TY - JOUR
T1 - Assembly accuracy prediction and process parameter optimization of dual-mirror optical system considering in-service environment
AU - He, Fang
AU - Wang, Xingjie
AU - Liu, Jianhua
AU - Gong, Hao
AU - Xue, Fenqi
N1 - Publisher Copyright:
© 2026 IOP Publishing Ltd. All rights, including for text and data mining, AI training, and similar technologies, are reserved. This article is available under the terms of the IOP-Standard License.
PY - 2026/8
Y1 - 2026/8
N2 - As a critical component of high-precision photoelectronic equipment, the coaxial dual-mirror optical system’s imaging stability in service environments is of paramount importance. An assembly accuracy prediction and process parameter optimization method for dual-mirror optical systems is proposed, aiming at stable in-operation performance. First, a finite element model of the dual-mirror optical system incorporating threaded structures is established. The bolt tightening process is simulated, and the influence of coupled-field conditions—vibration, temperature, and microgravity—on mirror surface deformation is analyzed. Second, mirror surface deformation is fitted using Zernike polynomials, and Zemax optical simulation is integrated. A complete optomechanical coupling analysis workflow is thus constructed, linking assembly stress to imaging quality, which is characterized by the energy concentration ratio. An imaging quality prediction surrogate model is developed based on the light gradient boosting machine algorithm, achieving a prediction accuracy exceeding 95%, significantly outperforming models such as random forest and feedforward neural networks. Finally, with the dual objectives of maximizing the initial assembly energy concentration ratio and minimizing the performance degradation difference before and after service, a multi-objective genetic algorithm based on pareto optimality is employed to optimize the distribution of bolt tightening torques. The optimization results demonstrate that the obtained optimal process parameter combination improves the initial assembly energy concentration ratio by 4.37% on average and enhances the post-service energy concentration ratio by 11.2% on average. This effectively strengthens the optical system’s ability to maintain accuracy and imaging stability under harsh service conditions.
AB - As a critical component of high-precision photoelectronic equipment, the coaxial dual-mirror optical system’s imaging stability in service environments is of paramount importance. An assembly accuracy prediction and process parameter optimization method for dual-mirror optical systems is proposed, aiming at stable in-operation performance. First, a finite element model of the dual-mirror optical system incorporating threaded structures is established. The bolt tightening process is simulated, and the influence of coupled-field conditions—vibration, temperature, and microgravity—on mirror surface deformation is analyzed. Second, mirror surface deformation is fitted using Zernike polynomials, and Zemax optical simulation is integrated. A complete optomechanical coupling analysis workflow is thus constructed, linking assembly stress to imaging quality, which is characterized by the energy concentration ratio. An imaging quality prediction surrogate model is developed based on the light gradient boosting machine algorithm, achieving a prediction accuracy exceeding 95%, significantly outperforming models such as random forest and feedforward neural networks. Finally, with the dual objectives of maximizing the initial assembly energy concentration ratio and minimizing the performance degradation difference before and after service, a multi-objective genetic algorithm based on pareto optimality is employed to optimize the distribution of bolt tightening torques. The optimization results demonstrate that the obtained optimal process parameter combination improves the initial assembly energy concentration ratio by 4.37% on average and enhances the post-service energy concentration ratio by 11.2% on average. This effectively strengthens the optical system’s ability to maintain accuracy and imaging stability under harsh service conditions.
KW - coaxial dual-mirror optical system
KW - LightGBM
KW - multi-objective optimization
KW - optomechanical coupling simulation
KW - service environment
UR - https://www.scopus.com/pages/publications/105046603669
U2 - 10.1088/1402-4896/ae8f7c
DO - 10.1088/1402-4896/ae8f7c
M3 - Article
AN - SCOPUS:105046603669
SN - 0031-8949
VL - 101
JO - Physica Scripta
JF - Physica Scripta
IS - 31
M1 - 315511
ER -