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Measurement of arc pressure and shield gas pressure effect on surface of molten pool in TIG welding

机译:在TIG焊接中测量熔池表面电弧压力和保护气体压力的影响

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摘要

Tungsten inert gas (TIG) welding is most frequently used for arc study because it is clean and easy to control welding factor. Many researchers have been focused on the plasma stream to find out the relationship between vertex angle and penetration of the tungsten electrode in TIG welding. Moreover, researchers studied the characteristics of vertex angle and arc pressure and heat flux distribution of the tungsten electrode. In addition, they have carried out factors that have influence on the behaviour of the molten pool. Previous studies assumed that arc pressure was dominant for the force that physically works on the surface of the molten pool, neglecting the shield gas pressure. In addition, they have been focused on the protection of molten weld pool from exposure to the atmosphere. The object of this study is to investigate the effect of shield gas pressure on the surface of the molten pool by measuring the distribution of arc pressure and shield gas pressure compared with arc physical results of previous researches. In this study, we measured the distribution of arc pressure and shield gas pressure on the water cooled copper plate by changing the setting shield gas pressure and shield gas cup inside diameter. As the setting shield gas pressure increased and the shield gas cup diameter decreased, the arc radius got narrower due to the thermal pinch effect. Maximum arc pressure was slightly affected by setting the shield gas pressure and shield gas cup diameter. However, the shield gas pressure on arc surroundings was raised with the increasing setting shield gas pressure and the decreasing gas cup inside diameter. Orbital welding with convex back bead was successfully performed through molten pool control by shield gas pressure adjustment.
机译:钨极惰性气体保护(TIG)焊接最常用于电弧研究,因为它清洁且易于控制焊接系数。许多研究人员一直专注于等离子体流,以发现顶角和钨极氩弧焊中钨电极的熔深之间的关系。此外,研究人员研究了钨极的顶角,电弧压力和热通量分布的特性。此外,他们还进行了影响熔池性能的因素。先前的研究假设电弧压力是物理作用于熔池表面的力的主要来源,而忽略了保护气体的压力。此外,他们一直致力于防止熔融焊池暴露于大气中。本研究的目的是通过测量电弧压力和保护气体压力的分布,并与先前研究的电弧物理结果进行比较,以研究保护气体压力对熔池表面的影响。在本研究中,我们通过更改设置的保护气体压力和保护气体杯内径来测量水冷铜板上电弧压力和保护气体压力的分布。随着设定保护气体压力的增加和保护气体杯直径的减小,由于热收缩效应,电弧半径变窄。设置保护气压力和保护气杯直径会稍微影响最大电弧压力。但是,随着设置保护气体压力的增加和气杯内径的减小,电弧周围的保护气体压力也随之升高。通过保护气体压力调节,通过熔池控制成功地进行了凸背焊缝的轨道焊接。

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