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首页> 外文期刊>International Journal of Heat and Mass Transfer >Scaling weld or melt pool shape induced by thermocapillary convection
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Scaling weld or melt pool shape induced by thermocapillary convection

机译:热毛细管对流引起的结垢焊缝或熔池形状

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摘要

The molten pool shape and transport variables induced by thermocapillary force during welding (or melting) of workpieces, such as pure iron, titanium, high speed steel and stainless steel alloys, can be self-con-sistently predicted from scale analysis. Determination of the molten pool shape and transport variables is crucial due to their close relationship with the microstructures, strength and properties of the fusion zone. In this study, the pool excludes a strongly wavy bottom and the surface velocity profile has two peaks valid for Prandtl numbers lying between 0.3 and unity. The surface tension coefficient is negative and suitable for all pure liquid metals and alloys containing minor surface active solutes, giving rise to an outward surface flow. In view of high Marangoni number, the domain of scaling is divided into the hot and cold corner regions, boundary layers on the solid-liquid interface and ahead of the melting front. The results find that the width and depth of the pool, peak and secondary peak surface velocities, and maximum temperatures in the hot and cold corner regions can be explicitly and separately determined as functions of working variables, or Marangoni, Prandtl, Peclet, Stefan, and beam power numbers and solid-to-liquid thermal conductivity ratio. The scaled results agree with numerical data and available experimental data. This work has academic and practical importance. Successful scaling not only reveals physical mechanisms, but also provides quantitative predictions of the fusion zone shapes and transport variables prior to melting or welding.
机译:可以通过比例分析自洽地预测由工件(例如纯铁,钛,高速钢和不锈钢合金)的焊接(或熔化)过程中的热毛细作用力引起的熔池形状和传输变量。熔池形状和传输变量的确定至关重要,因为它们与熔合区的微观结构,强度和特性密切相关。在这项研究中,该池不包括强波浪状的底部,并且表面速度剖面具有两个峰值,有效值在0.3到1之间。表面张力系数为负,适用于所有含有少量表面活性溶质的纯液态金属和合金,从而产生向外的表面流动。考虑到高的马兰戈尼数,结垢的范围分为热和冷的拐角区域,固-液界面上的边界层和熔化前沿之前的边界层。结果发现,可以根据工作变量或Marangoni,Prandtl,Peclet,Stefan,射束功率数和固液导热系数。标定结果与数值数据和可用的实验数据一致。这项工作具有学术和实践意义。成功的缩放比例不仅揭示了物理机制,而且还提供了熔化或焊接之前熔合区形状和传输变量的定量预测。

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