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Optimizing the Pulsed Current Gas Tungsten Arc Welding Parameters 被引量:9

Optimizing the Pulsed Current Gas Tungsten Arc Welding Parameters
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摘要 The selection of process parameter in the gas tungsten arc (GTA) welding of titanium alloy was presented for obtaining optimum grain size and hardness. Titanium alloy (Ti-6Al-4V) is one of the most important non-ferrous metals which offers great potential application in aerospace, biomedical and chemical industries, because of its low density (4.5 g/cm^3), excellent corrosion resistance, high strength, attractive fracture behaviour and high melting point (1678℃). The preferred welding process for titanium alloy is frequent GTA welding due to its comparatively easier applicability and better economy. In the case of single pass (GTA) welding of thinner section of this alloy, the pulsed current has been found beneficial due to its advantages over the conventional continuous current process. Many considerations come into the picture and one needs to carefully balance various pulse current parameters to reach an optimum combination. Four factors, five level, central composite, rotatable design matrix were used to optimize the required number of experimental conditions. Mathematical models were developed to predict the fusion zone grain size using analysis of variance (ANOVA) and regression analysis. The developed models were optimized using the traditional Hooke and Jeeve's algorithm. Experimental results were provided to illustrate the proposed approach. The selection of process parameter in the gas tungsten arc (GTA) welding of titanium alloy was presented for obtaining optimum grain size and hardness. Titanium alloy (Ti-6Al-4V) is one of the most important non-ferrous metals which offers great potential application in aerospace, biomedical and chemical industries, because of its low density (4.5 g/cm^3), excellent corrosion resistance, high strength, attractive fracture behaviour and high melting point (1678℃). The preferred welding process for titanium alloy is frequent GTA welding due to its comparatively easier applicability and better economy. In the case of single pass (GTA) welding of thinner section of this alloy, the pulsed current has been found beneficial due to its advantages over the conventional continuous current process. Many considerations come into the picture and one needs to carefully balance various pulse current parameters to reach an optimum combination. Four factors, five level, central composite, rotatable design matrix were used to optimize the required number of experimental conditions. Mathematical models were developed to predict the fusion zone grain size using analysis of variance (ANOVA) and regression analysis. The developed models were optimized using the traditional Hooke and Jeeve's algorithm. Experimental results were provided to illustrate the proposed approach.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2006年第6期821-825,共5页 材料科学技术(英文版)
关键词 Pulsed current Gas tungsten arc welding Titanium alloy Design of experiments ANOVA Hooke and Jeeve's algorithm Grain size HARDNESS Pulsed current Gas tungsten arc welding Titanium alloy Design of experiments ANOVA, Hooke and Jeeve's algorithm Grain size Hardness
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参考文献15

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同被引文献41

  • 1李清明,王新洪,邹增大,吴军.Effect of activating flux on arc shape and arc voltage in tungsten inert gas welding[J].中国有色金属学会会刊:英文版,2007,17(3):486-490. 被引量:2
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