论文标题

一种新型的平滑粒子流体动力制剂,用于热毛皮相变的问题,重点是金属添加剂制造池建模

A novel smoothed particle hydrodynamics formulation for thermo-capillary phase change problems with focus on metal additive manufacturing melt pool modeling

论文作者

Meier, Christoph, Fuchs, Sebastian L., Hart, A. John, Wall, Wolfgang A.

论文摘要

基于激光的金属加工在内,包括焊接和三维印刷,涉及固体或颗粒原料的局部熔化,表面张力驱动的熔体流量以及由于施加的非常高的能量密度而引起的熔体的大量蒸发。目前的工作提出了一种弱压缩的平滑颗粒流体动力学公式,用于涉及固体,液体和气态相的热毛细管相变问题,其中特别关注选择性激光熔化,这是一种新兴的金属添加剂制造技术。蒸发引起的后坐力压力,依赖温度的表面张力和润湿力被认为是机械界面通量,而高斯激光束热源和蒸发引起的热损耗被认为是热接口通量。提出了一种新型的界面稳定方案,该方案可通过有效抑制杂种界面流动,因为通常发生在连续性表面力接近中,该方案可以通过有效抑制杂种界面流动来实现稳定且光滑的液态气体界面。此外,经离散的marangoni力的要求,对温度梯度的切向投影的离散策略进行了严格审查。由于考虑了全部相关的界面力,因此所提出的配方被认为特别适合于金属添加剂制造中的熔体池动力学建模,并且大气气相的明确分辨率可以通过气体包容来始终如一地描述孔的形成。在选择性激光熔化过程的背景下,通过几个选定的示例验证了单个模型和方法构建块的准确性和鲁棒性。

Laser-based metal processing including welding and three dimensional printing, involves localized melting of solid or granular raw material, surface tension-driven melt flow and significant evaporation of melt due to the applied very high energy densities. The present work proposes a weakly compressible smoothed particle hydrodynamics formulation for thermo-capillary phase change problems involving solid, liquid and gaseous phases with special focus on selective laser melting, an emerging metal additive manufacturing technique. Evaporation-induced recoil pressure, temperature-dependent surface tension and wetting forces are considered as mechanical interface fluxes, while a Gaussian laser beam heat source and evaporation-induced heat losses are considered as thermal interface fluxes. A novel interface stabilization scheme is proposed, which is shown to allow for a stable and smooth liquid-gas interface by effectively damping spurious interface flows as typically occurring in continuum surface force approaches. Moreover, discretization strategies for the tangential projection of the temperature gradient, as required for the discrete Marangoni forces, are critically reviewed. The proposed formulation is deemed especially suitable for modeling of the melt pool dynamics in metal additive manufacturing because the full range of relevant interface forces is considered and the explicit resolution of the atmospheric gas phase enables a consistent description of pore formation by gas inclusion. The accuracy and robustness of the individual model and method building blocks is verified by means of several selected examples in the context of the selective laser melting process.

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