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兵工学报 ›› 2025, Vol. 46 ›› Issue (3): 240278-.doi: 10.12382/bgxb.2024.0278

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两反式光学系统光机集成仿真与成像质量预测代理模型构建

薛奋琪1,2, 巩浩1,2,3,*(), 刘检华1,2,3, 朱荣全4, 谢惟楚1, 雷静婷1   

  1. 1 北京理工大学 机械与车辆学院, 北京 100081
    2 北京理工大学 唐山研究院, 河北 唐山 063015
    3 河北省智能装配与检测技术重点实验室, 河北 唐山 063015
    4 北京遥感设备研究所, 北京 100854
  • 收稿日期:2024-04-12 上线日期:2025-03-26
  • 通讯作者:
  • 基金资助:
    国家重点研发计划项目(2022YFB3403800); 国家重点研发计划项目(2022YFB3304200)

Integrated Optomechanical Simulation and Surrogate Model Construction for Imaging Quality Prediction of Two-mirror Optical System

XUE Fenqi1,2, GONG Hao1,2,3,*(), LIU Jianhua1,2,3, ZHU Rongquan4, XIE Weichu1, LEI Jingting1   

  1. 1 School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China
    2 Tangshan Research Institute, Beijing Institute of Technology, Tangshan 063015, Hebei, China
    3 Hebei Key Laboratory of Intelligent Assembly and Detection technology, Tangshan 063015, Hebei, China
    4 Beijing Institute of Remote Sensing Equipment, Beijing 100854, China
  • Received:2024-04-12 Online:2025-03-26

摘要:

两反式光学系统广泛应用于空间遥感、探测制导等领域,装配是影响光学系统成像质量的关键环节,当前各种装配误差与光学系统成像质量之间的关联关系缺少系统研究,无法为光学系统实时装调提供支撑。提出两反光学系统装配与成像的联合仿真方法。采用有限元仿真方法获得镜面面形误差,利用Zernike多项式对其进行精确拟合,通过光学产品设计与分析软件对包含Zernike多项式的镜面变形误差和装配位姿偏差进行光路成像仿真,以能量集中度作为成像质量定量评价指标,获得不同装配误差条件下的光学系统成像质量数据。建立包含局部和全局混合核函数的支持向量回归(Support Vector Regression,SVR)代理模型,对装配误差和成像质量之间的关联关系进行精确拟合。研究结果表明:与单一核函数/无核函数的SVR模型相比,所建立的混合核函数SVR代理模型具有最小的成像质量预测误差(平均预测误差仅有6.51%);所提装配与成像联合仿真方法和混合核函数SVR代理模型,能够为不同装配误差条件下的光学系统实时装调提供辅助支撑。

关键词: 光学系统, 装配误差, 能量集中度, 支持向量回归代理模型, 混合核函数

Abstract:

The two-mirror optical system is widely used in the fields and space remote sensing,detection,guidance and so on.Assembly is a key step that impacts the imaging quality of optical system.Currently,there is a lack of systematic research on the correlation between various assembly errors and imaging quality of optical system,which hinders real-time adjustment of optical system.In this study,a joint simulation method is proposed for the assembly and imaging of two-mirror optical system.This method involves using finite element simulation to obtain mirror surface figure errors,followed by precise fitting using Zernike polynomials.Subsequently,optical design and analysis software is employed to conduct the light path imaging simulations for the mirror surface figure errors fitted by Zernike polynomials and the assembly position deviations.The energy concentration degree serves as a quantitative evaluation index for assessing the imaging quality of optical system under different assembling error conditions.Furthermore,a support vector regression (SVR) surrogate model that incorporates both local and global mixed kernel functions is established to accurately capture the correlation between assembly errors and imaging quality.Research results indicate that the mixed kernel function SVR surrogate model proposed in the paper exhibits the smallest imaging quality prediction error with an average prediction error of only 6.51% compared to single kernel function or no kernel function SVR models.The proposed joint simulation method for assembly and imaging,along with the mixed kernel function SVR surrogate model,provides auxiliary support for real-time adjustment of optical systems under varying assembly error conditions.

Key words: optical system, assembly error, energy concentration, support vector regression surrogate model, mixed kernel function

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