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Prediction and optimization in mask-assisted laser transmission microjoining thermoplastic urethane and polyamide 6 through finite-element analysis, Kriging model, and genetic algorithm integrated method

机译:通过有限元分析,Kriging模型和遗传算法集成方法预测和优化掩模辅助激光透射微集体热塑性聚氨酯和聚酰胺6

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摘要

An integrated approach by combining finite-element analysis (FEA), Kriging model, and nondomi-nated sorting genetic algorithm-ll (NSGA-II) is utilized to realize modeling and optimization in mask-assisted laser transmission microjoining thermoplastic urethane and polyamide 6 (PA6). First, a three-dimensional FEA model is developed for obtaining the simulation data of the temperature field distribution that can determine the molten pool geometry. Then based on the initial training points generated by the optimal Latin hypercube sampling, the relationships between input parameters (laser power P, scanning speed V, and clamping force F) and weld quality [weld width (WW) and shear strength (SS)] are approximated through the Kriging model. Meanwhile, the main effects and contribution rates of various input parameters on the joint performance are discussed. Finally, the optimal weld quality is characterized as maximum SS and WW with a desired value, the NSGA-II is carried out to solve the multiobjective optimization problem for searching the Pareto-optimal front. The results of validation experiments under the optimal parameters indicate that the corresponding welding joint quality is significantly superior to that under other parameters.
机译:通过组合有限元分析(FEA),Kriging模型和Nondomi-nated分选遗传算法-11(NSGA-II)来实现综合方法,以实现掩模辅助激光传输微加入热塑性聚氨酯和聚酰胺6中的建模和优化( PA6)。首先,开发了三维FEA模型,用于获得可以确定熔池几何体的温度场分布的模拟数据。然后基于最佳拉丁超立体采样产生的初始训练点,输入参数(激光功率P,扫描速度V和夹紧力F)之间的关系和焊接质量λ和剪切强度(SS)]近似通过克里格模型。同时,讨论了各种输入参数对联合性能的主要效果和贡献率。最后,最佳焊接质量的特征在于具有所需值的最大SS和WW,进行NSGA-II,以解决搜索Pareto-Optimal前部的多目标优化问题。在最佳参数下验证实验结果表明,相应的焊接关节质量明显优于其他参数。

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