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基于地层贯穿度连层的第四纪地质三维建模方法

李浩 花卫华 韦文成 朱玉华 肖海清 伍昕颖 刘修国

李浩,花卫华,韦文成,等. 基于地层贯穿度连层的第四纪地质三维建模方法[J]. 地质科技通报,2026,45(4):1-11 doi: 10.19509/j.cnki.dzkq.tb20250147
引用本文: 李浩,花卫华,韦文成,等. 基于地层贯穿度连层的第四纪地质三维建模方法[J]. 地质科技通报,2026,45(4):1-11 doi: 10.19509/j.cnki.dzkq.tb20250147
LI Hao,HUA Weihua,WEI Wencheng,et al. A 3D Quaternary Geological Modeling Method Employing Stratigraphic Penetration to Link Stratigraphic Units[J]. Bulletin of Geological Science and Technology,2026,45(4):1-11 doi: 10.19509/j.cnki.dzkq.tb20250147
Citation: LI Hao,HUA Weihua,WEI Wencheng,et al. A 3D Quaternary Geological Modeling Method Employing Stratigraphic Penetration to Link Stratigraphic Units[J]. Bulletin of Geological Science and Technology,2026,45(4):1-11 doi: 10.19509/j.cnki.dzkq.tb20250147

基于地层贯穿度连层的第四纪地质三维建模方法

doi: 10.19509/j.cnki.dzkq.tb20250147
基金项目: 中国地质调查局项目“大数据智能找矿预测”(DD20240004)
详细信息
    作者简介:

    李浩:E-mail:1202421237@cug.edu.cn

    通讯作者:

    E-mail:huaweihua@cug.edu.cn

A 3D Quaternary Geological Modeling Method Employing Stratigraphic Penetration to Link Stratigraphic Units

More Information
  • 摘要:

    第四纪地层呈现多沉积旋回、多重透镜体夹层与横向无序展布的复杂沉积特征,传统三维地质建模方法难以精准表征地层连续性与层序连接关系,易出现层序混乱、界面失真等问题,无法满足城市地下空间数字化与地质灾害预警等工程需求。针对上述难题,本研究聚焦第四纪地层无序性与多夹层特性,提出一种基于地层贯穿度连层的高精度三维地质建模方法。以钻孔数据为核心驱动,先识别普通、嵌套、顶层/底层透镜体并开展空间聚类处理,剔除透镜体引发的局部地层不连续干扰;结合地质先验知识构建 “大层−亚层−次亚层” 分级体系,以地层贯穿度为核心指标优先编码贯穿性地层,实现含倒转地层的统一层序构建;基于角度不整合尖灭系数计算地层尖灭边界并构建地层分区,最终采用薄板样条插值算法完成光滑、拓扑一致的三维地质模型网格构建。以北京中关村地区 102 个工程钻孔为实验数据,建模剖面与人工解译剖面地层连接高度吻合,可全自动精准识别所有透镜体,地层连接错误率降低 67%,地质界面吻合度提升至 92%,有效避免松散地层导致的层序错乱与零厚度层冗余插入问题。该方法可智能识别透镜体、精准统一地层层序,显著提升第四纪三维地质建模精度与合理性,为城市地下空间开发、地质灾害智能预警、工程勘察设计提供可靠三维地质模型支撑,在城市地质数字化领域具有广泛推广价值。

     

  • 图 1  透镜体类型

    Figure 1.  Lens body types

    图 2  透镜体构建

    a. 普通透镜体;b. 嵌套透镜体。1-1,1-2,1-3均为地层编号,其余编号类似,下同

    Figure 2.  Lens body generation

    图 3  透镜体聚类

    a. 透镜体聚类前;b. 透镜体聚类后。红色线圈内为透镜体

    Figure 3.  Lens clustering

    图 4  基于贯穿度进行地层编码

    左侧1,2,3,4为大层划分的顺序

    Figure 4.  Illustrates stratigraphic coding based on fracture intensity

    图 5  统一地层层序

    左侧1,5,2,6-1,6,3,7,4为大层基础上亚层划分的顺序

    Figure 5.  Unified Stratigraphic Sequence

    图 6  三维地质建模技术路线图

    Figure 6.  Workflow diagram for 3D geological modeling techniques

    图 7  地层连接

    Figure 7.  Stratigraphic connection

    图 8  钻孔建模数据(不同颜色代表不同的地层,下同)

    Figure 8.  Borehole model

    图 9  三维地质建模效果

    Figure 9.  3D geological modeling results

    图 10  三维地质模型折线剖切效果

    Figure 10.  3D geological model polyline section results

    图 11  三维地质模型剖面图(a)与人工绘制剖面图(b)对比

    Figure 11.  compares the modeled results with a manually drafted geological cross-section

    表  1  建模区域内第四系标准地层层序

    Table  1.   Standard stratigraphic column of the quaternary system in the modeling area

    原始数据编码地层名称地层级别编码
    第四系S1粉质黏土素填土、黏质粉土素填土1-1
    房渣土、碎石填土1-2
    S2粉质黏土、重粉质黏土2-1
    S3黏质粉土、粉质黏土3-1
    黏质粉土、砂质粉土3-2
    黏土、重粉质黏土3-3
    细砂、粉砂3-4
    S4黏质粉土、砂质粉土4-1
    黏质粉土、粉质黏土4-2
    细砂、粉砂4-3
    黏土、重粉质黏土4-4
    S5细砂、中砂5-1
    细砂、粉砂5-2
    粉质黏土5-3
    S6粉质黏土、黏质粉土6-1
    黏质粉土、砂质粉土6-2
    重粉质黏土、黏土6-3
    细砂、粉砂6-4
    S7细砂、中砂7-1
    有机质黏土、有机质重粉质黏土7-2
    黏质粉土、砂质粉土7-3
    S8粉质黏土、黏质粉土8-1
    重粉质黏土8-2
    S9粉质黏土、黏质粉土9-1
    细砂9-2
    黏土、重粉质黏土9-3
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-03-31
  • 录用日期:  2025-06-30
  • 修回日期:  2025-06-30
  • 网络出版日期:  2025-12-22

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