首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Three-dimensional modelling of the laser-induced plasma plume characteristics in laser welding
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Three-dimensional modelling of the laser-induced plasma plume characteristics in laser welding

机译:激光焊接中激光诱导的等离子体羽流特性的三维建模

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摘要

Modelling results are presented concerning the spatial distribution of plasma parameters in a laser-induced plasma plume with laser welding as the research background. In the modelling, the plasma plume characteristics are affected by many factors, such as the temperature and flow velocity of the metal vapour leaving the welded workpiece surface, the velocity of the shielding gas injected coaxially with the laser beam, the velocity of the assisting gas injected laterally with respect to the workpiece, and the energy absorption and radiation heat loss of the plasma plume. Typical computed distributions of temperature, velocity, vapour concentration, absorption coefficient and the refraction index within the plasma plume are presented with the continuous-wave (CW) CO2 laser welding of an iron workpiece as the calculation example. The predicted temperatures of the plasma plume are shown to be reasonably consistent with the corresponding experimental data. It is also shown that the metal-vapour/shielding-gas momentum ratio plays an important role in determining the height of the plasma plume formed in the laser welding. Due to the cooling effect of the shielding gas, the dimensions of the plasma plume will become smaller and thus laser absorption and refraction by the plasma plume can be reduced by increasing the shielding-gas velocity. The laterally injected assisting gas may also significantly affect the plasma plume and thus can be used to control the effect of the laser-induced plasma plume on the laser welding process. [References: 23]
机译:提出了以激光焊接为研究背景的激光诱导等离子体羽流中等离子体参数空间分布的建模结果。在建模中,等离子体羽流特性受许多因素影响,例如离开焊接工件表面的金属蒸气的温度和流速,与激光束同轴注入的保护气体的速度,辅助气体的速度相对于工件横向注入,等离子体羽流的能量吸收和辐射热损失。以铁工件的连续波(CW)CO2激光焊接为计算示例,给出了等离子羽内温度,速度,蒸气浓度,吸收系数和折射率的典型计算分布。等离子体羽的预测温度显示为与相应的实验数据合理地一致。还显示出金属蒸气/保护气体动量比在确定在激光焊接中形成的等离子羽流的高度中起重要作用。由于保护气体的冷却作用,等离子体羽流的尺寸将变小,因此可以通过增加保护气体的速度来减少等离子体羽流的激光吸收和折射。横向注入的辅助气体还可以显着影响等离子体羽流,因此可以用来控制激光诱导的等离子体羽流对激光焊接过程的影响。 [参考:23]

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