首页> 外文期刊>Computer Modeling in Engineering & Sciences >Thermodynamics of Molten Pool Predicted by Computational Fluid Dynamics in Selective Laser Melting of Ti6Al4V: Surface Morphology Evolution and Densification Behavior
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Thermodynamics of Molten Pool Predicted by Computational Fluid Dynamics in Selective Laser Melting of Ti6Al4V: Surface Morphology Evolution and Densification Behavior

机译:Ti6Al4V选择性激光熔化中的计算流体动力学预测熔池的热力学:表面形态演化和致密化行为

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The three-dimensional physical model of the randomly packed powder material irradiated by the laser beam was established, taking into account the transformation of the material phase, the melt spreading and the interaction of the free surface of the molten pool and the recoiling pressure caused by the material evaporation during the selective laser melting. Influence of the processing parameters on the thermal behavior, the material evaporation, the surface morphology and the densification behavior in the connection region of the molten pool and the substrate was studied. It was shown that the powder material underwent the transformation from the partial melting state to the complete melting state and finally to the overheating state with the applied laser energy density increasing from 167 J/mm(3) to 417 J/mm(3). Therefore, the solidified track ranged from the discontinuous tracks with the rough surface to the continuous tracks with residual porosities, then to the continuous and dense tracks and terminally to the fluctuated tracks with the increase in the laser energy density. Meanwhile, the laser energy effect depth was maintained the positive relationship with the laser energy density. The vortex velocity obtained in the free surface of the molten pool towards to the rear region in the opposite laser scan direction promoted the melt convection to the edge region of the molten pool as the laser energy density was higher than 277 J/mm(3), demonstrating the efficient energy dissipation from the center of the irradiation region to the whole part of the molten pool and the attendant production of the sufficient melt volume. Therefore, the efficient spreading of the molten pool and the metallurgical bonding ability of the melt with the substrate was obtained at the optimized laser energy density of 277 J/mm(3). However, the severe material evaporation would take place as the melt was overheated, resulting in the formation of the residual pores and poor surface quality.
机译:建立了激光束照射的随机包装粉末材料的三维物理模型,考虑了材料相的转化,熔池自由表面的熔体扩散和相互作用和由选择性激光熔化过程中的材料蒸发。研究了处理参数对熔池连接区域中的热行为,材料蒸发,表面形态和致密化行为的影响。结果表明,粉末材料经历了从部分熔化状态到完全熔化状态的转化,并且最后从施加的激光能量密度从167 j / mm(3)到417 j / mm(3)增加过热状态。因此,固化轨道与粗糙表面的不连续轨道到与残余孔隙率的连续轨道,然后以连续和致密的轨道和最终到波动的轨道,随着激光能量密度的增加而增加到波动的轨道。同时,激光能量效应深度与激光能量密度保持阳性关系。在相反的激光扫描方向上朝向后区域的熔池的自由表面获得的涡流促使熔池的边缘区域的熔体对流,因为激光能量密度高于277 j / mm(3) ,证明了从辐射区中心到熔池的整个部分的有效能量耗散,以及伴随的足够熔体体积的伴随生产。因此,在优化的激光能量密度为277J / mm(3)的优化激光能量密度下,获得熔池的有效扩散和熔融池与熔体的冶金键合能力。然而,随着熔体过热的熔体会发生严重的材料蒸发,导致形成残留孔隙和表面质量差。

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