激光熔化镁合金的多物理场建模:连接熔池动力学与微观结构演变

IF 13.8 1区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING
Junying Liu, Xuehua Wu, Dongsheng Wang, Chunrong Pan, Renkai Huang, Fang Deng, Cijun Shuai, Joseph Buhagiar, Jing Bai, Youwen Yang
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引用次数: 0

摘要

激光粉末床熔合(LPBF)通过实现高设计自由度、快速成型和定制机械性能,彻底改变了现代制造业。然而,优化工艺参数仍然具有挑战性,因为需要采用反复试验的方法来捕捉细微的参数-微观结构关系。本研究采用多物理场计算框架研究镁合金的熔化和凝固动力学。结合粉末床生成的离散元法、熔池行为的有限体积法和微观组织演变的相场法,对粉末熔化、熔池流动和定向凝固等关键物理现象进行了模拟。系统分析了激光功率和扫描速度对熔池温度分布、熔池几何形状和枝晶形貌的影响。结果表明,激光功率的增加扩大了熔池尺寸,促进了柱状枝晶的生长,而高扫描速度降低了熔池稳定性,细化了枝晶结构。此外,马兰戈尼对流和热梯度控制着溶质的再分配,过多的能量输入可能会导致孔隙度和元素蒸发等缺陷。这些见解建立了工艺参数、热历史和微观结构特征之间的定量相关性,为lpbf加工镁合金提供了定制性能的有效路线图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Multi-physics modeling of laser melted magnesium alloy: Bridging melt pool dynamics to microstructure evolution

Multi-physics modeling of laser melted magnesium alloy: Bridging melt pool dynamics to microstructure evolution
Laser powder bed fusion (LPBF) has revolutionized modern manufacturing by enabling high design freedom, rapid prototyping, and tailored mechanical properties. However, optimizing process parameters remains challenging due to the trial-and-error approaches required to capture subtle parameter-microstructure relationships. This study employed a multi-physics computational framework to investigate the melting and solidification dynamics of magnesium alloy. By integrating the discrete element method for powder bed generation, finite volume method with volume of fluid for melt pool behavior, and phase-field method for microstructural evolution, the critical physical phenomena, including powder melting, molten pool flow, and directional solidification were simulated. The effects of laser power and scanning speed on temperature distribution, melt pool geometry, and dendritic morphology were systematically analyzed. It was revealed that increasing laser power expanded melt pool dimensions and promoted columnar dendritic growth, while high scanning speeds reduced melt pool stability and refined dendritic structures. Furthermore, Marangoni convection and thermal gradients governed solute redistribution, with excessive energy input risking defects such as porosity and elemental evaporation. These insights establish quantitative correlations between process parameters, thermal history, and microstructural characteristics, providing a validated roadmap for LPBF-processed magnesium alloy with tailored performance.
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来源期刊
Journal of Magnesium and Alloys
Journal of Magnesium and Alloys Engineering-Mechanics of Materials
CiteScore
20.20
自引率
14.80%
发文量
52
审稿时长
59 days
期刊介绍: The Journal of Magnesium and Alloys serves as a global platform for both theoretical and experimental studies in magnesium science and engineering. It welcomes submissions investigating various scientific and engineering factors impacting the metallurgy, processing, microstructure, properties, and applications of magnesium and alloys. The journal covers all aspects of magnesium and alloy research, including raw materials, alloy casting, extrusion and deformation, corrosion and surface treatment, joining and machining, simulation and modeling, microstructure evolution and mechanical properties, new alloy development, magnesium-based composites, bio-materials and energy materials, applications, and recycling.
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