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Use of Detailed Particle Melt Modeling to Calculate Effective Melt Properties for Powders

机译:使用详细的颗粒熔体模型来计算粉末的有效熔体性质

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摘要

Selective laser melting (SLM) is a widely used powder-based additive manufacturing process. However, it can be difficult to predict how process inputs affect the quality of parts produced. Computational modeling has been used to address some of these difficulties, but a challenge has been accurately capturing the behavior of the powder in a large, bed-scale model. In this work, a multiscale melting model is implemented to simulate the melting of powder particles for SLM. The approach employs a particle-scale model for powder melting to develop a melt fraction–temperature relationship for use in bed-scale simulations of SLM. Additionally, uncertainties from the particle-scale are propagated through the relationship to the bed scale, thus allowing particle-scale uncertainties to be included in the bed-scale uncertainty estimation. Relations, with uncertainty, are developed for the average melt fraction of the powder as a function of the average temperature of the powder. The utility of these melt fraction–temperature relations is established by using them to model phase change using a continuum bed-scale model of the SLM process. It is shown that the use of the developed relations captures partial melt behavior of the powder that a simple melting model cannot. Furthermore, the model accounts for both uncertainty in material properties and packing structure in the final melt fraction–temperature relationship, unlike simple melting models. The developed melt fraction–temperature relations may be used for bed-scale SLM simulations with uncertainty due to particle effects.
机译:选择性激光熔化(SLM)是一种广泛使用的基于粉末的增材制造工艺。但是,很难预测过程输入如何影响所生产零件的质量。计算模型已用于解决其中的一些难题,但是挑战在于如何在大型床规模模型中准确捕获粉末的行为。在这项工作中,实现了多尺度熔化模型来模拟SLM粉末颗粒的熔化。该方法采用了粉末熔融的粒子尺度模型来开发熔体分数与温度的关系,以用于SLM的床尺度模拟。另外,来自颗粒尺度的不确定性通过与床尺度的关系传播,因此允许将颗粒尺度不确定性包括在床尺度不确定性估计中。粉末的平均熔融分数随粉末平均温度的变化而发展出具有不确定性的关系。通过使用SLM过程的连续床规模模型,通过使用它们来模拟相变,可以建立这些熔融物-温度关系的效用。结果表明,开发的关系的使用捕获了粉末的部分熔融行为,而简单的熔融模型则无法做到。此外,与简单的熔融模型不同,该模型在最终熔融分数-温度关系中考虑了材料性能和填充结构的不确定性。由于颗粒效应,不确定的不确定性可以用于床尺度SLM模拟。

著录项

  • 来源
    《Journal of Heat Transfer》 |2018年第5期|052301.1-052301.11|共11页
  • 作者单位

    Department of Mechanical Engineering,The University of Texas at Austin,204 E., Dean Keeton Street,Stop C2200 ETC II 5.160,Austin, TX 78712;

    Department of Mechanical Engineering,The University of Texas at Austin,204 E., Dean Keeton Street,Stop C2200 ETC II 5.160,Austin, TX 78712;

    Department of Mechanical Engineering,The University of Texas at Austin,204 E., Dean Keeton Street,Stop C2200 ETC II 5.160,Austin, TX 78712;

    Henry Samueli School of Engineering and Applied Science,University of California,7400 Boelter Hall Los Angeles,Los Angeles, CA 90095;

  • 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

    Temperature; Lasers; Particulate matter; Packings (Cushioning); Melting; Stainless steel; Uncertainty; Simulation; Packing (Shipments); Density;

    机译:温度;激光;颗粒物;包装(缓冲);熔化;不锈钢;不确定度;模拟;包装(装运);密度;

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