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Numerical simulation and experimental investigation of laser overlap welding of Ti6Al4V and 42CrMo

机译:Ti6Al4V和42CrMo激光搭接焊的数值模拟和实验研究

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Finite element method (FEM) and processing experiments were utilized to investigate the thermal phenomena and microstructure of laser overlap welding of Ti6Al4V and 42CrMo. A FEM model of temperature field was established, under considerations of thermal contact resistance and forced convection effect of shielding gas flow. Based on the model, temperature field with various laser power values and scanning velocities was calculated to explore the relationship between the process parameters and the interface temperature. Experiments were conducted on a 1 kW Nd:YAG laser materials processing system with five-axis CNC working station. Microstructure, chemical composition and microhardness of the joint were evaluated. From the numerical simulation and experimental investigation, the calculated temperature history at measuring points had the similar tendency to the experimental results. The interface temperature could just reach or be a little higher than the melting point of the lower sheet material 42CrMo by adjusting the process parameters according to the numerical calculation. At the interface, intermetallic compounds TiFe and TiFe_2 were detected. The thickness of intermetallic reaction layer containing intermetallic compounds was found to depend on the heat input.
机译:利用有限元方法(FEM)和工艺实验研究了Ti6Al4V和42CrMo激光搭接焊的热现象和显微组织。考虑热接触电阻和保护气流的强制对流效应,建立了温度场的有限元模型。基于该模型,计算了具有各种激光功率值和扫描速度的温度场,以探索工艺参数与界面温度之间的关系。实验是在具有五轴CNC工作站的1 kW Nd:YAG激光材料加工系统上进行的。对接头的显微组织,化学成分和显微硬度进行了评估。通过数值模拟和实验研究,计算出的测量点处的温度历史趋势与实验结果具有相似的趋势。通过根据数值计算调整工艺参数,界面温度可以刚好达到或略高于下片材42CrMo的熔点。在界面处,检测到金属间化合物TiFe和TiFe_2。发现包含金属间化合物的金属间反应层的厚度取决于热输入。

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