Study on the influence of side-blown airflow velocity on plasma and combustion waves generated from fused silica induced by combined pulse laser

Hao Yu, Jixing Cai, Hongtao Mao, Yunpeng Wang, Yi Li, Shun Li
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Abstract

This study examines the impact of variations in side-blowing airflow velocity on plasma generation, combustion wave propagation mechanisms, and surface damage in fused silica induced by a combined millisecond-nanosecond pulsed laser. The airflow rate and pulse delay are the main experimental variables. The evolution of plasma motion was recorded using ultrafast time-resolved optical shadowing. The experimental results demonstrate that the expansion velocity of the plasma and combustion wave is influenced differently by the side-blowing airflow at different airflow rates (0.2 Ma, 0.4 Ma, and 0.6 Ma). As the flow rate of the side-blow air stream increases, the initial expansion velocity of the plasma and combustion wave gradually decreases, and the side-blow air stream increasingly suppresses the plasma. It is important to note that the target vapor is always formed and ionized into plasma during the combined pulse laser action. Therefore, the side-blown airflow alone cannot completely clear the plasma. Depending on the delay conditions, the pressure of the side-blowing airflow and the influence of inverse Bremsstrahlung radiation absorption and target surface absorption mechanisms can lead to a phenomenon known as double combustion wave when using a nanosecond pulse laser. Both simulation and experimental results are consistent, indicating the potential for further exploration of fused silica targets in the laser field.
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研究侧吹气流速度对组合脉冲激光诱导熔融石英产生的等离子体和燃烧波的影响
本研究探讨了侧吹气流速度变化对等离子体生成、燃烧波传播机制以及毫秒-纳秒联合脉冲激光诱导熔融石英表面损伤的影响。气流速率和脉冲延迟是主要的实验变量。利用超快时间分辨光学阴影技术记录了等离子体运动的演变过程。实验结果表明,在不同的气流速率(0.2 Ma、0.4 Ma 和 0.6 Ma)下,等离子体的膨胀速度和燃烧波受侧吹气流的影响不同。随着侧吹气流流速的增加,等离子体和燃烧波的初始膨胀速度逐渐减小,侧吹气流对等离子体的抑制作用越来越大。值得注意的是,在联合脉冲激光作用过程中,目标蒸气总是会形成并电离成等离子体。因此,仅靠侧吹气流无法完全清除等离子体。根据延迟条件的不同,侧吹气流的压力以及反轫致辐射吸收和靶表面吸收机制的影响会在使用纳秒脉冲激光时导致一种被称为双重燃烧波的现象。模拟和实验结果是一致的,这表明在激光领域进一步探索熔融石英靶的潜力是巨大的。
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