过冷
微观结构
材料科学
非平衡态热力学
相(物质)
合金
极限(数学)
定向凝固
领域(数学)
理论(学习稳定性)
机械
不稳定性
纳米技术
热力学
物理
冶金
计算机科学
数学分析
数学
量子力学
机器学习
纯数学
作者
Kaihua Ji,Amy J. Clarke,Joseph T. McKeown,Alain Karma
出处
期刊:Mrs Bulletin
[Springer Nature]
日期:2024-05-14
卷期号:49 (6): 556-567
被引量:1
标识
DOI:10.1557/s43577-024-00717-6
摘要
Abstract Solidification processing of structural alloys can take place over an extremely wide range of solid–liquid interface velocities spanning six orders of magnitude, from the low-velocity constitutional supercooling limit of microns/s to the high-velocity absolute stability limit of m/s. In between these two limits, the solid–liquid interface is morphologically unstable and typically forms cellular-dendritic microstructures, but also other microstructures that remain elusive. Rapid developments in additive manufacturing have renewed the interest in modeling the high-velocity range, where approximate analytical theories provide limited predictions. In this article, we discuss recent advances in phase-field modeling of rapid solidification of metallic alloys, including a brief description of state-of-the-art experiments used for model validation. We describe how phase-field models can cope with the dual challenge of carrying out simulations on experimentally relevant length- and time scales and incorporating nonequilibrium effects at the solid–liquid interface that become dominant at rapid rates. We present selected results, illustrating how phase-field simulations have yielded unprecedented insights into high-velocity interface dynamics, shedding new light on both the absolute stability limit and the formation of banded microstructures that are a hallmark of rapid alloy solidification near this limit. We also discuss state-of-the-art experiments used to validate those insights. Graphical abstract
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