月球阿波罗盆地叶状陡坎雷达散射特性与应力场研究

彭嫚 胡文敏 李熙健 王敏娜 邸凯昌

彭嫚, 胡文敏, 李熙健, 等. 月球阿波罗盆地叶状陡坎雷达散射特性与应力场研究[J]. 雷达学报(中英文), 待出版. doi: 10.12000/JR25189
引用本文: 彭嫚, 胡文敏, 李熙健, 等. 月球阿波罗盆地叶状陡坎雷达散射特性与应力场研究[J]. 雷达学报(中英文), 待出版. doi: 10.12000/JR25189
PENG Man, HU Wenmin, LI Xijian, et al. Radar scattering characteristics and stress field of lobate scarps in the apollo basin on the moon[J]. Journal of Radars, in press. doi: 10.12000/JR25189
Citation: PENG Man, HU Wenmin, LI Xijian, et al. Radar scattering characteristics and stress field of lobate scarps in the apollo basin on the moon[J]. Journal of Radars, in press. doi: 10.12000/JR25189

月球阿波罗盆地叶状陡坎雷达散射特性与应力场研究

DOI: 10.12000/JR25189 CSTR: 32380.14.JR25189
基金项目: 国家重点研发计划(2022YFF0503100),福建省自然科学基金面上项目(2025J01859),行星科学与超算联合实验室开放课题基金(CDCSZX-QT-2026-01)
详细信息
    作者简介:

    彭 嫚,副研究员,主要研究方向为行星摄影测量与遥感

    胡文敏,副研究员,主要研究方向为摄影测量与遥感、高分影像处理及应用

    李熙健,博士生,主要研究方向为行星遥感与制图

    王敏娜,硕士生,主要研究方向为行星科学、构造模拟

    邸凯昌,研究员,主要研究方向为行星摄影测量、行星遥感、行星科学和视觉导航定位

    通讯作者:

    邸凯昌 dikc@aircas.ac.cn

    责任主编:徐丰 Corresponding Editor: XU Feng

  • 中图分类号: P691

Radar Scattering Characteristics and Stress Field of Lobate Scarps in the Apollo Basin on the Moon

Funds: National Key Research and Development Program of China (No. 2022YFF0503100), The Fujian Provincial Natural Science Foundation of China (2025J01859), The Opening Project of Joint Laboratory for Planetary Science and Supercomputing, funded by Chengdu University of Technology and the National Supercomputing Center in Chengdu(CDCSZX-QT-2026-01)
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  • 摘要: 月球叶状陡坎是月表浅层逆冲断层活动形成的小型线性构造,其空间分布与应力特征为揭示月球晚期构造演化提供了关键线索。目前,叶状陡坎的应力特征与雷达散射响应间的关联机制尚不明确。该研究以阿波罗盆地叶状陡坎为研究对象,利用Mini-RF影像提取散射特性参数;然后基于高分辨率数字高程模型采用库仑软件反演区域应力场分布特征;在此基础上,从统计关联角度分析雷达散射特征与应力之间的对应关系,揭示其构造活动性与表面物质响应的关联机制。主要结论如下:(1) 断层附近应变显著高于外围,最大剪应变集中于断层倾向方向,体应变显示断层上盘体积膨胀,两端及滑动面中心呈现体积收缩。(2) 陡坎面与上盘区域在圆极化比与部分极化分解参数上表现出更强的散射响应,表明这些区域可能存在更高的破碎度、块石暴露或结构复杂性,然而散射差异同时受到表面粗糙度、入射几何条件和后期改造过程的综合影响。(3)基于多元线性回归和随机森林算法进行了散射参数与应力场的回归分析,说明散射特征与应力之间的关联更可能是受地形条件、表面粗糙度及局部构造等共同作用的非线性关系。总体而言,该研究建立了一个面向阿波罗盆地叶状陡坎的雷达—地形联合探索性分析框架,用于评估散射特征与应力指标之间是否存在可量化的统计对应关系,并为相似地质背景下的浅层构造活动研究提供参考。

