基于遗传算法的Aa7108搅拌摩擦焊工艺参数优化

M. Patel, K. Dave
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引用次数: 1

摘要

本文研究了双搅拌搅拌摩擦焊接7108铝合金的性能。采用圆柱销搅拌摩擦焊接,采用反向旋转双搅拌技术,在等速900、1200、1500、1800下,以30、50、70、90 mm/min四种不同的进料速率进行搅拌。显微组织检查显示了各区域的变化及其对力学性能的影响。此外,拉伸强度和硬度测量作为力学表征的一部分,并在1500rpm的转速下推导出力学和冶金性能之间的相关性。考虑搅拌摩擦焊工艺参数如刀具转速(rpm)、刀具进给量(mm/min)对材料抗拉强度(MPa)和硬度(HRB)的影响。采用遗传算法(GA),以适应度函数作为组合目标函数,对摩擦焊工艺参数进行优化,预测拉伸强度和硬度的最大值。验证试验表明,该模型与遗传算法预测结果接近,并预测了不同强度和硬度权重下工艺参数的最优值。
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Genetic Algorithm-Based Optimization of Friction Stir Welding Process Parameters on Aa7108
This research paper deals with the characterization of friction stir welding aluminium 7108 with twin stir technology. The coupons of the above metal were friction stir welded using a cylindrical pin with counter-rotating twin stir technology using at constant speed 900, 1200, 1500,1800 with four different feed rates of 30,50,70,90 mm/min. Microstructure examination showed the variation of each zone and their influence on the mechanical properties. Also, tensile strength and hardness measurements were done as a part of the mechanical characterization and correlation between mechanical and metallurgical properties and deduced at the speed of 1500 rpm. Friction stir welding process parameters such as tool rotational speed (rpm), tool feed (mm/min) were considered to find their influence on the tensile strength (MPa) and hardness (HRB). A genetic algorithm (GA) was employed by taking the fitness function as a combined objective function to optimize the friction welding process parameters to predict the maximum value of the tensile strength and hardness. The confirmation test also revealed good closeness to the genetic algorithm predicted results and the optimized value of process parameters for different weights of the tensile and hardness have been predicted in the model.
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