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Compact High-Zoom-Ratio Mid-Wavelength Infrared Zoom Lens Design Based on Particle Swarm Optimization

Overview
Journal Sensors (Basel)
Publisher MDPI
Date 2025 Jan 25
PMID 39860837
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Abstract

This paper presents an automated method for solving the initial structure of compact, high-zoom-ratio mid-wave infrared (MWIR) zoom lenses. Using differential analysis, the focal length variation process of zoom lenses under paraxial conditions is investigated, and a model for the focal power distribution and relative motion of three movable lens groups is established. The particle swarm optimization (PSO) algorithm is introduced into the zooming process analysis, and a program is developed in MATLAB to solve for the initial structure. This algorithm integrates physical constraints from lens analysis and evaluates candidate solutions based on key design parameters, such as total lens length, zoom ratio, Petzval field curvature, and focal length at tele end. The results demonstrate that the proposed method can efficiently and accurately determine the initial structure of compact MWIR zoom lenses. Using this method, a mid-wave infrared zoom lens with a zoom ratio of 50×, a total length of less than 530 mm, and the ratio of focal length to total length approximately 2:1 was successfully designed. The design validates the effectiveness and practicality of this method in solving the initial structure of zoom lenses that meet complex design requirements.

References
1.
Sun L, Sheng S, Meng W, Wang Y, Ou Q, Pu X . Design of spherical aberration free liquid-filled cylindrical zoom lenses over a wide focal length range based on ZEMAX. Opt Express. 2020; 28(5):6806-6819. DOI: 10.1364/OE.388656. View

2.
Tanaka K . Paraxial analysis of mechanically compensated zoom lenses. 3: Five-component type. Appl Opt. 1983; 22(4):541-53. DOI: 10.1364/ao.22.000541. View

3.
Fan Z, Wei S, Zhu Z, Mo Y, Yan Y, Ma D . Automatically retrieving an initial design of a double-sided telecentric zoom lens based on a particle swarm optimization. Appl Opt. 2019; 58(27):7379-7386. DOI: 10.1364/AO.58.007379. View

4.
Tanaka K . Paraxial analysis of mechanically compensated zoom lenses. 2: Generalization of Yamaji Type V. Appl Opt. 2010; 21(22):4045-53. DOI: 10.1364/AO.21.004045. View

5.
Fan C, Yang B, Liu Y, Gu P, Wang X, Zong H . Zoom lens with high zoom ratio design based on Gaussian bracket and particle swarm optimization. Appl Opt. 2021; 60(11):3217-3223. DOI: 10.1364/AO.418970. View