Miao Xinxiang, Zhou Guorui, Zhu Qihua, Jiang Xiaodong, Jiang Yong, Yao Caizhen, Jiang Yilan, Niu Longfei, Xiang Siheng, Chen Jiaxuan
Laser Fusion Research Center, China Academy of Engineering Physics, Mianyang 621900, China.
School of Mathematics and Physics, Southwest University of Science and Technology, Mianyang 621010, China.
Materials (Basel). 2023 Nov 29;16(23):7415. doi: 10.3390/ma16237415.
Aerosol particle contamination in high-power laser facilities has become a major cause of internal optical component damage resistance and service life reduction. In general, contaminating particles primarily originate from stray light; therefore, it is crucial to investigate the mechanism and dynamics of the dynamic contaminating particle generation to control the cleanliness level. In this study, corresponding research was conducted on experiments and theory. We investigated the particle generation and surface composition modification under the action of a laser. We employed various surface analytical methods to identify the possible variations in the aluminum alloy surface during laser irradiations. A theoretical model for particle ejection from aluminum alloy surfaces was established by taking the adhesion force and laser cleaning force (due to thermal expansion) into account. The results show that the threshold energies for contamination particle generation and damage are around 0.1 and 0.2 J/cm, respectively. Subsurface impurities are the primary source of particles, and particle adhesion density is related to surface roughness. Pollution particle generation and splashing processes include temperature increases, phase changes, impact diffusion, and adhesion. The results provide a reference for the normal operation of high-energy laser systems. The results also suggest that the laser irradiation pretreatment of aluminum alloy surfaces is essential to improve the cleanliness level.
高功率激光装置中的气溶胶颗粒污染已成为导致内部光学元件抗损伤能力下降和使用寿命缩短的主要原因。一般来说,污染颗粒主要源自杂散光;因此,研究动态污染颗粒的产生机制和动力学对于控制清洁度水平至关重要。在本研究中,我们进行了相应的实验和理论研究。我们研究了激光作用下的颗粒产生和表面成分改性。我们采用了各种表面分析方法来识别激光辐照期间铝合金表面可能发生的变化。通过考虑附着力和激光清洗力(由于热膨胀),建立了铝合金表面颗粒喷射的理论模型。结果表明,污染颗粒产生和损伤的阈值能量分别约为0.1和0.2 J/cm。亚表面杂质是颗粒的主要来源,颗粒附着密度与表面粗糙度有关。污染颗粒的产生和飞溅过程包括温度升高、相变、冲击扩散和附着。这些结果为高能激光系统的正常运行提供了参考。结果还表明,铝合金表面的激光辐照预处理对于提高清洁度水平至关重要。