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Thermal Behavior and Geometry Model of Melt Pool in Laser Material Process

机译:激光材料过程中熔池的热行为和几何模型

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摘要

Melt pool geometry and thermal behavior control are essential in obtaining consistent building performances, such as geometrical accuracy, microstructure, and residual stress. In this paper, a three dimensional model is developed to predict the thermal behavior and geometry of the melt pool in the laser material interaction process. The evolution of the melt pool and effects of the process parameters are investigated through the simulations with stationary and moving laser beam cases. The roles of the convection and surface deformation on the heat dissipation and melt pool geometry are revealed by dimensionless analysis. The melt pool shape and fluid flow are considerably affected by interfacial forces such as thermocapillary force, surface tension, and recoil vapor pressure. Quantitative comparison of interfacial forces indicates that recoil vapor pressure is dominant under the melt pool center while thermocapillary force and surface tension are more important at the periphery of the melt pool. For verification purposes, the complementary metal oxide semiconductor camera has been utilized to acquire the melt pool image online and the melt pool geometries are measured by cross sectioning the samples obtained at various process conditions. Comparison of the experimental data and model prediction shows a good agreement.
机译:熔池的几何形状和热行为控制对于获得稳定的建筑性能(例如几何精度,微观结构和残余应力)至关重要。在本文中,建立了一个三维模型来预测激光材料相互作用过程中熔池的热行为和几何形状。通过在固定和移动激光束情况下的模拟,研究了熔池的演变和工艺参数的影响。通过无量纲分析揭示了对流和表面变形对散热和熔池几何形状的作用。熔池的形状和流体流动受界面力(例如热毛细作用力,表面张力和反冲蒸气压)的影响很大。界面力的定量比较表明,在熔池中心下方反冲蒸汽压力占主导地位,而在熔池的外围,热毛细作用力和表面张力更为重要。为了进行验证,已使用互补金属氧化物半导体相机在线获取熔池图像,并通过对在各种工艺条件下获得的样品进行剖切来测量熔池几何形状。实验数据与模型预测的比较显示出很好的一致性。

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