首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Multi-response optimization of friction stir welding process parameters for dissimilar joining of Al6101 to pure copper using standard deviation based TOPSIS method
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Multi-response optimization of friction stir welding process parameters for dissimilar joining of Al6101 to pure copper using standard deviation based TOPSIS method

机译:基于标准偏差的TOPSIS方法,使用标准偏差摩擦搅拌焊接工艺参数对摩擦搅拌焊接工艺参数的多响应优化

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摘要

Friction stir welding is a new and effective solid-state welding process for joining dissimilar materials such as aluminum (Al) and copper (Cu). Joint quality of the friction stir welded materials gets influenced by the welding strategy and different friction stir welding process parameters, i.e. rotational speed, welding speed, tool design, tool pin offset, and tilt angle. In this paper, the effect of combination of different friction stir welding process parameters during joining of Al-6101 and pure copper is studied using Taguchi L-18 orthogonal array. Four friction stir welding process parameters, i.e. shoulder diameter (A), pin offset (B), welding speed (C), and rotational speed (D) each at three levels except shoulder diameter, which is at two levels are selected. The effect of different combinations of these parameters on ultimate tensile strength and micro-hardness of the joints is investigated. Subsequently, single response optimization for ultimate tensile strength and micro-hardness and multi-response optimization of ultimate tensile strength and micro-hardness taken together is carried out to obtain the optimal combination of the friction stir welding process parameters. Taguchi method is used for single response optimization, whereas Taguchi-based TOPSIS method is employed for multi-response optimization. For single optimization, the optimum combination of the friction stir welding parameters yielding maximum strength and micro-hardness are A(1)B(1)C(2)D(2) and A(2)B(1)C(2)D(3), respectively. The optimum combination of the process parameters for multi-response optimization is A(2)B(1)C(2)D(2). From the results of the study for single- and multi-response optimization, it is revealed that the rotational speed is the most significant process parameter affecting the tensile strength and micro-hardness of the joints followed by the welding speed. Further, the macro/microstructure and micro-hardness profile of the joint obtained at the optimal combination of the multi-response optimization are given and discussed for better understanding of material mixing and joining.
机译:摩擦搅拌焊接是一种用于连接不同材料(如铝(Al)和铜(Cu)的新型且有效的固态焊接工艺。摩擦搅拌焊接材料的关节质量受到焊接策略和不同摩擦搅拌焊接工艺参数的影响,即转速,焊接速度,工具设计,工具引脚偏移和倾斜角度。本文使用Taguchi L-18正交阵列研究了在Al-6101和纯铜的接合过程中不同摩擦搅拌焊接工艺参数的影响。四个摩擦搅拌焊接工艺参数,即肩部直径(a),销偏移(b),焊接速度(c)和旋转速度(d),除肩直径之外的三个水平,其在两个级别处为两个水平。研究了这些参数不同组合对关节的最终拉伸强度和微硬度的影响。随后,对最终拉伸强度和微型硬度的单响应优化和极限拉伸强度和微硬度进行多响应优化,以获得摩擦搅拌焊接工艺参数的最佳组合。 Taguchi方法用于单响应优化,而基于TAGUCHI的TOPSIS方法用于多响应优化。对于单一优化,摩擦搅拌焊接参数的最佳组合产生最大强度和微硬度是(1)B(1)C(2)D(2)和A(2)B(1)C(2) d(3)分别。用于多响应优化的过程参数的最佳组合是(2)B(1)C(2)D(2)。从研究结果进行单响应和多响应优化,揭示了转速是影响关节的拉伸强度和微硬度的最重要的过程参数,然后是焊接速度。此外,给出并讨论了在多响应优化的最佳组合中获得的关节的宏/微观结构和微硬度分布,以便更好地理解材料混合和连接。

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