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POWDER-SCALE MESHFREE SIMULATIONS OF POWDER BED FUSION BASED ADDITIVE MANUFACTURING PROCESSES

机译:粉末型粉型融合基添加工艺的粉末级网状模拟

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We present a powder-scale meshfree direct numerical simulation (DNS) capability for the powder bed fusion (PBF) based additive manufacturing (AM) processes using the novel Hot Optimal Transportation Meshfree (HOTM) method. The HOTM method is an incremental Lagrangian meshfree computational framework for materials behaviors under extreme thermomechanical loading conditions, which combines the Optimal Transportation Meshfree (OTM) method and the variational thermomechanical constitutive updates. The realistic multi-layer powder bed geometry is modeled explicitly in the HOTM simulations based on experimental data. A phase-aware constitutive model is developed to predict the phase change and multiphase mixing during the PBF AM processes automatically. The governing equations including the linear momentum and energy conservation equations are solved for the multiphase flow simultaneously to predict the deformation, temperature and local state of the powder particles. The powder-scale DNS is employed to study the influence of various laser powers on the melt pool thermodynamics.
机译:我们使用新颖的热最优运输网(HOTM)方法为粉末床融合(PBF)添加剂制造(AM)工艺提供了粉末级网状直接数值模拟(DNS)能力。 HOTM方法是极端热机械负载条件下的材料行为的增量拉格朗日网格免费计算框架,其结合了最优运输网(OTM)方法和变分热机械本构型更新。基于实验数据,实际的多层粉床几何形式在HOTM模拟中明确建模。开发了相位感知本构模型以预测自动PBF过程中的相变和多相混合。包括线性动量和节能方程的控制方程被求解用于多相流动,同时以预测粉末颗粒的变形,温度和局部状态。采用粉末级DNS研究各种激光功率对熔融池热力学的影响。

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