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首页> 外文期刊>Journal of Thermal Spray Technology >Modeling of Temperature Field Evolution During Multilayered Direct Laser Metal Deposition
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Modeling of Temperature Field Evolution During Multilayered Direct Laser Metal Deposition

机译:多层直激光金属沉积温度场演化建模

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摘要

It is of great importance to thoroughly explore the evolving temperature fields of direct laser metal deposition (abbreviated as LMD) in vertical thin wall manufacturing. It is helpful to control the temperature gradient, and even to adjust to forming microstructures and accumulation of residual stress. In this paper, a comprehensive three-dimensional transient model is developed for evolving temperature fields. The manufactured material is DS superalloy Rene80. The laser-powder interaction during the powder flowing process is simulated first, and its possible effect on the temperature field of the melting pool is analyzed. Then a 3D numerical simulation for the evolving temperature field is carried out based on considering transport phenomena during LMD such as the change in phase, powder injection and liquid flow. The applied deposition parameters are derived from experimental investigation with optimized vertical wall manufacturing. The simulated results explain why a balance between heat input and dissipation could form inside the vertical thin wall. These reconstruct the instability at an early phase of the building process without any temperature control unit and exhibit the influence of parameters such as laser power, deposition velocity and laser beam deposition pattern. The simulation results of temperature evolution are consistent with experimental investigation.
机译:彻底探索垂直薄壁制造中的直接激光金属沉积(缩写为LMD)的不断变化的温度场非常重视。控制温度梯度,甚至适应形成残余应力的微观结构和积累是有帮助的。在本文中,开发了一种综合的三维瞬态模型,用于不断变化的温度场。制造的材料是DS超合金Rene80。首先模拟粉末流动过程中的激光粉末相互作用,分析其对熔池的温度场的可能影响。然后基于考虑在LMD期间的传输现象,例如相位,粉末喷射和液体流动的变化,进行演化温度场的3D数值模拟。应用的沉积参数源自具有优化垂直墙体制造的实验研究。模拟结果解释了为什么热输入和耗散之间的平衡可以在垂直薄壁内形成。这些在没有任何温度控制单元的情况下重建建筑过程的早期阶段的不稳定性,并且表现出参数诸如激光功率,沉积速度和激光束沉积图案的参数的影响。温度演化的仿真结果与实验研究一致。

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