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Simulation of vaporization in low fluence nanosecond laser ablation of aluminum alloy

机译:铝合金低流量纳秒激光消融汽化模拟

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This paper presents a multi-phase flow model for the nanosecond laser ablation of aluminum alloy at a low fluence based on finite volume method, considering gravity, recoil pressure, buoyancy and surface tension to describe vaporization. Actual morphology of ablation crater was measured by a laser scanning confocal microscope to verify the model. Results show that vaporization is the main ablation mechanism for 100ns laser ablation at low fluences, and the peak temperature is only 50% of critical temperature. Both the experimental and calculated crater have a wall-like bulge around the rim, as a result of impact of recoil pressure and resolidification of pushed liquid metal. The calculated depth and diameter of crater are in good agreement with the corresponding experimental measurement indicating the feasibility of the model.
机译:本文基于有限体积法,提出了一种基于有限体积法的铝合金纳秒激光消融的多相流动模型,考虑到重力,反冲压力,浮力和表面张力来描述蒸发。通过激光扫描共聚焦显微镜测量消融火山口的实际形态,以验证模型。结果表明,蒸发是100ns激光消融在低分流量下的主要消融机制,峰值温度仅为临界温度的50%。实验和计算的火山口均在轮辋周围具有壁状凸起,由于反冲压力和推动的液态金属的抗升压的影响。 Crater的计算深度和直径与指示模型可行性的相应实验测量非常一致。

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