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Numerical analysis of molten metal behavior and undercut formation in high-speed GMAW

机译:高速改性熔融金属行为及底切形成的数值分析

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摘要

A computational fluid dynamics model was established to investigate the undercut formation in high speed gas metal arc welding (GMAW). A double-ellipse integrated "arc current density-arc pressure-electromagnetic forcearc heat" distribution model, which could be self-adaptive to weld pool surface evolution, was developed. The multi-coupling transport phenomena in weld pool were simulated, and the effect of driving forces on the behaviors of molten metal and the formation of undercut was analyzed quantitatively. The results show that the high-velocity backward molten metal flow, large-size gouging region and prematurely solidified thin metal layer at weld toe were typical processes that initiated undercut. The evolution of undercut morphology was determined by the characteristics of inertia force, hydrostatic pressure and arc pressure in the different stages. Based on Buckingham-pi theorem, the dimensionless growth rate of undercut area was a parabolic function of a dimensionless group including characteristics of stress state, molten metal flow and morphology of weld pool. This study clarified the physical origin of undercut defect in GMAW and might also provide some basic guidelines for its suppression.
机译:建立了高速气体保护焊(GMAW)咬边形成的计算流体力学模型。提出了一种能自适应熔池表面演变的双椭圆积分“电弧电流密度-电弧压力-电磁力-电弧热”分布模型。模拟了熔池中的多重耦合传输现象,定量分析了驱动力对熔池中金属行为和咬边形成的影响。结果表明,高速反向金属液流动、大尺寸气刨区和焊趾处过早凝固的薄金属层是引起咬边的典型过程。不同阶段的惯性力、静水压力和电弧压力特征决定了咬边形态的演变。基于白金汉-皮定理,咬边区域的无量纲增长率是一个无量纲群的抛物线函数,包括应力状态、熔化金属流动和熔池形态的特征。本研究阐明了GMAW中咬边缺陷的物理来源,并可能为其抑制提供一些基本指导。

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