     

  • 图  1  阿波罗盆地西北叶状陡坎的分布[15]

    Figure  1.  The distribution of lobate scarps at western rim of the Apollo basin [15]

    图  2  叶状陡坎逆冲断层位错模型示意图[5]

    Figure  2.  Schematic diagram of the dislocation model for lobate scarp thrust fault[5]

    图  3  CPR图叠加叶状陡坎(编号与表1一致)

    Figure  3.  CPR overlaid with lobate scarps (numbered consistently with Table 1)

    图  4  叶状陡坎的陡坎面

    Figure  4.  Scarp face of lobate scarps

    图  5  叶状陡坎DEM结果和LROC NAC图像叠加[15]

    Figure  5.  Overlay of DEMs and LROC NAC images[15]

    图  6  叶状陡坎库仑应力分布图.

    Figure  6.  Coulomb Stress distribution map of lobate scarps. .

    图  7  撞击坑壁9#叶状陡坎库仑应力分布图

    Figure  7.  Coulomb stress distribution map of lobate scarp #9 on the crater wall

    图  8  断层附近水平应变场与垂直应变场(LS07)

    Figure  8.  Horizontal and vertical strain fields near the fault (LS07)

    图  9  断层附近的应变场(LS07)

    Figure  9.  Strain field near the fault (LS07)

    图  10  K-means聚类算法应力分层结果

    Figure  10.  Stress layering results based on K-means clustering algorithm

    图  11  基于 ($\Delta $CFS=0) 的物理阈值分区结果

    Figure  11.  Partitioning results based on the physical threshold of $\Delta $CFS = 0

    图  12  不同E参数下的库仑应力分布

    Figure  12.  Coulomb stress distribution under different E parameters

    图  13  不同摩擦系数条件下的库仑应力分布

    Figure  13.  Coulomb stress distribution under different $\mu' $ parameters

    图  14  不同泊松比参数对应的库仑应力分布

    Figure  14.  Coulomb stress distribution under different v parameters

    表  1  研究区域叶状陡坎面散射特性的统计结果

    Table  1.   Statistical results of surface scattering characteristics of lobate scarps in the study area

    陡坎 IDS0均值CPR均值m均值χ均值
    10.0690.4790.35526.561
    20.0740.4900.43640.267
    30.0810.4510.52641.073
    40.0900.5460.44839.420
    50.0890.4270.54937.492
    60.0690.4800.46737.789
    70.0740.5410.45137.452
    80.0600.6120.44936.708
    90.1910.3890.55738.395
    100.0580.8670.41333.714
    110.0600.7180.40030.893
    120.0710.6560.43933.451
    130.0730.6370.39428.003
    140.0940.8790.38617.771
    均值0.0830.5830.44834.213
    下载: 导出CSV

    表  2  研究区域叶状陡坎上盘和下盘散射特性的统计结果

    Table  2.   Statistical results of hanging wall and foot wall scattering characteristics of lobate scarps in the study area

    陡坎 ID部位S0均值CPR均值m均值χ均值
    1下盘0.0770.5060.48938.918
    2上盘0.0570.4690.34237.813
    下盘0.0750.4390.52844.549
    3上盘0.0650.5640.45236.077
    下盘0.0750.4320.50342.140
    4上盘0.0740.5120.46939.509
    下盘0.1060.3920.55440.286
    5上盘0.1020.3700.54338.980
    下盘0.1260.5020.54443.609
    6上盘0.0870.4490.51837.791
    下盘0.0890.3790.57239.166
    7上盘0.0690.5340.45939.438
    下盘0.0790.1860.53338.118
    8上盘0.0640.5930.42534.996
    下盘0.1750.4380.55032.211
    9上盘0.0940.3980.54438.526
    下盘0.1160.4060.55936.884
    10上盘0.0520.7580.36930.306
    下盘0.0710.5790.42735.291
    11上盘0.0650.7320.37727.730
    下盘0.0710.6710.41031.471
    12上盘0.0860.5710.44934.133
    下盘0.0800.6180.43033.592
    13上盘0.0890.5940.43934.137
    下盘0.0950.6440.40532.008
    14上盘0.0650.8870.34817.569
    下盘0.0640.9100.32718.737
    均值上盘0.0730.5720.44134.385
    下盘0.0900.5070.48836.212
    下载: 导出CSV

