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A simplified elliptic paraboloid heat source model for autogenous GTAW process

机译:自体GTAW过程的简化椭圆抛物面热源模型

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The applicability of a welding process depends on the rate of heat input, which determines the residual stresses, the heat affected zone and the microstructural changes in the base material. An adequate approach of heat input through a heat source represents a crucial step in the welding thermal field simulation affecting the accuracy of mechanical and microstructural studies. This research work proposes a volumetric-moving heat source for the Gas Tungsten Arc Welding process (GTAW) based on an elliptic paraboloid geometry capable of representing shallow and deep, wide and narrow fusion zones, considering as shape parameters of the heat source, the fusion width and depth penetration. The interaction of the melting material flow in the weldpool and the heat transfer process were analyzed taking into account the effect of convective heat transfer in the heat input distribution in the fusion zone, and the weldpool shape variations during its displacement. The mathematical model for the GTAW thermal field was solved numerically by means of Finite Volume Method (FVM). The elliptic paraboloid model provided a comparable heat input to the classic double ellipsoid model. The estimated temperatures and the predicted geometry of cross-section weld bead by the proposed model are in a good agreement with experimental results.
机译:焊接过程的适用性取决于输入热量的速率,热量输入速率决定了残余应力,热影响区和基材的微观结构变化。适当的通过热源输入热量的方法代表了影响焊接机械和微观结构研究准确性的焊接热场模拟中的关键步骤。这项研究工作提出了一种基于椭圆形抛物面几何形状的气体钨极氩弧焊工艺(GTAW)的体积移动热源,该椭圆形抛物面几何形状能够代表浅,深,宽和窄的熔合区,并将熔合作为热源的形状参数宽度和深度穿透。考虑到对流换热对熔合区热输入分布的影响以及焊池在位移过程中形状的变化,分析了焊池中熔融材料流与传热过程的相互作用。通过有限体积法(FVM)数值求解了GTAW热场的数学模型。椭圆抛物面模型提供了与经典双椭圆体模型相当的热量输入。所提出的模型所估计的截面焊缝的温度和几何形状与实验结果非常吻合。

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