搅拌摩擦焊接参数的数值模拟与优化

Sadiq Jasim, N. Saleh, Raad Jasim
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引用次数: 0

摘要

本文采用有限元方法(Ansys软件)对搅拌摩擦焊接过程进行了研究。20)。该过程的主要有效参数为转速、线速度、刀肩半径、传热系数和夹紧率,研究了它们对表征温度、von miss应力和摩擦应力分布的影响。为了获得最重要的结果,由于模拟案例数难以获得,因此采用田口L27正交阵列来减少模拟案例总数。工作板材料采用纯铜(t = 3.18 mm)材质。模拟案例完成后,利用方差分析统计工具进行优化处理。各参数的贡献百分比可以通过方差分析表和信噪比图的平均值得到。在温度分布领域,本研究与实验工作之间进行了验证,误差百分比为2.7%。从优化结果中发现,为获得较好的温控效果,最佳工况为转速(450 rpm)、线速度(2.75 mm/s)、刀肩半径(7 mm)、换热系数(300 w/m2 K)、夹紧距离百分比(40%)。对于von miss应力为转速(550 rpm)、线速度(3 mm/s)、刀肩半径(7 mm)、换热系数(300 w/m2 K)、夹紧距离百分比(20%)。摩擦应力为转速(450 rpm)、线速度(2.5 mm/s)、刀肩半径(7 mm)、换热系数(300 w/m2 K)、夹紧距离百分比(30%)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulation and Optimization of Friction Stir Welding Parameters
In this paper friction stir welding process has been studied whereby utilized FEM method (Ansys software ver. 20). The main effective parameter in this process were rotational speed, linear speed, tool shoulder radius, heat transfer coefficient and clamping percentage to study their influence on represent temperature, von misses stress and frictional stress distribution. Because of the difficulty to obtained the number of the simulation cases in order to get the most important results, Taguchi L27 orthogonal array was apply to reduce the total number of the simulation cases. Pure copper (t = 3.18 mm) material type was applied as work plate material. ANOVA statistical tool was utilized to achieved the optimization process after the simulation cases done. Percentage of contribution of each parameter can be obtained by ANOVA table and mean of S/N ratio plot. Validation process was achieved between the Current study and experiment work in the temperature distribution field with percentage of error 2.7 %. From optimization result It is found that the optimum condition in order to obtained good results for temperature was rotational speed of (450 rpm), linear speed (2.75 mm/s), tool shoulder radius (7 mm), heat transfer coefficient (300 w/m2 K), clamping distance percentage (40 %). And for von misses stress was rotational speed of (550 rpm), linear speed (3 mm/s), tool shoulder radius (7 mm), heat transfer coefficient (300 w/m2 K), clamping distance percentage (20 %). While for frictional stress was rotational speed of (450 rpm), linear speed (2.5 mm/s), tool shoulder radius (7 mm), heat transfer coefficient (300 w/m2 K), clamping distance percentage (30 %).
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