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Optimization of HFMI/PIT Parameters with Simultaneous Multiple Response Consideration using Multi-Objective Taguchi Method for Fatigue Life Enhancement of Friction Stir Welding

机译:多目标Taguchi法同时考虑多重响应的HFMI / PIT参数的优化,以提高搅拌摩擦焊的疲劳寿命

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摘要

The friction stir welding process is witnessing a growth in its application in a wide range of The friction stir welding (FSW) process is witnessing a growth in a wide range of industrial applications due the minimal governing parameters and many other advantages as a solid state welding compared to the commonly used fusion welding process. However, tensile residual stress remains to be significant concern due to its extensive clamping and stirring process which can lead to lower fatigue resistance particularly in structures subjected to fluctuating loads. Up to day, research dealing with fatigue enhancements methods for FSW is rarely found in literature. This novel study presents an unconventional method to optimize the governing process parameters of Pneumatic Impact Treatment (PIT) also known as one of the High Frequency Mechanical Impact (HFMI) techniques. The post weld treatment is aimed to enhance fatigue resistance of FSW butt joints. The experimental study was conducted for Aluminum alloy (AA 6061) plates with thickness of 6 mm under varied PIT parameters centered on the intender pin diameter, applied air pressure and hammering frequency. The investigation began with obtaining optimum parameters for single response by using conventional Taguchi method with L9 orthogonal array. Further, advanced optimization approach by means of Multi-objective Taguchi Method (MTM) attempts to consider the multiple quality features simultaneously which are hardness value and fatigue life cycle. The significant level of the PIT parameters was investigated by using analysis of variance (ANOVA). As the final results, the optimum value was acquired by calculating the total normalized quality loss (TNQL) and multi signal to noise ratio (MSNR). Subsequent confirmation test was conducted upon determination of the optimized PIT parameters.
机译:搅拌摩擦焊接工艺在广泛的应用中正在增长。搅拌摩擦焊接(FSW)工艺在最小的控制参数和许多其他优点(如固态焊接)方面在工业应用中正在增长。与常用的熔焊工艺相比。然而,拉伸残余应力由于其广泛的夹紧和搅拌过程而仍然是一个值得关注的问题,这可能导致较低的抗疲劳性,尤其是在承受波动载荷的结构中。迄今为止,有关FSW疲劳增强方法的研究很少见于文献中。这项新颖的研究提出了一种非常规方法来优化气动冲击处理(PIT)的控制过程参数,该技术也被称为高频机械冲击(HFMI)技术之一。焊后处理旨在增强FSW对接接头的抗疲劳性。实验研究了厚度为6 mm的铝合金(AA 6061)板在各种PIT参数下的变化,这些参数以预定销直径,施加的气压和锤击频率为中心。该研究开始于通过使用带有L9正交阵列的常规Taguchi方法获得单响应的最佳参数。此外,借助于多目标田口方法(MTM)的高级优化方法试图同时考虑多个质量特征,即硬度值和疲劳寿命周期。通过使用方差分析(ANOVA)研究了PIT参数的显着水平。作为最终结果,通过计算总归一化质量损失(TNQL)和多信噪比(MSNR)获得了最佳值。确定最佳PIT参数后,进行后续确认测试。

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