Experimental investigation on impact energy of friction stir welded aluminum and copper dissimilar joint using full factorial method

G. Shinde, Dr.Rachayya. R Arakerimath
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引用次数: 1

Abstract

This research work carried out friction stir welding (FSW) of dissimilar aluminum AA3003-H12 and copper C12200-H01, with wide application in the refrigeration and heat exchanger industry. The main aim of this study is to investigate the influence of process parameters, i.e. pin type (PT), weld speed (WS), rotational speed (RPM), and shoulder diameter (SD) on impact energy (IE) of Al-Cu welded joint. The experimental study used the full factorial method with mixed levels of process parameters. Analysis of Variance (ANOVA) determines the significance of process parameters on impact energy. The results of the analysis of variance (ANOVA) shows that rotational speed (RPM) is the most influential process parameter contributing to the impact energy (IE) of dissimilar Al-Cu weld joint. The response optimizer tool in Minitab 18 software gives optimum weld conditions of process parameters for better weld performance. The FSW experiment with a tapered pin, weld speed of 16 mm/min, rotational speed of 1120 rpm, and shoulder diameter of 22.5 mm obtained the maximum impact energy value of 6.5367 J. The fine-grain recrystallization formed intermetallic compounds in the stir zone (SZ). These intermetallic compounds give a maximum microhardness of 382.24 Hv (0.1). The microstructure analysis of the stir zone (SZ) shows an equiaxed grain structure on the Cu side, while the Al side shows a fine recrystallized grain structure.
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采用全析因法对铝铜异种接头搅拌摩擦焊冲击能进行试验研究
本研究工作开展了异种铝AA3003-H12与铜C12200-H01的搅拌摩擦焊接(FSW),该焊接在制冷换热器行业中有着广泛的应用。本研究的主要目的是研究销型(PT)、焊接速度(WS)、转速(RPM)、焊肩直径(SD)等工艺参数对铝铜焊接接头冲击能(IE)的影响。实验研究采用混合水平工艺参数的全析因法。方差分析(ANOVA)确定了工艺参数对冲击能的显著性。方差分析(ANOVA)结果表明,转速(RPM)是影响不同Al-Cu焊接接头冲击能(IE)的最大工艺参数。Minitab 18软件中的响应优化工具给出了工艺参数的最佳焊接条件,以获得更好的焊接性能。采用锥形销、焊接速度为16 mm/min、转速为1120 rpm、焊肩直径为22.5 mm的FSW实验,获得的最大冲击能为6.5367 j,搅拌区(SZ)细晶再结晶形成金属间化合物。这些金属间化合物的最大显微硬度为382.24 Hv(0.1)。搅拌区(SZ)的显微组织分析表明,Cu侧为等轴晶粒组织,Al侧为细晶粒再结晶组织。
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