典型目标被动毫米波成像亮温建模与动态演化分析

程亚运 徐梓翔 王楠楠 马航 熊慧敏 蒙重霖 邱景辉

程亚运, 徐梓翔, 王楠楠, 等. 典型目标被动毫米波成像亮温建模与动态演化分析[J]. 雷达学报(中英文), 待出版. doi: 10.12000/JR26089
引用本文: 程亚运, 徐梓翔, 王楠楠, 等. 典型目标被动毫米波成像亮温建模与动态演化分析[J]. 雷达学报(中英文), 待出版. doi: 10.12000/JR26089
CHENG Yayun, XU Zixiang, WANG Nannan, et al. Brightness temperature modeling and dynamic evolution analysis of passive millimeter-wave imaging for typical targets[J]. Journal of Radars, in press. doi: 10.12000/JR26089
Citation: CHENG Yayun, XU Zixiang, WANG Nannan, et al. Brightness temperature modeling and dynamic evolution analysis of passive millimeter-wave imaging for typical targets[J]. Journal of Radars, in press. doi: 10.12000/JR26089

典型目标被动毫米波成像亮温建模与动态演化分析

DOI: 10.12000/JR26089 CSTR: 32380.14.JR26089
基金项目: 电磁空间安全全国重点实验室开放基金项目,国家自然科学基金(62571165)
详细信息
    作者简介:

    程亚运,研究员,主要研究方向为毫米波太赫兹传输与成像技术

    徐梓翔,硕士生,主要研究方向为空中飞机的被动毫米波成像仿真

    王楠楠,副教授,主要研究方向为被动毫米波成像以及毫米波天线和阵列

    马 航,硕士生,主要研究方向为探地领域的被动毫米波多极化成像及应用

    熊慧敏,博士生,主要研究方向为海面舰船及其尾迹被动毫米波成像建模

    蒙重霖,博士生,主要研究方向为毫米波成像与天线设计

    邱景辉,教授,主要研究方向为毫米波太赫兹技术

    通讯作者:

    王楠楠 wangnn@hit.edu.cn

    责任主编:徐刚 Corresponding Editor: XU Gang

  • 中图分类号: TP753; TP391

Brightness Temperature Modeling and Dynamic Evolution Analysis of Passive Millimeter-wave Imaging for Typical Targets

Funds: Open Fund Project of State Key Laboratory of Electromagnetic Space Security, The National Natural Science Foundation of China (62571165)
More Information
  • 摘要: 被动毫米波成像技术凭借准全天候与不主动发射电磁信号的优势,在空中目标监视领域展现出应用潜力。该文针对典型民航客机目标,探究其在动态飞行过程中的被动毫米波成像亮温建模和辐射特性演化规律。首先,基于射线追踪法与涂层金属辐射机理构建了飞机目标的毫米波本征辐射模型,并利用缩比模型开展实测对比实验,验证了理论仿真的准确性。然后,系统模拟了客机定高巡航与起飞爬升两种典型动态观测场景,分析了观测仰角、距离和极化对目标观测亮温的影响规律。最后,基于亮温动态演化,分析了探测能力,对不同观测仰角和典型天气条件下的极限探测距离展开了定量评估。研究表明,低仰角时天空背景高亮温会导致探测盲区;仰角升高后,目标对比度增强,探测距离提升;垂直极化模式亮温差异更大,探测能力更优,但距离很远时双极化模式趋于相同;典型云雾天气下的探测能力仍具有较高水平。可见,合理选择观测仰角与极化模式是提升探测性能的关键。

     

  • 图  1  地基被动毫米波系统探测空中目标辐射机理示意图

    Figure  1.  Schematic diagram of the radiation mechanism for ground-based passive millimeter-wave detection of airborne targets

    图  2  涂层金属的辐射传输模型

    Figure  2.  Radiation transfer model of coated metal

    图  3  涂层金属和土壤的等效发射率与等效反射率随入射角变化曲线

    Figure  3.  Variation of equivalent emissivity and reflectivity of coated metal and soil with incident angle

    图  4  3种典型角度下的飞机平面与天空背景的视在亮温及亮温差

    Figure  4.  Apparent brightness temperature and brightness temperature difference of the aircraft surface and sky background at three typical angles

    图  5  空客A380飞机3D模型结构示意图

    Figure  5.  3D structural model of the Airbus A380 aircraft

    图  6  缩比模型飞机实验与仿真结果

    Figure  6.  Experimental and simulation results of the aircraft model

    图  7  仿真与实测一维亮温廓线对比图

    Figure  7.  Comparison between experimental and simulated brightness temperatures

    图  8  两种观测场景图

    Figure  8.  Schematics of two observation scenes

    图  9  两种场景观测的水平与垂直极化加噪天线亮温动态演化图

    Figure  9.  Simulated antenna brightness temperature results at horizontal and vertical polarizations of the two observation scenes

    图  10  两种场景双极化亮温差异图

    Figure  10.  Dual-polarization brightness temperature difference for the two scenarios

    图  11  不同观测俯仰角下目标天线亮温差随观测距离的变化曲线

    Figure  11.  Variations of antenna brightness temperature difference for observation range at different observation elevation angles

    表  1  仿真验证参数表

    Table  1.   Simulation validation parameters

    名称 数值
    工作频率 94 GHz
    极化方式 水平H,垂直V
    波束宽度 0.15°
    扫描步长 0.0375°
    灵敏度 0.3 K
    观测俯仰角 5°~90°(场景1)
    0°~78°(场景2)
    观测距离 10~115 km(场景1)
    2~9.6 km(场景2)
    机身温度 290 K
    地面温度 293 K
    油漆层厚度 0.2 mm
    飞机模型尺寸 72.95 m×79.75 m×24.09 m
    金属相对复介电常数$ {\varepsilon }_{1} $ 5-j4.2×106[31]
    油漆相对复介电常数$ {\varepsilon }_{2} $ 3.64-j0.23[32]
    土壤相对复介电常数$ {\varepsilon }_{3} $ 4.11-j0.35[33]
    下载: 导出CSV

    表  2  典型低能见度天气参数设置

    Table  2.   Parameters of typical low-visibility weather conditions

    天气含水量(g/m³)高度(km)
    薄雾0.15≤0.05
    浓雾0.16≤0.1
    层云0.101.0~4.0
    低层云0.250.5~1.0
    积云0.801.6~2.0
    下载: 导出CSV

    表  3  不同天气条件下各观测仰角对应的极限探测距离(km)

    Table  3.   Maximum detection range (km) under different weather conditions at various elevation angles

    天气类型 观测仰角(°)
    5 15 20 30 45 60 75 90
    晴天 11 86 113 154 201 234 251 259
    薄雾 11 86 112 153 200 233 250 258
    浓雾 11 84 111 152 199 232 249 257
    层云 9 47 72 114 163 197 215 222
    低层云 8 69 96 138 185 219 236 244
    积云 8 45 68 109 155 189 207 214
    下载: 导出CSV
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  • 收稿日期:  2026-05-09
  • 修回日期:  2026-08-25

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