that grain boundary and Orowan-strengthening can be treated as energy-activated mechanisms.
机译:可以单独描述通过固溶,晶粒细化,相干和不相干的分散颗粒等众所周知的强化机制来提高弥散增强合金和纳米颗粒增强复合材料的屈服强度,以及由于加工硬化而增加的位错密度。但是,关于这些机制如何组合以确定屈服强度的描述尚未达成共识。在这项工作中,我们基于两种类型的屈服机理,提出了一种将算术和二次加法相结合的分析屈服强度预测模型。压力激活和能量激活。利用文献中针对不同晶粒尺寸的材料获得的数据,我们考虑了固溶体和相干沉淀的情况,表明它们遵循应力激活行为。然后,我们将具有一些经验参数的模型应用于相干和不相干沉淀条件下的各种晶粒尺寸的可沉淀硬化材料,这表明晶界和Orowan强化可被视为能量激活机制。

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