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鄂尔多斯盆地旬邑地区典型断缝体露头内部结构精细刻画

任川 刘传喜 吕钊宇 秦学杰 夏冬冬 何维领 刘洪平 冯文杰

任川,刘传喜,吕钊宇,等. 鄂尔多斯盆地旬邑地区典型断缝体露头内部结构精细刻画[J]. 地质科技通报,2026,45(2):1-12 doi: 10.19509/j.cnki.dzkq.tb20240522
引用本文: 任川,刘传喜,吕钊宇,等. 鄂尔多斯盆地旬邑地区典型断缝体露头内部结构精细刻画[J]. 地质科技通报,2026,45(2):1-12 doi: 10.19509/j.cnki.dzkq.tb20240522
REN Chuan,LIU Chuanxi,LYU Zhaoyu,et al. Fine characterization of internal structure of typical fault-fracture reservoir outcrops in Xunyi area, Ordos Basin[J]. Bulletin of Geological Science and Technology,2026,45(2):1-12 doi: 10.19509/j.cnki.dzkq.tb20240522
Citation: REN Chuan,LIU Chuanxi,LYU Zhaoyu,et al. Fine characterization of internal structure of typical fault-fracture reservoir outcrops in Xunyi area, Ordos Basin[J]. Bulletin of Geological Science and Technology,2026,45(2):1-12 doi: 10.19509/j.cnki.dzkq.tb20240522

鄂尔多斯盆地旬邑地区典型断缝体露头内部结构精细刻画

doi: 10.19509/j.cnki.dzkq.tb20240522
基金项目: 国家自然科学基金项目(42130813)
详细信息
    作者简介:

    任川:E-mail:renchuan0222@163.com

    通讯作者:

    E-mail:fwj1017@yangtzeu.edu.cn

  • 中图分类号: P618.13

Fine characterization of internal structure of typical fault-fracture reservoir outcrops in Xunyi area, Ordos Basin

More Information
  • 摘要:

    鄂尔多斯盆地南部的断缝体油藏开采前景较好,但其内部结构复杂多变,现有研究难以支撑断缝体油藏精细表征。为明确断缝体内部结构特征的变化规律,采用无人机倾斜摄影技术,对旬邑地区多种典型断缝体露头进行高精度采样和建模,利用自研软件采集并分析断缝体数据,开展其内部结构特征和裂缝发育规律研究。结果表明:①旬邑地区发育张扭型(半负花式、地堑式)、纯走滑(平移式)、压扭型(正花式)3类断缝体;②综合野外露头断层发育情况、岩层形态、裂缝发育特征等参数,将断缝体划分为破碎带、裂缝带和基质带,不同类型断缝体结构模式和定量规律差异较大;③裂缝密度受断缝体类型、断距、断层间距、断块位置和砂层厚度影响,总体为地堑式断缝体最高,半负花式断缝体次之,平移式和正花式断缝体最低;断距越大、断层间距越小、岩层厚度越低裂缝越发育;同一断缝体中,不同断块内的裂缝密度呈现出不同的变化趋势。本研究明确了4种断缝体的模式和定量规律,总结了不同因素对裂缝密度的影响,为地下同类储层表征提供了符合地质实际的定量断缝体结构依据。

     

  • 图 1  研究区及其周边构造纲要图(据文献[32]修改)

    Figure 1.  Structural outline of the study area and its surroundings

    图 2  枣林河C三维数字露头模型(a)及裂缝片三维测量(b)

    Figure 2.  3D digital outcrop model(a) and 3D measurement of fracture slices (b) of Zaolin River C

    图 3  淌泥河−养路段北露头断缝体识别

    a. 断缝体单元特征; b. 破碎带岩层; c. 破碎带裂缝走向平面投影; d. 裂缝带岩层; e. 基质带岩层

    Figure 3.  Identification of fault-fracture reservoirs in northern outcrops of Tangni River-Yanglu section

    图 4  枣林河A(a, b)、B(c, d)、C(e, f)和马宝泉(g, h)露头断缝体平面解剖

    a,c,e,g. 正射投影平面解剖;b,d,f,h. 砂体平面解剖。 露头位置见图1b

    Figure 4.  Profile maps of fault-fracture reservoirs in Zaolin River A (a, b), B (c, d), C (e, f), and Mabaoquan (g, h) outcrops

    图 5  鄂尔多斯盆地旬邑地区断缝体类型划分

    Figure 5.  Classification of fault-fracture reservoir types in Xunyi area, Ordos Basin

    图 6  破碎带宽度与断距关系(a)和不同类型断缝体与破碎带宽度关系(b)

    Figure 6.  Relationships between sliding breaking zone width and fault separation (a), and between different types of fault-fracture reservoirs and sliding breaking zone width (b)

    图 7  不同类型断缝体裂缝密度变化曲线

    Figure 7.  Fracture density variation curves of different types of fault-fracture reservoirs

    图 8  断距(a)、断层间距(b)、砂层厚度(c)对裂缝平均密度的影响

    IQR. 四分位距,表示数据25%(Q1,下四分位)至75%(Q3,上四分位);1.5IQR. 上界通常取Q3+1.5*IQRQ3+1.5*IQR内的最大值, 下界通常取Q1−1.5*IQRQ1−1.5*IQR内的最小值,范围之外为异常值

    Figure 8.  Fault separation (a), fault spacing (b) and sand layer thickness (c) on average fracture density

    图 9  鄂尔多斯盆地旬邑地区断缝体的平面图(a)和发育模式图(b~e)

    Figure 9.  Plan view (a) and development models (b-e) of fault-fracture reservoirs in Xunyi area, Ordos Basin

    表  1  不同类型断缝体带单元特征和分布差异

    Table  1.   Characteristics and distribution differences of different types of fault-fracture reservoir zone units

    断缝体类型 半负花式 地堑式 平移式 正花式
    断层特征 1条张扭性主断层主控,4条次级断层协同控制 2条张扭性断层主控 1条纯走滑断层主控 2条压扭性断层主控
    破碎带特征 总体较为分散,由多个断层控制,主断层附近下降盘内破碎带宽度最大,连通性较好,发育6组裂缝,其余破碎带在远处的次级断层附近零星分布,发育2~5组裂缝,宽度较小 主要位于下降盘内,其破碎程度、连通性、宽度最大,发育6组裂缝,其余破碎带破碎程度较低,带内发育2~4组裂缝,连通性差,宽度小 靠近断层集中分布,破碎程度较高,发育3~4组裂缝 临近断层发育,破碎带岩层破碎程度较高,发育5组裂缝
    裂缝带特征 主要分布在断缝体边部,总体与破碎带交替发育,宽度变化大,发育2组裂缝 主要分布在2条断层外侧的断块内,与破碎带交替分布,发育2组裂缝 通常分布在破碎带外侧,发育1~2组裂缝 主要分布在断缝体边部,发育2组裂缝
    实例 枣林河A露头断缝体 枣林河B露头断缝体 枣林河C露头断缝体 马宝泉露头断缝体
    下载: 导出CSV
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出版历程
  • 收稿日期:  2024-09-13
  • 录用日期:  2025-01-02
  • 修回日期:  2025-01-02
  • 网络出版日期:  2025-01-23

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