首页> 外文期刊>International Journal of Heat and Mass Transfer >Role of impinging powder particles on melt pool hydrodynamics, thermal behaviour and microstructure in laser-assisted DED process: A particle-scale DEM - CFD - CA approach
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Role of impinging powder particles on melt pool hydrodynamics, thermal behaviour and microstructure in laser-assisted DED process: A particle-scale DEM - CFD - CA approach

机译:激光辅助DED过程中抗粉末颗粒对熔池流体动力学,热行为和微观结构的作用:粒子级DEM - CFD - CA方法

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摘要

High speed imaging of molten pool free-surface hydrodynamics in laser-assisted directed energy deposition process clearly revealed a highly oscillatory and dynamic melt flow due to impinging powder particles. Surprisingly, most of the reported computational work exclude the injection of powder particles and rather adopt a homogeneous mass and energy addition approach, and therefore provides less accurate predictions. In this work, we develop a coupled multi-physics particle-scale approach utilizing the discrete element method for particle trajectory prediction, the computational fluid dynamics for free-surface thermo-fluidic modelling and the cellular automata method for grain growth evolution. In the model, the governing physical phenomena, such as laser-powder interaction, in-flight particle heating, phase change (melting, vaporization and solidification), free-surface evolution, molten pool hydrodynamics and impinging particles-melt interaction have been considered. Experiments for the deposition of Inconel-625 on an Inconel-625 substrate are carried out, and the model predictions are validated with the experimental measurements. For the first time, the predicted thermo-fluidic simulation results reveal highly oscillatory, chaotic and random melt flow attributed to the impinging powder particles. During the deposition, it is found that the role of the Marangoni convection is less significant as compared to the momentum imparted by the impinging powder particles in the melt pool. Using the simulated thermal undercooling data, cellular automata-based grain growth simulation predicts elongated columnar dendrites in the melt pool that grows epitaxially from the melt pool interface and stretches towards the centre. Using the Kurz-Fisher model, the effect of local thermodynamic solidification conditions on the size of dendritic microstructure is also described. The predicted melt pool geometry, temperature field and grain structure compare well with the experimental measurements.
机译:激光辅助定向能量沉积过程中熔融游泳池自由表面流体动力学的高速成像清楚地揭示了由于撞击粉末颗粒引起的高度振荡和动态熔体流动。令人惊讶的是,大多数报告的计算工作排除了粉末颗粒的注射,而是采用均匀的质量和能量加法方法,因此提供了不太准确的预测。在这项工作中,我们开发了利用用于粒子轨迹预测的离散元件方法,自由表面热流体建模的计算流体动力学以及晶粒生长演化的蜂窝自动机方法的耦合多物理粒子级方法。在模型中,考虑了控制物理现象,例如激光粉末相互作用,飞行颗粒加热,相变(熔化,蒸发和凝固),自由表面演化,熔池流体动力学和撞击粒子 - 熔体相互作用。进行了在Inconel-625基板上沉积Inconel-625的实验,并通过实验测量验证模型预测。首次,预测的热流体仿真结果显示出归因于撞击粉末颗粒的高度振荡,混沌和随机熔体流动。在沉积期间,与熔融池中的撞击粉末颗粒赋予的动量相比,Marangoni对流的作用不太重要。使用模拟的热冷却数据,基于蜂窝自动机的晶粒生长模拟预测熔池中的细长柱状树枝状,其从熔体池界面外延生长并朝向中心延伸。使用Kurz-Fisher模型,还描述了局部热力学凝固条件对树突微观结构尺寸的影响。预测的熔融池几何形状,温度场和晶粒结构与实验测量相比很好。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第9期|119989.1-119989.19|共19页
  • 作者单位

    Department of Mechanical Engineering Indian Institute of Technology Kanpur Kanpur 208016 India;

    Department of Mechanical Engineering Indian Institute of Technology Kanpur Kanpur 208016 India;

    Department of Mechanical Engineering Indian Institute of Technology Kanpur Kanpur 208016 India;

    Department of Materials Science and Engineering Indian Institute of Technology Kanpur Kanpur 208016 India;

    Department of Mechanical Engineering Indian Institute of Technology Kanpur Kanpur 208016 India;

    Centre for Additive Manufacturing and Special Manufacturing Processes Central Manufacturing Technology Institute Bengaluru 560022 India;

    Department of Mechanical and Industrial Engineering Tallinn University of Technology Tallinn 19086 Estonia Eric Schmid Institute of Materials Science Austrian Academy of Sciences Jahnstrasse 12 A-8700 Leoben Austria CBCMT School of Mechanical Engineering Vellore Institute of Technology Vellore - 632014 India;

    Department of Materials Science and Engineering Indian Institute of Technology Kanpur Kanpur 208016 India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Laser-assisted directed energy deposition; Particles impingement; Molten pool hydrodynamics; Discrete element method; Cellular automata; Grain growth;

    机译:激光辅助定向能量沉积;颗粒冲击;熔池流体动力学;离散元素法;蜂窝自动机;谷物生长;

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