揭示金属冷转移机理。

J Karimi, C Zhao
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引用次数: 0

摘要

冷金属转移(CMT)是一种开创性的进给系统,广泛应用于电弧增材制造(WAAM)和焊接。然而,流程优化仍然具有挑战性。尽管CMT已广泛应用于各个工业部门,但由于线材与熔融材料之间相互作用的复杂物理特性以及线材的高动态运动,人们对其潜在机制知之甚少。为了阐明CMT的复杂性和特征,我们在微秒的时间尺度上使用高速摄影技术探索了熔融材料在金属丝运动(提取和浸入循环)过程中的动态行为和解剖结构。我们揭示了在CMT过程中,熔池中有一个关键的驱动力和频繁的流或粒子喷射。本研究通过展示超高动态CMT的影响特征,促进工艺优化的进展,为WAAM和焊接做出贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Revealing the mechanism of cold metal transfer.

Cold metal transfer (CMT) is a pioneering feeding system widely used in wire-arc additive manufacturing (WAAM) and welding. However, process optimisation remains challenging. Although CMT has been extensively applied in various industrial sectors, its underlying mechanism is poorly understood because of the complex physics of the interactions between the wire and molten material and the wire's highly dynamic motion. To elucidate the complexity and features of CMT, we explore the dynamic behaviour and anatomy of molten materials during wire motions (withdrawal and dipping cycles) using high-speed photography at a timescale of microseconds. We reveal a crucial driving force in the melt pool and the frequent ejection of streams or particles during CMT. This study contributes to WAAM and welding by presenting the influential features of ultra-high-dynamics CMT and facilitating the progression of process optimisation.

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