Mg-Li合金创新的计算范式:解码原子掺杂机制以增强目标性能

IF 7.9 Q1 ENGINEERING, MULTIDISCIPLINARY
Wei Cheng , Ben Jia , Zhicheng Dong , Zhengying Wu , Xin Zhao , Xiaopeng Wan , Zhuo Liu , Heyuan Huang
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引用次数: 0

摘要

镁(Mg) -锂(Li)合金是世界上最轻的合金,在轻量化材料领域具有很大的应用潜力。合金元素掺杂是提高Mg-Li合金热力学性能的关键策略,基于密度泛函理论(DFT)的第一性原理计算已成为探索掺杂强化机理的重要手段。然而,现有的研究大多采用自上而下的分析方法,对掺杂原子强化机理的解释还很浅,未能充分发挥计算机辅助技术的经济和效率优势。本工作系统梳理了DFT在解释金属强化机理中的核心作用,并通过理论模型的构建和模拟计算,揭示了金属在原子尺度上的电子结构和化学键变化规律;重点综述了DFT如何帮助分析不同掺杂元素在Mg-Li合金发展过程中对其晶体结构、力学性能和耐腐蚀性的影响机制;讨论了DFT在镁锂合金功能设计中的应用。研究指出,目前DFT的应用存在多尺度耦合分析不足、实验验证滞后等局限性。因此,提出将分子动力学模拟与高通量计算相结合,为Mg-Li合金掺杂强化的精确设计和工业应用提供理论支持,对推动轻量化材料领域的发展具有重要的科学意义和实用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Computational paradigm for Mg-Li alloy innovation: Decoding atomic doping mechanisms for targeted property enhancement

Computational paradigm for Mg-Li alloy innovation: Decoding atomic doping mechanisms for targeted property enhancement
Magnesium (Mg) - Lithium (Li) alloys are the world's lightest alloys and thus have great application potential in the field of lightweight materials. Alloy element doping is a key strategy to enhance the thermomechanical properties of Mg-Li alloys, and first-principles calculations based on density functional theory (DFT) have become an important means to explore the doping strengthening mechanism. However, most existing studies adopt a top-down analysis approach, and the explanation of the strengthening mechanism of doped atoms is still shallow, failing to fully leverage the economic and efficiency advantages of computer-aided technology. This work systematically sorts out the core role of DFT in explaining the strengthening mechanism of metals, and through the construction of theoretical models and simulation calculations, reveals the electronic structure and chemical bond change rules at the atomic scale; it focuses on reviewing how DFT has helped to analyze the influence mechanisms of different doped elements on the crystal structure, mechanical properties, and corrosion resistance of Mg-Li alloys during their development process; and it discusses the application of DFT in the functional design of Mg-Li alloys. The research points out that the current application of DFT has limitations such as insufficient multi-scale coupling analysis and lagging experimental verification. Therefore, it is proposed to combine molecular dynamics simulation and high-throughput computing to provide theoretical support for the precise design and industrial application of doping strengthening of Mg-Li alloys, which has important scientific significance and practical value for promoting the development of the lightweight materials field.
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来源期刊
Results in Engineering
Results in Engineering Engineering-Engineering (all)
CiteScore
5.80
自引率
34.00%
发文量
441
审稿时长
47 days
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