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首页> 外文期刊>International Journal of Heat and Mass Transfer >About the influence of a steady magnetic field on weld pool dynamics in partial penetration high power laser beam welding of thick aluminium parts
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About the influence of a steady magnetic field on weld pool dynamics in partial penetration high power laser beam welding of thick aluminium parts

机译:关于厚铝零件局部穿透大功率激光束焊接中稳定磁场对焊池动力学的影响

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摘要

A multi-physics numerical model was developed to investigate the influence of a steady magnetic field aligned perpendicular to the welding direction during partial penetration high power laser beam welding of aluminium in downhand position. Three-dimensional heat transfer, fluid dynamics including phase transition and electromagnetic field partial differential equations were successfully solved with the finite element differential equation solver COMSOL Multiphysics 4.2. The implemented material model used temperature-dependent properties up to evaporation temperature. Marangoni convection in the surface region of the weld pool, natural convection due to the gravitational field and latent heat of solid-liquid phase transition were taken into account. Solidification was modelled by the Carman-Kozeny equation for porous media morphology. The flow pattern in the melt as well as the weld bead geometry were significantly changed by the induced Lorentz force distribution in the liquid metal. It reveals that the application of a steady magnetic field to laser beam welding with corresponding Hartmann numbers Ha~2 as 10~4 allows for a suppression of the characteristic wineglass-shape of the weld cross section caused by thermocapillary flow. The numerical results are in good agreement with experimental results obtained with welding of AlMg3 with a 16 kW disc laser. The steady magnetic field was delivered by permanent magnets mounted on both lateral sides of the weld specimen. The maximum magnetic flux density was around 500 mT. It shows, that the applied magnetic field has a predominant dissipating effect on the weld pool dynamics independently of its polarity.
机译:建立了一个多物理场的数值模型,以研究垂直于焊接方向排列的稳定磁场在向下位置进行铝的部分穿透大功率激光束焊接过程中的影响。使用有限元微分方程求解器COMSOL Multiphysics 4.2成功解决了三维传热,流体动力学(包括相变)和电磁场偏微分方程的问题。实施的材料模型使用的是取决于温度的特性,直至蒸发温度。考虑了熔池表面区域的Marangoni对流,重力场引起的自然对流以及固-液相转变的潜热。通过Carman-Kozeny方程对凝固介质的多孔介质形态进行建模。熔融金属中的流动模式以及焊缝几何形状因液态金属中产生的洛伦兹力分布而显着改变。结果表明,在激光束焊接中应用相应的哈特曼数Ha〜2为10〜4的稳定磁场可以抑制由热毛细流动引起的焊缝横截面的酒杯形。数值结果与用16 kW圆盘激光器焊接AlMg3获得的实验结果非常吻合。稳定磁场由安装在焊接试样两侧的永久磁铁提供。最大磁通密度约为500 mT。它表明,所施加的磁场对焊池动力学具有主要的耗散效应,而与极性无关。

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