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Comparison of the Optimized Process Parameters of Double-Sided Friction Stir Welded Aluminium Alloy Joints Using Statistical and Evolutionary Techniques

机译:使用统计和进化技术比较双面摩擦搅拌焊接铝合金接头的优化工艺参数

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One of the most innovative solid state welding techniques used in the aerospace, automotive, defence, rail and marine industries is Friction Stir Welding (FSW) process, as it is used for joining aluminium, copper and magnesium alloys. The weld quality is decided by the FSW process parameters such as rotational speed, welding speed and pin profile. A regression model was developed relating the welding input parameters (tool rotational speed, welding speed and pin profile) and the output response parameters (tensile strength, hardness and toughness) based on the experiments carried out with the help of Response Surface Methodology. The obtained regression equations were used in determining the optimal welding process parameters. A new method, Elitist Non-dominated Sorting Genetic Algorithm (NSGA-II) based on evolutionary algorithm has been used in the optimisation. The optimum results gathered from the desirability approach through Response Surface Methodology (RSM) were compared with those obtained through the evolutionary algorithm. The results show that the proposed evolutionary method is much effective, faster than the desirability approach discussed in the work.
机译:航空航天,汽车,防御,铁路和海洋工业中使用的最具创新性固态焊接技术之一是摩擦搅拌焊接(FSW)工艺,因为它用于连接铝,铜和镁合金。焊接质量由FSW工艺参数等旋转速度,焊接速度和销轮廓决定。基于在响应面方法的帮助下进行的实验,开发了一种回归模型,与焊接输入参数(刀具转速,焊接速度和销轮廓)和输出响应参数(抗拉强度,硬度和韧性)有关。所获得的回归方程用于确定最佳焊接过程参数。一种新的方法,基于进化算法的精英非统治分类遗传算法(NSGA-II)已用于优化。将从期望方法收集的最佳结果与响应表面方法(RSM)与通过进化算法获得的那些进行比较。结果表明,该拟议的进化方法有很大效益,比工作中讨论的期望方法更快。

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