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HEIGHT DEPENDENT LASER METAL DEPOSITION PROCESS MODELING

机译:高度依赖的激光金属沉积过程建模

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Laser Metal Deposition (LMD) is used to construct parts in a layer-by-layer fashion. The heat transfer from the melt region to the solid region plays a critical role in the resulting material properties and part geometry. The heat transfer dynamics can change significantly as the layers increase, depending on the geometry of the sub layers. However, this effect is unaccounted for in previous analytical models, which model only a single layer. This paper develops a layer dependent model of the LMD process for the purpose of designing advanced layer-to-layer controllers. A lumped-parameter model of the melt pool is introduced and then extended to include elements that capture height dependent effects on the melt pool shape. The model dynamically relates the process inputs (e.g., laser power, material mass flow rate, and scan speed) to the melt pool morphology and temperature. A finite element analysis is then conducted to determine the effect of scan speed and track height on the solid region temperature gradient at the melt pool solidification boundary. The results of a simulation study are compared to experimental results in the literature and demonstrate that the model is able to successfully predict changes in melt pool width as track height increases, which single layer models cannot.
机译:激光金属沉积(LMD)用于以逐层方式构造零件。从熔体区到固体区的热传递在最终的材料性能和零件几何形状中起着至关重要的作用。传热动力学会随着层的增加而显着变化,具体取决于子层的几何形状。但是,在以前的分析模型(仅对单个层进行建模)中无法解决这种影响。为了设计高级层到层控制器,本文开发了LMD过程的层依赖模型。引入了熔池的集总参数模型,然后将其扩展为包括捕获熔池形状对高度的影响的元素。该模型将工艺输入(例如激光功率,材料质量流速和扫描速度)与熔池形态和温度动态相关。然后进行有限元分析,以确定扫描速度和轨道高度对熔池凝固边界处的固体区域温度梯度的影响。仿真研究的结果与文献中的实验结果进行了比较,证明了该模型能够成功预测熔炼池宽度随轨道高度的增加而变化,而单层模型则无法。

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