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多组分合金中的复杂沉淀途径。

Complex precipitation pathways in multicomponent alloys.

作者信息

Clouet Emmanuel, Laé Ludovic, Epicier Thierry, Lefebvre Williams, Nastar Maylise, Deschamps Alexis

机构信息

Service de Recherches de Métallurgie Physique, CEA/Saclay, 91191 Gif-sur-Yvette, France.

出版信息

Nat Mater. 2006 Jun;5(6):482-8. doi: 10.1038/nmat1652. Epub 2006 May 21.

Abstract

One usual way to strengthen a metal is to add alloying elements and to control the size and the density of the precipitates obtained. However, precipitation in multicomponent alloys can take complex pathways depending on the relative diffusivity of solute atoms and on the relative driving forces involved. In Al-Zr-Sc alloys, atomic simulations based on first-principle calculations combined with various complementary experimental approaches working at different scales reveal a strongly inhomogeneous structure of the precipitates: owing to the much faster diffusivity of Sc compared with Zr in the solid solution, and to the absence of Zr and Sc diffusion inside the precipitates, the precipitate core is mostly Sc-rich, whereas the external shell is Zr-rich. This explains previous observations of an enhanced nucleation rate in Al-Zr-Sc alloys compared with binary Al-Sc alloys, along with much higher resistance to Ostwald ripening, two features of the utmost importance in the field of light high-strength materials.

摘要

强化金属的一种常见方法是添加合金元素并控制所得析出物的尺寸和密度。然而,多组分合金中的析出过程可能会因溶质原子的相对扩散率以及所涉及的相对驱动力而呈现复杂的路径。在铝-锆-钪合金中,基于第一性原理计算的原子模拟与在不同尺度下工作的各种互补实验方法相结合,揭示了析出物具有强烈的不均匀结构:由于钪在固溶体中的扩散速度比锆快得多,且在析出物内部不存在锆和钪的扩散,析出物的核心主要富含钪,而外壳富含锆。这就解释了先前观察到的与二元铝-钪合金相比,铝-锆-钪合金中形核速率提高,以及对奥斯特瓦尔德熟化的更高抗性,这两个特征在轻质高强度材料领域至关重要。

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