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PRECIPITATION HARDENING - THE OLDEST NANOTECHNOLOGY

机译:沉淀硬化-最古老的纳米技术

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摘要

Precipitation hardening of aluminum was discovered about 100 years ago by Dr. Alfred Wilm. Using aluminum alloys as example a survey is given on mechanism and limits of precipitation hardening. It is discussed how hard, nanometer-size particles (nanos, greek, the dwarf) can form as an ultra fine dispersoid. A simple example for optimum conditions is provided by diamond cubic particles (Si, Ge) in the f.c.c. Al-Matrix. The role of a sequence from more to less metastable phases is discussed, as well as the effects of additional (and trace) alloying elements. The amount of precipitation hardening is limited, besides by the volume fraction of particles, by their strength. This in turn determines the critical diameter above which the transition from passing to by-passing by dislocations takes place. Simple models for the calculation of this microstructural parameter are discussed. From combinations of precipitation hardening with other hardening mechanisms the limits for ultra high strengths are defined.
机译:Alfred Wilm博士大约100年前发现了铝的沉淀硬化。以铝合金为例,对沉淀硬化的机理和极限进行了调查。讨论了纳米级颗粒(纳米,希腊,矮人)如何形成超细弥散体而坚硬。 f.c.c中的钻石立方颗粒(Si,Ge)提供了最佳条件的简单示例。 Al-Matrix。讨论了从多到少亚稳相的序列的作用,以及其他(和痕量)合金元素的作用。沉淀硬化的量不仅受颗粒的体积分数的限制,还受其强度的限制。反过来,这确定了临界直径,在该临界直径上会发生从位错到旁通的过渡。讨论了用于计算该微结构参数的简单模型。通过沉淀硬化与其他硬化机制的结合,可以确定超高强度的极限。

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