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首页> 外文期刊>Optics and Lasers in Engineering >Simulation and optimization of continuous laser transmission welding between PET and titanium through FEM, RSM, GA and experiments
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Simulation and optimization of continuous laser transmission welding between PET and titanium through FEM, RSM, GA and experiments

机译:通过有限元,RSM,GA和实验模拟和优化PET与钛之间的连续激光透射焊接

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摘要

An intelligent method for simulation and optimization of continuous laser transmission welding (LTW) and validated with experiments (EX) is investigated in this paper. Thermal model using finite element method (FEM) has been combined with response surface methodology (RSM) and genetic algorithm (GA) techniques to improve veracity of the model prediction with less time spending on the experiments. A three-dimensional axi-symmetric thermal model has been developed to simulate the continuous LTW process with a moving Super-Gaussian heat source. The model is confirmed with a series of experiments. A statistical technique RSM based mathematical model is proposed to establish relations between input variables (power, welding speed, stand-off-distance) and output variables (maximum temperature at the weld interface-Tmax. maximum temperature at the top surface of the transparent PET-Ttop, weld width-WW, and weld depth in the transparent PET-DT). The RSM models are trained and tested by using the data from the numerical (FEM) models. It turns out that the models are proposed to accurately predict the output variables with the corresponding input variables. Finally, the desirability function (DF) integrated with the developed non-dominating sorting genetic algorithm-Ⅱ (NSGA-Ⅱ) is used to find out the optimal variables that enhance the quality and efficiency of the welding. Experiments using the optimum parameters are carried out to verify the FEM and RSM models. Results show that the proposed integrated (FEM-RSM-GA-EX) approach performed very well in optimum performance of the continuous LTW process. In addition, this approach also presents the feasibility of the use of the FE simulation to guide the experiments.
机译:本文研究了一种模拟和优化连续激光透射焊接(LTW)并经实验(EX)验证的智能方法。使用有限元方法(FEM)的热模型已与响应面方法(RSM)和遗传算法(GA)技术相结合,从而以较少的实验时间提高了模型预测的准确性。已经开发了三维轴对称热模型,以模拟具有移动超高斯热源的连续LTW过程。通过一系列实验证实了该模型。提出了一种基于统计技术RSM的数学模型,以建立输入变量(功率,焊接速度,支座距离)与输出变量(焊接界面的最高温度-Tmax,透明PET顶面的最高温度)之间的关系。 -Ttop,焊缝宽度-WW和透明PET-DT中的焊缝深度)。通过使用数值(FEM)模型中的数据来训练和测试RSM模型。事实证明,提出了模型来准确预测具有相应输入变量的输出变量。最后,将期望函数(DF)与已开发的非支配排序遗传算法-Ⅱ(NSGA-Ⅱ)集成在一起,以找出可提高焊接质量和效率的最佳变量。使用最佳参数进行了实验,以验证FEM和RSM模型。结果表明,所提出的集成(FEM-RSM-GA-EX)方法在连续LTW过程的最佳性能方面表现非常出色。此外,这种方法还提出了使用有限元仿真来指导实验的可行性。

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