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Understanding Bead Hump Formation in Gas Metal Arc Welding Using a Numerical Simulation

机译:使用数值模拟了解气体金属电弧焊中的焊道驼峰形成

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摘要

Three-dimensional numerical simulations were conducted to study temperature distributions and fluid flows during formation of humped beads in high speed gas metal arc welding (GMAW). Based on simulation and experimental results, the physical mechanisms associated with humping phenomenon were investigated and two conditions responsible for hump formation were identified: the formation of thin liquid channel induced by surface tension pinching force and premature solidification of the melt in the thin channel that divides the weld pool into a front and rear portion. A strong backward fluid flow that produced an accumulation of melt at the rear of the weld pool increased the size of humps. Although surface tension was shown to be important in hump formation, Marangoni flow induced by negative surface tension gradients was not significant for hump formation. The simulation results clarified the fluid flow associated with two different hump shapes. Experimental welds without bead humping were made at a lower travel speed and were also simulated to illustrate the differences in heat and fluid flow from humped beads.
机译:进行了三维数值模拟,以研究高速气体金属电弧焊(GMAW)中形成隆起焊珠期间的温度分布和流体流动。在模拟和实验结果的基础上,研究了与驼峰现象有关的物理机制,并确定了导致驼峰形成的两个条件:由表面张力收缩力引起的稀薄液体通道的形成和在细小通道中熔体的过早凝固。将焊池分为前部和后部。强烈的向后流体流动会在焊池的后部积聚熔液,从而增加了隆起的尺寸。尽管表面张力在驼峰形成中很重要,但是由负表面张力梯度引起的Marangoni流量对于驼峰的形成并不重要。仿真结果阐明了与两种不同驼峰形状相关的流体流动。无焊缝隆起的实验焊缝以较低的行进速度进行,并且还进行了模拟,以说明焊缝隆起的热量和流体流动的差异。

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  • 来源
    《Metallurgical and Materials Transactions B》 |2007年第2期|305-319|共15页
  • 作者

    Min Hyun Cho; Dave F. Farson;

  • 作者单位

    Industrial Welding and Systems Engineering Department The Ohio State University Columbus OH 43210 USA;

    Industrial Welding and Systems Engineering Department The Ohio State University Columbus OH 43210 USA;

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  • 正文语种 eng
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