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Three-dimensional modeling of heat transfer and fluid flow in laminar-plasma material re-melting processing

机译:层状等离子材料重熔过程中传热与流体流动的三维建模

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摘要

Modeling study is performed concerning the heat transfer and fluid flow for a laminar argon plasma jet impinging normally upon a flat workpiece exposed to the ambient air. The diffusion of the air into the plasma jet is handled by using the combined-diffusion-coefficient approach. The heat flux density and jet shear stress distributions at the workpiece surface obtained from the plasma jet modeling are then used to study the re-melting process of a carbon steel workpiece. Besides the heat conduction within the workpiece, the effects of the plasma-jet inlet parameters (temperature and velocity), workpiece moving speed, Marangoni convection, natural convection etc. on the re-melting process are considered. The modeling results demonstrate that the shapes and sizes of the molten pool in the workpiece are influenced appreciably by the plasma-jet inlet parameters, workpiece moving speed and Marangoni convection. The jet shear stress manifests its effect at higher plasma-jet inlet velocities, while the natural convection effect can be ignored. The modeling results of the molten pool sizes agree reasonably with available experimental data.
机译:进行了有关层流氩等离子体射流的传热和流体流动的建模研究,该射流通常撞击在暴露于环境空气的扁平工件上。通过使用组合扩散系数方法来处理空气向等离子流中的扩散。然后,通过等离子流建模获得的工件表面的热通量密度和射流剪切应力分布将用于研究碳钢工件的重熔过程。除了工件内部的热传导之外,还要考虑等离子流入口参数(温度和速度),工件移动速度,Marangoni对流,自然对流等因素对重熔过程的影响。建模结果表明,等离子流入口参数,工件移动速度和Marangoni对流会明显影响工件中熔池的形状和大小。射流剪切应力在较高的等离子射流入口速度下表现出其作用,而自然对流效应可以忽略。熔池尺寸的建模结果与可用的实验数据合理地吻合。

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