积尘对镜面反射特性的影响研究

    Study on the influencing factors of dust specular reflection rate based on response surface method

    • 摘要: 为了评价积尘对镜面反射特性影响程度并预测积尘环境中镜面反射率的变化趋势,利用时域有限差分法对不同积尘状态下的镜面红外反射率进行仿真计算,基于响应面法构建了反射率多因素影响模型,通过双向反射分布函数测量实验验证了模型准确性。实验结果表明:在1.55 μm-5 μm波长范围,镜面反射率随波长增加而增大,随积尘密度增加而显著下降,随入射角增大而明显降低;积尘密度、波长和入射角对镜面反射率有明显的协同影响,对于50 mg/m2积尘密度,入射角55°时,波长从1.55 μm-5 μm的反射率相对增幅为15°是入射角的7.5倍;对于3.6 μm波长,积尘密度为100 mg/m2时,入射角从15°-55°的反射率降幅是无尘时的3倍。研究结果能够为光学系统杂散光分析提供数据支持,为反射镜等光学元件清洁维护提供指导。

       

      Abstract: To evaluate the impact of dust accumulation on specular reflection characteristics and predict the trend of specular reflectance changes in dusty environments, the finite-difference time-domain (FDTD) method was employed to simulate the infrared reflectance of a specular surface under various dust accumulation conditions. Based on the response surface methodology (RSM), a multi-factor influence model for reflectivity was constructed, and the model's accuracy was validated through bidirectional reflectance distribution function (BRDF) measurement experiments. The findings indicate that within the wavelength range of 1.55 μm to 5 μm, the specular reflectance increases with wavelength, decreases significantly with increasing dust density, and diminishes notably with increasing incident angle. Dust accumulation density, wavelength, and incident angle exhibit a significant synergistic effect on specular reflectance. For instance, at a dust accumulation density of 50 mg/m2, when the incident angle is 55°, the relative increase in reflectance from 1.55 μm to 5 μm in wavelength is 7.5 times greater than that observed at an incident angle of 15°. Additionally, for a wavelength of 3.6 μm, when the dust accumulation density increases to 100 mg/m2, the reduction in reflectance from an incident angle of 15° to 55° is threefold compared to the dust-free condition. These results can provide data support for stray light analysis in optical systems and offer guidance for the cleaning and maintenance of optical components such as mirrors.

       

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