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首页> 外文期刊>Materials and Manufacturing Processes >Influence of Current and Shielding Gas in TiO2 Flux Activated TIG Welding on Different Graded Steels
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Influence of Current and Shielding Gas in TiO2 Flux Activated TIG Welding on Different Graded Steels

机译:TiO2药芯焊丝TIG焊接中电流和保护气体对不同等级钢的影响

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摘要

In tungsten inert gas (TIG) welding, limited depth of penetration can be achieved during single pass welding. To achieve the desired depth of penetration, the speed of welding needs to be significantly reduced and hence, the productivity decreases. In the present work, the effect of TiO2 activated flux on penetration is evaluated for different workpieces namely AISI 1020, AISI 304, AISI 316, and Duplex 2205 steels at different currents and shielding gas compositions. The results show a significant increase in the depth of penetration and reduction in the width-to-penetration ratio using the activated flux for all the workpiece materials considered here. Current increases the depth of penetration, however, the influence of flux becomes more significant with higher welding current. Maximum of 37.8%, 44.3%, 47%, and 124% increase in depths of penetration is measured for AISI 1020, AISI 304, AISI 316, and Duplex 2205 steels, respectively, when activated flux is used. Also, maximum of 70% increase in the depth of penetration is further achieved when Ar along with 5% H-2 is used as the shielding gas compared to that when pure Ar is used. The constriction of arc column increases the energy density, which increases the depth of penetration. Measurement of microhardness and metallurgical observations are carried out for samples after TIG welding and activated tungsten inert gas (ATIG) welding and compared to observe the solidification phenomenon during the process.
机译:在钨极惰性气体(TIG)焊接中,在单道次焊接过程中可以达到有限的熔深。为了达到期望的熔深,必须显着降低焊接速度,从而降低生产率。在当前的工作中,对于不同的工件,即AISI 1020,AISI 304,AISI 316和Duplex 2205钢,在不同电流和保护气体成分下,评估了TiO2活化焊剂对渗透的影响。结果表明,对于此处考虑的所有工件材料,使用活化的助焊剂,其渗透深度均显着增加,而宽度/渗透率则有所降低。电流增加了熔深,但是,随着焊接电流的增加,焊剂的影响变得更加明显。当使用活性焊剂时,对于AISI 1020,AISI 304,AISI 316和Duplex 2205,分别测量到最大渗透深度增加37.8%,44.3%,47%和124%。而且,与使用纯Ar时相比,当将Ar与5%H-2一起用作保护气体时,还可进一步实现最大70%的熔深增加。弧形柱的收缩增加了能量密度,从而增加了穿透深度。在TIG焊和活性钨极惰性气体保护(ATIG)焊接后,对样品进行显微硬度测量和冶金观察,并进行比较以观察过程中的凝固现象。

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