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首页> 外文期刊>Metallurgical and Materials Transactions A >Heat Transfer and Fluid Flow during Gas-Metal-Arc Fillet Welding for Various Joint Configurations and Welding Positions
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Heat Transfer and Fluid Flow during Gas-Metal-Arc Fillet Welding for Various Joint Configurations and Welding Positions

机译:各种接头结构和焊接位置的气-金属-电弧角焊期间的热传递和流体流动

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摘要

Gas-metal-arc (GMA) fillet welding is one of the most commonly used welding processes in the industry. This welding process is characterized by the complex joint geometry, a deformable weld pool surface, and the addition of hot metal droplets. In this work, a three-dimensional numerical heat-transfer and fluid-flow model is developed to capture the effects of the tilt angle of the fillet joint and the welding positions, i.e., V, L, and other configurations on the temperature profiles, velocity fields, weld pool shape, weld pool free surface profile, thermal cycles, and cooling rates during GMA welding in spray mode. The governing equations of conservation of mass, momentum, and energy are solved using a boundary fitted curvilinear coordinate system. The weld pool free surface deformation is calculated by minimizing the total surface energy. A dimensional analysis is performed to understand the importance of heat transfer by conduction and convection and the role of various driving forces on convection in the liquid weld pool. The computed shape and size of the fusion zone, finger penetration characteristic of the GMA welds, and the solidified free surface profile are in fair agreement with the corresponding experimental results. The calculated cooling rates are also in good agreement with independent experimental data. The results reported here indicate a significant promise for understanding the effect of joint orientations and welding positions on weld pool shape, size, and the cooling rates based on fundamental principles of transport phenomena.
机译:气弧焊(GMA)角焊是业内最常用的焊接工艺之一。这种焊接工艺的特征在于复杂的接头几何形状,可变形的熔池表面以及添加铁水滴。在这项工作中,建立了三维数值传热和流体流动模型,以捕获角焊缝倾斜角和焊接位置(即V,L和其他配置)对温度曲线的影响,在喷涂模式下进行GMA焊接时的速度场,焊缝形状,焊缝自由表面轮廓,热循环和冷却速率。使用边界拟合曲线坐标系求解质量,动量和能量守恒的控制方程。通过最小化总表面能来计算焊池的自由表面变形。进行了尺寸分析,以了解通过传导和对流进行传热的重要性,以及各种驱动力在液体焊池中对流的作用。计算出的熔合区的形状和尺寸,GMA焊缝的指尖穿透特性以及固化的自由表面轮廓与相应的实验结果完全吻合。计算出的冷却速率也与独立的实验数据非常吻合。此处报告的结果表明,根据传输现象的基本原理,了解接头方向和焊接位置对焊池形状,尺寸和冷却速率的影响具有重大前景。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2007年第3期|506-519|共14页
  • 作者

    A. Kumar; T. DebRoy;

  • 作者单位

    Department of Materials Science and Engineering The Pennsylvania State University University Park PA 16802 USA;

    Department of Materials Science and Engineering The Pennsylvania State University University Park PA 16802 USA;

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  • 原文格式 PDF
  • 正文语种 eng
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