首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >The effects of turbulence on molten pool transport during melting and solidification processes in continuous conduction mode laser welding of copper-nickel dissimilar couple
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The effects of turbulence on molten pool transport during melting and solidification processes in continuous conduction mode laser welding of copper-nickel dissimilar couple

机译:铜-镍异种夫妇连续传导模式激光焊接中湍流对熔体和凝固过程中熔池输运的影响

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摘要

The melting and solidification stages of a continuous copper-nickel dissimilar metal conduction mode laser welding have been simulated numerically in this study. The heat, mass and momentum transports in molten metal pool have been analysed using both laminar and turbulent flow models separately for the same process parameters. The phase change aspects related to solidification and melting are accounted for by a modified enthalpy-porosity technique while the turbulent transport is modelled by a high Reynolds number k-s model. It has been observed that temperature fields obtained from both laminar and turbulent transport simulations are qualitatively similar to each other. The molecular thermal diffusivity of the molten metal mixture is found to be in the same order of magnitude as eddy thermal diffusivity, as a result of which the thermal field gets marginally affected by fluid turbulence. By contrast, eddy viscosity remains much greater than molecular viscosity, which leads to greater amount of momentum diffusion in the case of a turbulent molten metal pool, in comparison to that obtained from the corresponding laminar simulation. This is reflected in the reduction in maximum velocity magnitude in the turbulent simulation in comparison to the maximum velocity obtained from laminar simulation. In the case of species transport, the turbulent mass diffusivity is found to be about 10~7-10~8 times greater than molecular mass diffusivity. As a result, the species field in turbulent simulation shows characteristics of better mixing between two dissimilar molten metals than the species field obtained using the laminar transport model. The species distribution obtained from turbulent transport is shown to be in better agreement with experimental data reported in literature than the corresponding mass fraction distribution obtained from laminar simulation. It is also found that species distribution in the molten pool is principally determined by advective and diffusive transport during the melting stage and species transport by advection and eddy diffusion in turbulent pool increasingly weakens with decreasing temperature during the cooling following the laser melting stage.
机译:在这项研究中,数值模拟了连续铜镍异种金属传导模式激光焊接的熔化和凝固阶段。对于相同的工艺参数,已经分别使用层流模型和湍流模型对熔融金属池中的热量,质量和动量传输进行了分析。与凝固和熔化有关的相变方面是通过改进的焓-孔隙率技术解决的,而湍流输运是通过高雷诺数k-s模型建模的。已经观察到,从层流和湍流传输模拟获得的温度场在质量上彼此相似。发现熔融金属混合物的分子热扩散率与涡流热扩散率处于相同的数量级,因此,热场受到流体湍流的影响很小。相比之下,涡流粘度仍然远大于分子粘度,与从相应的层流模拟获得的结果相比,在湍流的熔融金属池中,动量扩散的量更大。与从层流模拟获得的最大速度相比,这反映在湍流模拟中最大速度幅值的减小。在物质运输的情况下,湍流质量扩散率大约是分子质量扩散率的10〜7-10〜8倍。结果,与使用层流传输模型获得的物种场相比,湍流模拟中的物种场显示出两种不同熔融金属之间更好混合的特性。与从层流模拟获得的相应质量分数分布相比,从湍流输运获得的物种分布与文献报道的实验数据显示出更好的一致性。还发现,熔池中物质的分布主要由熔化阶段的对流和扩散传输决定,而湍流池中对流和涡流扩散的物质传输随着激光熔化阶段冷却后温度的降低而逐渐减弱。

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