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An adaptive heat source model for finite-element analysis of keyhole plasma arc welding

机译:匙孔等离子弧焊有限元分析的自适应热源模型

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An adaptive model of the heat source in numerical simulation of the keyhole plasma arc welding (PAW) requires that the model take into consideration the larger aspect ratio of welds and the volumetric dis_tribution characteristic of heat intensity along the direction of the plate thickness. The available heat source models, either planar one like Gaussian or body ones like double-ellipsoidal and rotary Gaussian modes, are unable to describe the keyhole PAW process accurately. Based on the configuration feature of keyhole PAW welds, a combined heat source model is proposed for the numerical analysis of temperature fields in keyhole PAW process. It accounts for the keyhole effect indirectly and the volumetric distribu_tion characteristics of plasma heat intensity along the direction of the workpiece thickness. With this adaptive heat source model, finite-element analysis of temperature profile in keyhole PAW is conducted and the weld geometry is determined. The results show that the predicted geometry and locus of the fusion line in the keyhole PAW weld cross-section are in good agreement with the experimental mea_surements. It lays solid foundation for the process optimization, metallurgical analysis and thermal stress-strain simulation of keyhole PAW process.
机译:在键孔等离子弧焊(PAW)数值模拟中,热源的自适应模型要求该模型考虑较大的焊缝长宽比和沿板厚方向的热强度的体积分布特性。可用的热源模型,无论是平面模型(如高斯模型)还是实体模型(如双椭圆形和旋转高斯模型),都无法准确描述钥匙孔PAW过程。基于匙孔PAW焊缝的构型特点,提出了一种组合式热源模型,对匙孔PAW过程中的温度场进行数值分析。它间接地考虑了锁孔效应和等离子热强度沿工件厚度方向的体积分布特性。利用这种自适应热源模型,对匙孔PAW中的温度分布进行了有限元分析,并确定了焊接几何形状。结果表明,在钥匙孔PAW焊缝中,熔合线的预测几何形状和轨迹与实验测量值吻合良好。它为锁孔PAW工艺的工艺优化,冶金分析和热应力应变模拟奠定了坚实的基础。

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