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Analytical Thermal Modeling of Powder Bed Metal Additive Manufacturing Considering Powder Size Variation and Packing

机译:考虑粉末尺寸变化和堆积的粉末床金属增材制造的解析热模型

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摘要

This work presents a computationally efficient predictive model based on solid heat transfer for temperature profiles in powder bed metal additive manufacturing (PBMAM) considering the heat transfer boundary condition and powder material properties. A point moving heat source model is used for the three-dimensional temperature prediction in an absolute coordinate. The heat loss from convection and radiation is calculated using a heat sink solution with a mathematically discretized boundary considering non-uniform temperatures and heat loss at the boundary. Powder material properties are calculated considering powder size statistical distribution and powder packing. The spatially uniform and temperature-independent material properties are employed in the temperature prediction. The presented model was tested in PBMAM of AlSi10Mg under different process conditions. The calculations of material properties are needed for AlSi10Mg because of the significant difference in thermal conductivity between powder form and solid bulk form. Close agreement is observed upon experimental validation on the molten pool dimensions.
机译:这项工作提出了一种基于固体传热的计算有效的预测模型,该模型考虑了传热边界条件和粉末材料的特性,用于粉末床金属增材制造(PBMAM)中的温度曲线。点移动热源模型用于绝对坐标下的三维温度预测。对流和辐射产生的热损失是使用考虑了温度不均匀和边界处的热损失的具有数学离散边界的散热器解决方案来计算的。考虑粉末尺寸统计分布和粉末堆积,计算粉末材料的性能。在温度预测中采用空间均匀且与温度无关的材料属性。在不同工艺条件下,在AlSi10Mg的PBMAM中测试了提出的模型。对于AlSi10Mg,需要计算材料性能,因为粉末形式和固体块状形式之间的热导率存在显着差异。在对熔池尺寸进行实验验证后,观察到了密切的一致性。

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