Prediction of Melt-Pool Characteristics in SLM Process for Ti6Al4V Using a Semi-Analytical Model

Shubhra Kamal Nandi, Rakesh Kumar, Anubhav Anubhav, Anupam Agrawal
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Abstract

Selective Laser Melting (SLM) is a powder-based layer-by-layer manufacturing technique to produce metallic customized shape components. The exceptionally high thermal gradient induces residual stress and distorts the part geometry affecting the yield quality. Computational models are instrumental in optimizing the process controls to fabricate high-quality components, and hence several such methods have been explored to simulate the thermal behavior of the process and the heat transfer in the melt-pool. Most of the practiced techniques are computationally expensive, making it infeasible to perform a parametric study. Based on closed-form exact heat conduction solution and Finite Volume Method (FVM), a pseudo-analytical thermal modeling approach has been employed to estimate the melt-pool characteristics and temperature distribution of the SLM process. A moving volumetric Gaussian heat source laser model and Green’s function have been adopted to model the heat input by conduction. The heat loss by conduction and convection has been calculated by implementing Finite Volume discretized equations on a 2-dimensional thin-walled domain with appropriate part boundary conditions. Additionally, the Alternating Direction Implicit iterative technique has been implemented for the fast convergence of the simulation. The model is used to demonstrate the influence of the process parameters and non-linear material phase change for a single-line single layer and multilayer part fabrication. The computed melt-pool dimensions and temperature distribution for varying laser-power, scanning velocity, and layer thickness for Ti6Al4V are validated with the experimental data from the literature with fair agreements.
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用半解析模型预测Ti6Al4V合金SLM过程熔池特性
选择性激光熔化(SLM)是一种基于粉末的逐层制造技术,用于生产金属定制形状部件。异常高的热梯度会引起残余应力并扭曲零件几何形状,影响产量质量。计算模型有助于优化过程控制,以制造高质量的部件,因此已经探索了几种这样的方法来模拟过程的热行为和熔池中的传热。大多数实践的技术在计算上是昂贵的,使得进行参数化研究是不可行的。基于闭式精确热传导解和有限体积法(FVM),采用拟解析热建模方法估计了SLM过程的熔池特性和温度分布。采用运动体积高斯热源激光模型和格林函数来模拟热传导输入。在适当的局部边界条件下,采用有限体积离散方程计算了二维薄壁区域的传导和对流热损失。此外,还采用交替方向隐式迭代技术,使仿真快速收敛。利用该模型验证了工艺参数和非线性材料相变对单线单层和多层零件加工的影响。计算得到的Ti6Al4V熔池尺寸和温度分布随激光功率、扫描速度和层厚的变化而变化,并与文献中的实验数据进行了比较一致的验证。
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