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A Forward Time Stepping Heat Conduction Model for Spot Melt Additive Manufacturing

机译:点熔增材制造的正时步进导热模型

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摘要

Solidification dynamics are crucial for determining microstructure development in additively manufactured parts. Multiphysics models based on finite element or finite volume methods may help gain insight for complicated phenomena such as fluid flow, keyholing, and porosity but are too computationally expensive to use for simulating actual builds. Recent analytic and semi-analytic solutions for moving heat sources in a semi-infinite three-dimensional space provide a way to accurately estimate the solidification conditions for entire builds. The downside to these methods is that, unlike finite element or finite volume methods, they cannot use the temperature distribution of the previous time-steps to march the solution forward in time. This paper provides the mathematical formulation and implementation of a forward time stepping (FTS) approach to an existing semi-analytic solution. The speed and accuracy of the two methods are then compared for various scan patterns. The result is that, for spot melts, the forward time-stepping model provides improvements in both speed and accuracy. This is especially true for longer simulations, where the simulation can be orders of magnitude faster. The longest simulation analyzed in this paper was roughly 30x faster when using the forward time-stepping model versus the straightforward implementation of the semi-analytic solution.
机译:凝固动力学对于确定增材制造零件中的微结构发展至关重要。基于有限元或有限体积方法的多物理场模型可能有助于深入了解复杂现象,例如流体流动,键孔和孔隙率,但计算量太大,无法用于模拟实际构造。在半无限的三维空间中移动热源的最新解析和半解析解决方案提供了一种方法,可以准确估算整个构件的凝固条件。这些方法的缺点是,与有限元方法或有限体积方法不同,它们无法使用先前时间步长的温度分布来及时推动求解。本文为现有的半解析解决方案提供了前进时间步进(FTS)方法的数学公式和实现。然后针对各种扫描模式比较两种方法的速度和准确性。结果是,对于点熔体,正向时间步长模型可以提高速度和准确性。对于较长的仿真而言尤其如此,在这种情况下,仿真速度可能会快几个数量级。与使用半解析解决方案的直接实现相比,使用正向时间步长模型时,本文分析的最长仿真大约快30倍。

著录项

  • 来源
    《Journal of Heat Transfer》 |2019年第11期|112301.1-112301.9|共9页
  • 作者

    Stump B.; Plotkowski A.;

  • 作者单位

    Oak Ridge Natl Lab Mfg Demonstrat Facil Knoxville TN 37932 USA|Oak Ridge Natl Lab Mat Sci & Technol Div Oak Ridge TN 37932 USA;

  • 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

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