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A k―ε Model for Turbulent Weld Pool Convection in Gas Metal Arc Welding Process

机译:气体金属弧焊工艺湍流焊接池对流的K-ε模型

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In this paper, we present a modified k―εmodel capable of addressing turbulent weld-pool convection in a GMAW process, taking into account the morphology of the phase change interface during a Gas Metal Arc Welding (GMAW) process. A three-dimensional turbulence mathematical model has been developed to study the heat transfer and fluid flow within the weld pool by considering the combined effect of three driving forces, viz., buoyancy, Lorentz force and surface tension (Marangoni convection). Mass and energy transports by the droplets are considered through the thermal analysis of the electrode. The falling droplet's heat addition to the molten pool is considered to be a volumetric heat source distributed in an imaginary cylindrical cavity ("cavity model") within the weld pool. This nature of heat source distribution takes into account the momentum and the thermal energy of the falling droplets. The numerically predicted weld pool dimensions both from turbulence and laminar models are then compared with the experimental post-weld results sectioned across the weld axis. The above comparison enables us to analyze the overall effects of turbulent convection on the nature of heat and fluid flow and hence on the weld pool shape/size during the arc welding processes.
机译:在本文中,我们介绍了一种改进的k-εmodel,其能够在GMAW过程中寻址湍流焊接池对流,考虑到气金属弧焊(GMAW)工艺期间的相变界面的形态。已经开发了一种三维湍流数学模型来研究焊接池内的传热和流体流动,考虑到三个驱动力,VIZ,浮力,洛伦兹力和表面张力(Marangoni对流)。通过电极的热分析考虑液滴的质量和能量传输。下降液滴对熔池的散热被认为是分布在焊接池内的假想圆柱腔(“腔模型”)中的容积热源。热源分布的这种性质考虑了下降液滴的动量和热能。然后将来自湍流和层状模型的数值预测的焊接池尺寸与焊接轴线截起的实验后焊接结果进行比较。以上比较使我们能够分析湍流对流对热和流体流性质的整体影响,因此在弧焊过程中的焊接池形状/尺寸上。

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