AUGMENTATION OF DEPTH OF PENETRATION AND PRODUCTIVITY BENEFITS OF ATIG WELDS USING THE AHP

Samarendra Acharya, D. Gonda, Santanu Das, Dipankar Bose, Rafikul Islam
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Abstract

Weldability is an important issue in the fabrication of different grades of stainless steel used in industry. Tungsten inert gas (TIG) welding is widely used in industry for accurate and precision work, but lack of penetration is observed in this process even though current and welding speed can be varied considerably to increase heat input to obtain deeper penetration. Increased heat input adversely affects mechanical properties of the weldment. To overcome this, activated flux TIG welding is often used in industry to achieve higher depth of penetration with relatively less heat input. In this study, activated flux TIG welding is used with input variables such as heat input, welding speed and pulse frequency. The chosen base metal is SS 304L stainless steel, and a hybrid flux mixture containing fluxes of SiO2, MnO2 and MoO3 in a ratio of 1:1:2 is used to obtain the desired depth of penetration. Nine experimental runs are conducted to obtain the optimum depth of penetration. Heat input values are 2.767 kJ/mm, 1.470 kJ/mm and 1.281 kJ/mm and pulse frequency is 160 Hz, 120 Hz and 80 Hz. Welding speed varies from 0.5 mm/s to 1.18 mm/s. A maximum depth of penetration of 4.42 mm is achieved with a heat input of 2.767 kJ/mm, welding speed of 0.5 mm/s and pulse frequency of 160 Hz. The reversed Marangoni effect and arc constriction effect are the mechanisms responsible for the deeper penetration in ATIG welding. In this research, a multi criteria decision making tool, the Analytical Hierarchy Process (AHP), is used to validate the optimum value obtained. The optimal values obtained in the research are in good accordance with those obtained using the AHP. The outcome of the present investigation indicates the applicability of ATIG welding for joining large thickness of stainless steel flats to give enhanced productivity by reducing the number of weld passes.  
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使用 AHP 增加阿蒂格焊缝的熔透深度并提高生产率
可焊性是制造工业中使用的不同等级不锈钢的一个重要问题。钨极惰性气体(TIG)焊接在工业中被广泛用于精确和精密的加工,但在这一过程中,尽管电流和焊接速度可以大幅度改变,以增加热输入来获得更深的熔透,但仍会出现熔透不足的现象。热输入的增加会对焊接件的机械性能产生不利影响。为了克服这一问题,工业上通常采用活化焊剂氩弧焊,以相对较少的热量输入获得更深的熔透。本研究采用活化焊剂氩弧焊,输入变量包括热输入、焊接速度和脉冲频率。选择的母材是 SS 304L 不锈钢,并使用含有 SiO2、MnO2 和 MoO3 的混合助焊剂,其比例为 1:1:2,以获得所需的熔透深度。为获得最佳穿透深度,共进行了九次实验。热输入值分别为 2.767 kJ/mm、1.470 kJ/mm 和 1.281 kJ/mm,脉冲频率分别为 160 Hz、120 Hz 和 80 Hz。焊接速度从 0.5 毫米/秒到 1.18 毫米/秒不等。输入热量为 2.767 kJ/mm、焊接速度为 0.5 mm/s、脉冲频率为 160 Hz 时,最大熔深为 4.42 mm。反向马兰戈尼效应和电弧收缩效应是 ATIG 焊接熔深的机理。在这项研究中,使用了多标准决策工具--层次分析法(AHP)来验证所获得的最佳值。研究得出的最优值与使用 AHP 得出的最优值非常吻合。本次调查的结果表明,ATIG 焊接适用于连接大厚度的不锈钢平板,通过减少焊接道次来提高生产率。
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来源期刊
International Journal of the Analytic Hierarchy Process
International Journal of the Analytic Hierarchy Process Decision Sciences-Decision Sciences (all)
CiteScore
2.30
自引率
0.00%
发文量
22
审稿时长
12 weeks
期刊介绍: IJAHP is a scholarly journal that publishes papers about research and applications of the Analytic Hierarchy Process(AHP) and Analytic Network Process(ANP), theories of measurement that can handle tangibles and intangibles; these methods are often applied in multicriteria decision making, prioritization, ranking and resource allocation, especially when groups of people are involved. The journal encourages research papers in both theory and applications. Empirical investigations, comparisons and exemplary real-world applications in diverse areas are particularly welcome.
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