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Gas tungsten arc welding of α + β titanium alloys: a review

机译:α+β钛合金的钨极气体保护电弧焊研究进展

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摘要

Titanium alloys used in aerospace structures require joints of high integrity to meet the design requirements. Gas tungsten arc welding (GTAW), laser beam welding (LBW) and electron beam welding (EBW) are all processes capable of creating fusion welded joints. Gas tungsten arc welding offers the potential to achieve welds of equal quality to EBW or LBW at much lower capital costs; however, the application of GTAW involves gaining an understanding of the complex process characteristics. This paper reviews the process characteristics for GTAW titanium alloys and compares these characteristics with EBW and LBW titanium alloys. The characteristics of active flux tungsten inert gas welding and keyhole mode GTAW, two recent developments to GTAW, are considered, as is keyhole mode plasma arc welding. These variants are capable of greater penetration and, in some cases, faster processing speeds than conventional GTAW. Finally, the current knowledge of weld microstructural development in cast and wrought α + β titanium alloys and the mechanical performance of such welded joints are examined. Notably, conduction mode GTAWs are shown to have comparable mechanical properties with EBWs in relation to both cast and wrought base metals.
机译:航空航天结构中使用的钛合金需要具有高完整性的接头才能满足设计要求。气体钨极电弧焊(GTAW),激光束焊接(LBW)和电子束焊接(EBW)都是能够创建熔焊接头的工艺。气体钨极电弧焊具有以较低的投资成本实现与EBW或LBW相同质量的焊接的潜力。但是,GTAW的应用涉及对复杂过程特征的理解。本文回顾了GTAW钛合金的工艺特性,并将这些特性与EBW和LBW钛合金进行了比较。活性通量钨极惰性气体保护焊和锁孔模式GTAW的特性是GTAW的两个最新发展,同时也考虑了锁孔模式等离子弧焊的特点。与常规GTAW相比,这些变体具有更大的穿透力,在某些情况下还具有更快的处理速度。最后,检验了铸造和锻造的α+β钛合金焊接微观结构的最新知识以及这种焊接接头的机械性能。值得注意的是,相对于铸造和锻造贱金属,导电模式GTAWs具有与EBW相当的机械性能。

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