    表  3  研究区域叶状陡坎形态参数与库仑应力统计结果

    Table  3.   Statistical results of morphological parameters and Coulomb stress of lobate scarps in the study area

    陡坎 ID 经度(°) 纬度(°) 长度(m) 深度(m) 起伏度(m) 库仑应力均值(MPa)
    1 –160.877 –34.090 2266.73 804.68 13.33 0.383
    2 –160.872 –34.094 685.12 222.56 7.69 1.308
    3 –160.951 –34.142 866.58 296.90 13.57 0.755
    4 –160.970 –34.204 5677.90 1892.46 18.81 0.270
    5 –160.999 –34.298 563.50 183.68 7.56 –0.100
    6 –161.007 –34.321 1970.36 645.48 7.98 –0.106
    7 –161.013 –34.341 1300.02 440.93 8.41 0.073
    8 –161.083 –34.395 672.92 219.58 7.64 0.001
    9 –161.089 –34.659 1886.88 613.50 78.77 –0.241
    10 –161.350 –34.789 652.72 220.84 13.86 0.093
    11 –161.380 –34.830 1184.92 399.35 3.42 0.401
    12 –161.425 –34.853 1715.37 596.13 28.13 0.570
    13 –161.466 –34.890 1440.30 489.98 35.52 1.120
    14 –161.622 –35.035 954.18 303.57 7.38 –0.202
    下载: 导出CSV

    表  4  对象内验证下模型性能对比

    Table  4.   Within-object validation model performance comparison

    模型多元线性回归随机森林
    MAE0.2310.136
    RMSE0.4100.256
    R20.5690.832
    Spearman ρ0.8090.916
    下载: 导出CSV

    表  5  5折GroupKFold交叉验证下模型泛化能力对比

    Table  5.   Model generalization performance comparison under 5-Fold groupkfold cross-validation

    模型 多元线性回归 随机森林
    各折测试集 R2范围 –0.715~–0.084 –0.776 ~–0.114
    平均折间指标
    (MAE/RMSE/R2)
    0.472/0.623/–0.427 0.486/0.635/–0.491
    OOF总体指标
    (MAE/RMSE/R2)
    0.464/0.665/0.132 0.478/0.674/0.165
    下载: 导出CSV

    表  6  Leave-One-Group-Out交叉验证下模型泛化能力对比

    Table  6.   Model generalization performance comparison under leave-one-group-out cross-validation

    模型 多元线性回归 随机森林
    MAE 0.467 0.474
    RMSE 0.658 0.661
    R2 –0.109 –0.120
    下载: 导出CSV

    表  7  剔除#9后对象内验证下模型性能对比

    Table  7.   Within-object validation model performance comparison after excluding #9

    模型多元线性回归随机森林
    MAE0.2350.139
    RMSE0.4150.260
    R20.5680.831
    下载: 导出CSV

    表  9  剔除#9后Leave-One-Group-Out交叉验证下模型泛化能力对比

    Table  9.   Model generalization performance comparison under leave-one-group-out cross-validation after excluding #9

    模型多元线性回归随机森林
    MAE0.4750.481
    RMSE0.6660.668
    R2-0.112-0.117
    下载: 导出CSV

    表  8  剔除#9后5折GroupKFold交叉验证下模型泛化能力对比

    Table  8.   Model generalization performance comparison under 5-Fold groupkfold cross-validation after excluding #9

    模型多元线性回归随机森林
    平均折间指标 (MAE/RMSE/R2)0.496/0.642/-0.5030.510/0.653/-0.567
    OOF总体指标 (MAE/RMSE/R2)0.477/0.676/-0.1430.491/0.685/-0.175
    下载: 导出CSV
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