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Three Response Optimization of Spot-Welded Joint Using Taguchi Design and Response Surface Methodology Techniques

机译:三焊接设计的三种响应优化使用Taguchi设计和响应面方法技术

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One of the main challenges in correlating welding parameters and weld quality is its complexity to include as many as possible factors. In this research, the effects of spot welding parameters on weld quality were investigated. The effects of weld time, weld current, and electrode force on the sizes of fusion zone and heat affected zone, and tensile-shear load were studied. These welding parameters and weld quality were analysed using the three response Taguchi L_9 orthogonal array method in Minitab 17. Second-order regression models of fusion zone size, heat affected zone size and tensile-shear load were constructed by adapting Response Surface Method. The optimum weld time was 0.2 s, weld current of 10 kA and the required electrode force was 2.3 kN. These parameters were within 5% discrepancies with the experiment results. Weld current was the most important welding parameter that determines the weld quality, with the contribution of 69%. From our observation, the failure mode was the pullout type, a generally accepted failure for welded joint. The outcomes of this research contributed to the advancement in optimization technique for RSW joint, by increased the number of weld quality from two to three response.
机译:相关焊接参数和焊接质量的主要挑战之一是其复杂性,包括尽可能多的因素。在本研究中,研究了点焊参数对焊接质量的影响。研究了焊接时间,焊接电流和电极力对融合区和热影响区尺寸的影响,以及拉伸剪切载荷。使用Minitab的三个响应Taguchi L_9正交阵列方法分析了这些焊接参数和焊接质量17.通过调整响应表面法构造了融合区尺寸,热影响区尺寸和拉伸剪切载荷的二阶回归模型。最佳焊接时间为0.2秒,焊接电流为10ka,所需的电极力为2.3kn。这些参数在具有实验结果的差异范围内。焊接电流是最重要的焊接参数,可确定焊接质量,贡献为69%。从我们的观察开始,故障模式是拉出式,焊接接头的普遍接受的失效。这项研究的结果导致了RSW联合优化技术的进步,通过增加了两到三次反应的焊接质量的数量。

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