Multi-scale simulation approach for the prediction of overheating under consideration of process parameters in powder bed fusion of metals using a laser beam

IF 6.7 2区 材料科学 Q1 ENGINEERING, INDUSTRIAL
Dominik Rauner, Kai-Uwe Beuerlein, Ruihao Zhang, Michael F. Zaeh
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引用次数: 0

Abstract

Powder bed fusion of metals using a laser beam (PBF-LB/M) allows for the tool-free manufacturing of complex parts. During the PBF-LB/M process, local overheating can negatively affect the part quality, which results in an increased surface roughness or the formation of shrink lines. Process simulations are used to predict overheated regions and to initiate suitable countermeasures before the manufacturing process. For large-scale parts, in particular, simplifying heat source models are applied to ensure an appropriate computing time. However, these simplifications partially neglect the consideration of the impact of the process parameters on the thermal behavior. In this work, a physics-based multi-scale simulation approach is presented for the time-efficient prediction of geometry-induced overheating for large-scale parts. The presented methodological approach can be applied for different process parameters, materials, and PBF-LB/M machines. For this purpose, a thermal simulation was set up to determine the thermal behavior of a single layer using a moving heat source. By means of an analytical model, the heat source for the simulation of large-scale parts was adapted so that the thermal behavior of the single layer and the impact of the process parameters are represented. The simulation demonstrated that local and global heat accumulations can be predicted independently of the build platform occupancy. The results identified the overheated regions determined in the experiment. The application to a topology-optimized industrial part confirmed the computational efficiency. In the future, this simulation model can be used for the reliable prediction of overheating-caused defects and to allow for a first-time-right manufacturing.
考虑工艺参数的激光粉末床熔合过程过热多尺度模拟方法
使用激光束(PBF-LB/M)的粉末床熔融金属允许复杂零件的无工具制造。在PBF-LB/M过程中,局部过热会对零件质量产生负面影响,导致表面粗糙度增加或形成收缩线。过程模拟用于预测过热区域,并在制造过程之前启动适当的对策。特别是对于大型零件,采用简化热源模型以保证适当的计算时间。然而,这些简化部分忽略了工艺参数对热行为的影响。在这项工作中,提出了一种基于物理的多尺度模拟方法,用于快速预测大型零件的几何诱导过热。所提出的方法方法可以应用于不同的工艺参数、材料和PBF-LB/M机器。为此,建立了一个热模拟来确定单层在移动热源下的热行为。采用解析模型,对大型零件的模拟热源进行了调整,以反映单层的热行为和工艺参数的影响。模拟结果表明,局部和全局的热积累可以独立于建筑平台占用情况进行预测。结果确定了实验中确定的过热区域。在一个拓扑优化的工业零件上的应用验证了计算效率。在未来,该仿真模型可用于过热引起的缺陷的可靠预测,并允许第一次正确的制造。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Materials Processing Technology
Journal of Materials Processing Technology 工程技术-材料科学:综合
CiteScore
12.60
自引率
4.80%
发文量
403
审稿时长
29 days
期刊介绍: The Journal of Materials Processing Technology covers the processing techniques used in manufacturing components from metals and other materials. The journal aims to publish full research papers of original, significant and rigorous work and so to contribute to increased production efficiency and improved component performance. Areas of interest to the journal include: • Casting, forming and machining • Additive processing and joining technologies • The evolution of material properties under the specific conditions met in manufacturing processes • Surface engineering when it relates specifically to a manufacturing process • Design and behavior of equipment and tools.
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