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水下单光子激光雷达光学系统设计

刘春尧 于信 白素平 王凌云 邵会博 才存良

刘春尧, 于信, 白素平, 王凌云, 邵会博, 才存良. 水下单光子激光雷达光学系统设计[J]. 中国光学(中英文). doi: 10.3724/CO.2026-0108
引用本文: 刘春尧, 于信, 白素平, 王凌云, 邵会博, 才存良. 水下单光子激光雷达光学系统设计[J]. 中国光学(中英文). doi: 10.3724/CO.2026-0108
LIU Chun-yao, YU Xin, BAI Su-ping, WANG Ling-yun, SHAO Hui-bo, CAI Cun-liang. Underwater single-photon LIDAR optical system design[J]. Chinese Optics. doi: 10.3724/CO.2026-0108
Citation: LIU Chun-yao, YU Xin, BAI Su-ping, WANG Ling-yun, SHAO Hui-bo, CAI Cun-liang. Underwater single-photon LIDAR optical system design[J]. Chinese Optics. doi: 10.3724/CO.2026-0108

水下单光子激光雷达光学系统设计

cstr: 32171.14.CO.2026-0108
基金项目: 国家自然科学基金青年基金资助项目(No. 62205032);吉林省科技发展计划重点研发项目(No. 20260201027GX)
详细信息
    作者简介:

    于信(1988—),男,吉林四平人,博士,副教授,硕士生导师,2018年于电子科技大学获得光学工程专业工学博士学位,主要研究方向包括:像差检测、校正及精密仪器设计方面的研究。E-mail:41213100@qq.com

  • 中图分类号: TP394.1;TH691.9

Underwater single-photon LIDAR optical system design

Funds: Supported by National Natural Science Foundation of China Youth Foundation (No. 62205032); Jilin Province Science and Technology Development Plan Item(No. 20260201027GX)
  • 摘要:

    针对单光子激光雷达在水下广域探测中难以兼顾大扫描视场与系统小型化的问题,本文提出基于转镜扫描与环形隔水视窗密封相结合的技术方案。通过构建扫描角度、光束口径与转镜几何尺寸之间几何关系,结合环形隔水视窗构型,在满足大扫描视场的同时实现系统小型化;采用光线追迹方法建立光学系统初始结构,利用柱面光学元件的成像与补偿原理,改善激光束经环形隔水视窗跨介质传输后光束质量退化的问题,并结合望远系统开展一体化优化设计,进一步提升光束质量。实验结果表明,该系统可实现110°扫描视场,发射激光光束质量因子优于1.3倍衍射极限,发散角为0.084 mrad,传输效率为91.00%,在水质衰减系数为0.184 m−1环境中的最大探测距离为24 m。该系统兼具大视场扫描能力和小型化结构优势,可为水下广域探测装备的工程化应用提供参考。

     

  • 图 1  不同束腰激光光束传输不同距离后的光斑大小

    Figure 1.  The spot size of different waist laser beams after tr-ansmitting at different distances

    图 2  水下单光子激光雷达光学系统整体结构图

    Figure 2.  The overall structure diagram of the optical system of the underwater single-photon laser radar

    图 3  激光光束在不同位置时转镜扫描角度原理图

    Figure 3.  The principle diagram of scanning angle of rotating mirror when laser beam is in different positions

    图 4  转镜尺寸与扫描角度之间关系图

    Figure 4.  The relationship between the size of the rotating mirror and the scanning angle

    图 5  无视窗时转镜扫描角度仿真图

    Figure 5.  Simulation diagram of scanning angle of rotating mirror without window

    图 6  平板视窗转镜扫描角度仿真图

    Figure 6.  Flat window mirror scanning angle simulation diagram

    图 7  环形视窗转镜扫描角度仿真图

    Figure 7.  Simulation diagram of scanning angle of annular window rotating mirror

    图 8  激光光束准直程度补偿原理图

    Figure 8.  Laser beam collimation degree compensation schematicdiagram

    图 9  柱面镜补偿系统

    Figure 9.  Cylindrical mirror compensation system

    图 10  光线追迹法补偿光斑形状原理图

    Figure 10.  The principle diagram of light spot shape compensat-on by ray tracing method

    图 11  激光光束准直程度仿真图

    Figure 11.  Simulation diagram of laser beam collimation degree

    图 12  补偿发散角后不同距离下的几何光斑图

    Figure 12.  Geometric spot diagrams at different distances after compensating the divergence angle

    图 13  补偿光斑形状后不同距离下的几何光斑图

    Figure 13.  Geometric spot diagram at different distances after compensating spot shape

    图 14  扫描视场实验图

    Figure 14.  Scanning field of view experimental diagram

    图 15  视场测试结果图

    Figure 15.  Field of view test result diagram

    图 16  发散角测试实验及结果图

    Figure 16.  Divergence angle test experiment and result diagram

    图 17  系统传输效率测试实验

    Figure 17.  Optical system transmittance test experiment

    图 18  水下测距实验光斑补偿前后对比图

    Figure 18.  Comparison diagram before and after spot compensa-tion in underwater ranging experiment

    图 19  水下最大探测距离实验结果

    Figure 19.  Experimental results of maximum underwater detection distance

    表  1  水下单光子激光雷达光学系统指标

    Table  1.   Optical system index underwater single photon lidar

    指标参数
    工作波段532±1nm
    发散角<0.1mrad
    口径≥10mm
    探测距离>24m
    扫描角度0°~110°
    传输效率>90%
    尺寸220mm-450mm(直径-长度)
    下载: 导出CSV

    表  2  系统传输效率

    Table  2.   System transmission efficiency

    膜系传输效率
    未镀膜41.06%
    0.99增透膜85.12%
    0.995增透膜90.43%
    下载: 导出CSV

    表  3  水下单光子激光雷达系统参数

    Table  3.   Parameters of underwater single-photon laser radar system

    指标参数
    脉冲能量>5μJ
    重复频率>20kHz
    脉宽<0.85ns
    平均输出功率>100mW
    单脉冲峰值功率>7kW
    接收孔径25mm
    探测效率25%@532nm
    暗记数0.7Mcps
    下载: 导出CSV
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  • 收稿日期:  2026-06-25
  • 录用日期:  2026-08-19
  • 网络出版日期:  2026-09-18

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