Yang Ke, Wang Fei, Duan Dingshan, Xia Bo, Luo Chuanguang, Yu Zhishui, Li Wang, Yang Lijun, Li Huan
Tianjin Key Laboratory of Advanced Joining Technology, Tianjin University, Tianjin 300072, China.
School of Materials Engineering, Shanghai University of Engineering Science, Shanghai 201620, China.
Materials (Basel). 2021 Aug 28;14(17):4898. doi: 10.3390/ma14174898.
Since heat affected zone (HAZ) is the weak area of welded joints, this article proposes a method to predict the HAZ microstructure and hardness for the triple-wire gas metal arc welding (GMAW) process of Q960E high strength steel. This method combines welding thermal simulation and numerical simulation. The microstructures and hardness of Q960E steel under different cooling rates were obtained by thermal simulation and presented in a simulated HAZ continuous cooling transformation (SH-CCT) diagram. The cooling rate in HAZ were obtained by numerical simulation with ANSYS software for the triple-wire welding of Q960E thick plates. By comparing the cooling rate with the SH-CCT diagram, the microstructure and hardness of the HAZ coarse-grained region were accurately predicted for multiple heat input conditions. Further, an ideal heat input was chosen by checking the prediction results. This prediction method not only helps us to optimize the welding parameters, but also leads to an overall understanding of the process-microstructure-performance for a complex welding process.
由于热影响区(HAZ)是焊接接头的薄弱区域,本文提出了一种预测Q960E高强度钢三丝气体保护金属极电弧焊(GMAW)过程中热影响区微观组织和硬度的方法。该方法结合了焊接热模拟和数值模拟。通过热模拟获得了Q960E钢在不同冷却速率下的微观组织和硬度,并呈现在模拟热影响区连续冷却转变(SH-CCT)图中。利用ANSYS软件对Q960E厚板进行三丝焊接的数值模拟,得到了热影响区的冷却速率。通过将冷却速率与SH-CCT图进行比较,准确预测了多种热输入条件下热影响区粗晶区的微观组织和硬度。此外,通过检查预测结果选择了理想的热输入。这种预测方法不仅有助于我们优化焊接参数,还能使我们全面了解复杂焊接过程的工艺-微观组织-性能关系。