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Comparison of nucleation and growth mechanisms in alloy solidification to those in metallic glass crystallisation--relevance to modeling

机译:合金凝固与金属玻璃结晶中成核和生长机理的比较-与建模有关

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The development of microstructure during phase transformations is often best understood by considerations of nucleation in the parent material followed by growth of the new phase. This is a mature research field in alloy solidification, thanks to extensive investigations of nucleation and dendritic growth in cooling alloy melts. Bulk metallic glasses, on the other hand, typically do not form crystals on cooling from above the liquidus to below the glass transition temperature, resulting in very strong hard materials. As BMG toughness can be enhanced by a crystallising anneal, the study of nucleation and growth of crystals in viscous multi-component liquids has become an important topic for study. Such devitrification can lead to crystalline-glass composites or bulk nano-crystalline alloys, and the micro- or nano-structure is controlled by phenomena such as diffusion of solute and heat, and impingement dynamics. The relevance of solidification theories of nucleation, growth and impingement to crystallisation in amorphous alloys is discussed in this paper. The effects of the key differences between phase transformations in alloy casting processes and those in alloy devitrification on development of computational models for process simulation are highlighted.
机译:通常通过考虑母体材料中的成核以及新相的生长,可以最好地理解相变过程中微结构的发展。由于对冷却合金熔体中的形核和树枝状生长的广泛研究,这是合金凝固的成熟研究领域。另一方面,大块金属玻璃在从液相线以上冷却至玻璃化转变温度以下时通常不会形成晶体,从而导致非常坚硬的材料。由于可以通过结晶退火提高BMG的韧性,因此研究粘性多组分液体中晶体的成核和生长已成为重要的研究课题。这种失透可导致晶体玻璃复合材料或块状纳米晶体合金,并且微观或纳米结构受诸如溶质和热量扩散以及撞击动力学等现象控制。本文讨论了非晶合金中成核,生长和冲击结晶凝固理论的相关性。着重指出了合金铸造过程中相变与合金失透中相变之间的关键差异对过程模拟计算模型的发展的影响。

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