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Response surface approach to optimize the pulsed current gas tungsten arc welding parameters of Ti?6Al?4V titanium alloy

机译:响应面法优化Ti?6Al?4V钛合金的脉冲电流钨极电弧焊接参数

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摘要

Titanium alloy (Ti?6Al-?4V) is very widely used in the fabrication of advanced industrial equipment, combat vehicles, gas turbines, spacecraft and so on. The preferred welding process for titanium alloy is gas tungsten arc (GTA) welding due to its comparatively easier applicability and better economy. However, welding of titanium alloy leads to grain coarsening at the fusion zone and the heat-affected zone, and this often results in inferior weld mechanical properties and poor resistance to hot cracking. Hence, in this investigation an attempt has been made to refine the fusion zone microstructure of titanium alloy by using a pulsed current GTA welding process instead of a constant current GTA welding process. Further mathematical models were developed by means of a response surface method, which enabled the process parameters to be optimized to achieve a minimum grain size and maximum hardness in GTA welding of the alloy under study. The parameter optimization involved the use of a response surface, contour plots and Kuhn-Tucker conditions.
机译:钛合金(Ti 6 Al-4 V)非常广泛地用于制造先进的工业设备,战斗车辆,燃气轮机,航天器等。钛合金的首选焊接工艺是气体钨极电弧(GTA)焊接,因为它的适用性相对较容易且经济性更好。然而,钛合金的焊接导致在熔合区和热影响区的晶粒粗化,并且这通常导致焊​​接机械性能较差并且抗热裂性差。因此,在该研究中,已经尝试通过使用脉冲电流GTA焊接工艺代替恒定电流GTA焊接工艺来细化钛合金的熔合区显微组织。通过响应面方法开发了进一步的数学模型,该模型使工艺参数得以优化,从而在所研究合金的GTA焊接中实现了最小晶粒尺寸和最大硬度。参数优化涉及使用响应面,轮廓图和Kuhn-Tucker条件。

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