研究目的
To explore the mechanism of laser-induced surface damage on KDP crystals under nanosecond laser irradiation by developing a multi-physics coupling dynamics model.
研究成果
The multi-physics coupling model effectively describes the laser damage processes on KDP crystals, revealing the importance of surface defects in damage initiation and the role of thermal and fluid dynamics in damage evolution. The model's feasibility is verified by experimental results, providing insights for improving laser damage resistance of optical materials.
研究不足
The model does not consider the optical anisotropy of KDP crystals and the precise influence of temperature on material parameters. The experimental setup cannot directly measure the transient temperature of the local laser damaged area.
1:Experimental Design and Method Selection:
A multi-physics coupling dynamics model based on electromagnetic field, heat conduction, and fluid dynamics theories was established to simulate the laser damage processes.
2:Sample Selection and Data Sources:
KDP crystals with artificially induced surface defects were used for laser damage tests.
3:List of Experimental Equipment and Materials:
Nd:YAG pump laser, Vickers hardness tester, SEM for morphology observation.
4:Experimental Procedures and Operational Workflow:
Laser damage tests were performed on KDP surfaces with artificial cracks, and the transient dynamic behavior was captured using a pump and probe method.
5:Data Analysis Methods:
The morphology of damage sites was analyzed using SEM, and simulation results were compared with experimental data.
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