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定量预测铝合金中的溶质强化。

Quantitative prediction of solute strengthening in aluminium alloys.

机构信息

Division of Engineering, Brown University, Providence, Rhode Island 02912, USA.

出版信息

Nat Mater. 2010 Sep;9(9):750-5. doi: 10.1038/nmat2813. Epub 2010 Aug 1.

Abstract

Despite significant advances in computational materials science, a quantitative, parameter-free prediction of the mechanical properties of alloys has been difficult to achieve from first principles. Here, we present a new analytic theory that, with input from first-principles calculations, is able to predict the strengthening of aluminium by substitutional solute atoms. Solute-dislocation interaction energies in and around the dislocation core are first calculated using density functional theory and a flexible-boundary-condition method. An analytic model for the strength, or stress to move a dislocation, owing to the random field of solutes, is then presented. The theory, which has no adjustable parameters and is extendable to other metallic alloys, predicts both the energy barriers to dislocation motion and the zero-temperature flow stress, allowing for predictions of finite-temperature flow stresses. Quantitative comparisons with experimental flow stresses at temperature T=78 K are made for Al-X alloys (X=Mg, Si, Cu, Cr) and good agreement is obtained.

摘要

尽管计算材料科学取得了重大进展,但从第一性原理出发,对合金的力学性能进行定量、无参数预测一直很困难。在这里,我们提出了一种新的分析理论,该理论可以在输入第一性原理计算的情况下,预测替代溶质原子对铝合金的强化作用。首先使用密度泛函理论和灵活边界条件方法计算位错核心及其周围的溶质-位错相互作用能。然后提出了一个由于溶质的随机场而导致位错移动的强度(或应力)的分析模型。该理论没有可调参数,并且可以扩展到其他金属合金,预测了位错运动的能量势垒和零温流动应力,从而可以预测有限温度下的流动应力。该理论与 Al-X 合金(X=Mg、Si、Cu、Cr)在 78 K 温度下的实验流动应力进行了定量比较,结果吻合较好。

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