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    鄂尔多斯盆地大吉70井“铁柱子”建立及其地质意义

    张伟 陈东 丁蓉 边利恒 申建 胡明卿 李树新 李星涛 吴鹏 朱文涛 孙雪冬 马壮 杨海星

    张伟, 陈东, 丁蓉, 边利恒, 申建, 胡明卿, 李树新, 李星涛, 吴鹏, 朱文涛, 孙雪冬, 马壮, 杨海星, 2026. 鄂尔多斯盆地大吉70井“铁柱子”建立及其地质意义. 地球科学, 51(7): 2445-2461. doi: 10.3799/dqkx.2026.208
    引用本文: 张伟, 陈东, 丁蓉, 边利恒, 申建, 胡明卿, 李树新, 李星涛, 吴鹏, 朱文涛, 孙雪冬, 马壮, 杨海星, 2026. 鄂尔多斯盆地大吉70井“铁柱子”建立及其地质意义. 地球科学, 51(7): 2445-2461. doi: 10.3799/dqkx.2026.208
    Zhang Wei, Chen Dong, Ding Rong, Bian Liheng, Shen Jian, Hu Mingqing, Li Shuxin, Li Xingtao, Wu Peng, Zhu Wentao, Sun Xuedong, Ma Zhuang, Yang Haixing, 2026. Establishment of 'Iron Pillar' of Well Daji 70 in Ordos Basin and Its Geological Significance. Earth Science, 51(7): 2445-2461. doi: 10.3799/dqkx.2026.208
    Citation: Zhang Wei, Chen Dong, Ding Rong, Bian Liheng, Shen Jian, Hu Mingqing, Li Shuxin, Li Xingtao, Wu Peng, Zhu Wentao, Sun Xuedong, Ma Zhuang, Yang Haixing, 2026. Establishment of "Iron Pillar" of Well Daji 70 in Ordos Basin and Its Geological Significance. Earth Science, 51(7): 2445-2461. doi: 10.3799/dqkx.2026.208

    鄂尔多斯盆地大吉70井“铁柱子”建立及其地质意义

    doi: 10.3799/dqkx.2026.208
    基金项目: 

    中石油煤层气有限责任公司科技项目 25MQCTSG011

    详细信息
      作者简介:

      张伟(1981-),男,高级工程师,博士,主要从事煤层气勘探开发研究. ORCID:0000-0002-2302-3980. E-mail:zhangwei2010@petrochina.com.cn

    • 中图分类号: P618.13

    Establishment of "Iron Pillar" of Well Daji 70 in Ordos Basin and Its Geological Significance

    • 摘要: 为建立石炭-二叠系地层剖面“铁柱子”,在鄂尔多斯盆地东缘大吉地区部署实施大吉70井.该井取心井段1 843.27~2 032.27 m共189 m,岩心收获率100%.通过厘米级岩心精细描述、多尺度CT扫描、地球化学测试与分析等工作,结合地球物理响应特征,构建了鄂尔多斯盆地东南缘晚石炭世-早二叠世等时地层格架,厘清了沉积体系空间配置关系,为沉积环境研究奠定基础.揭示出5#、8#煤层以及4#、6#等薄煤层以半亮-光亮煤为主且天然裂缝网络高度发育(裂隙孔隙度为1.17%~1.19%),有效支撑“高含气、高饱和、高游离”的成藏认识;本溪组-山西组发育5套优质页岩段,为海陆过渡相页岩气的突破提供了直接地质依据.大吉70井“铁柱子”标准剖面的建立,不仅直接验证并支撑了大吉区块深层煤层气的勘探突破,还发现了多套页岩气接替层系,为鄂尔多斯盆地高效勘探开发提供了关键地质证据和决策依据.

       

    • 图  1  大吉地区煤系非常规天然气立体成藏模式示意图(据杨华等,2015修改)

      Fig.  1.  Schematic diagram of three-dimensional accumulation model for unconventional natural gas in coal measures of eastern Ordos Basin (modified after Yang et al., 2015)

      图  2  大吉70井位置

      Fig.  2.  Location of Well Daji 70

      图  3  大吉70井取心不同岩性厚度

      Fig.  3.  Thicknesses of different lithologies in the coring results of Well Daji 70

      图  4  大吉70“铁柱子”建设技术路线图

      Fig.  4.  Technical roadmap for the construction of the Daji 70 "Iron Pillar"

      图  5  二级和三级层序界面特征

      a. 本溪组与马家沟组界线特征;b. 马家沟组岩性特征;c. 晋祠砂岩及上覆深灰色页岩;d. 晋祠砂岩与下伏地层分界特征;e. 8#煤与顶部灰岩接触特征;f. 8#煤层特征;g. 7#煤层与顶部灰岩接触特征;h. 北岔沟砂岩与下伏地层接触特征;i~l. 山西组泥岩‒砂岩突变接触面

      Fig.  5.  Characteristics of second- and third-order sequence boundaries

      图  6  大吉70井综合柱状图

      Fig.  6.  Integrated stratigraphic column of Well Daji 70

      图  7  大吉70井聚煤模式

      Fig.  7.  The coal accumulation model diagram of Well Daji 70

      图  8  大吉70井裂隙系统精细描述

      8-2#煤层,1 991.30~1 991.95 m

      Fig.  8.  Fine characterization of multi-scale pore-fracture systems in Well Daji 70

      图  9  镜煤条带中裂隙发育特征

      Fig.  9.  Fracture development characteristics in vitrain bands

      图  10  大吉70井本溪组、太原组、山西组页岩岩相划分图版

      Fig.  10.  Shale facies classification chart for the Benxi, Taiyuan, and Shanxi formations of Well Daji 70

      图  11  本溪组岩心特征

      a~c. 大吉70井,本1段深水潟湖相页岩,双壳类生屑发育;d~f. 大吉70井,本2段深水潟湖相页岩,发育硅质粉砂纹层、层状黄铁矿

      Fig.  11.  Core characteristics of the Benxi Formation

      图  12  太原组岩心特征

      a~c.大吉70井,太1段深水潟湖相页岩,端面见碳化植物碎屑;d~f. 大吉70井,太2段深水潟湖相页岩,硅质粉砂纹层发育

      Fig.  12.  Core characteristics of the Taiyuan Formation

      图  13  山西组岩心特征

      a~c.大吉70井,山23亚段2~3小层(1 915.94~1 920.20 m),深水潟湖相富有机质页岩;d~f. 大吉70井,山23亚段1小层(1 934.37~1 939.65 m)海湾相富有机质页岩

      Fig.  13.  Core characteristics of the Shanxi Formation

      表  1  大吉70井煤层发育特征

      Table  1.   The development characteristics of the coal seam in Well Daji 70

      煤层编号 厚度(m) 煤层结构类型 煤岩类型 裂隙特征 顶底板岩性 沉积环境 各煤层关键差异点
      4# 0.47 二分型 光亮煤 层状裂隙 顶板:泥岩;底板:炭质泥岩 间湾沼泽 横向稳定性差,含气性高(全烃>10%)
      5# 3.88 三分型 光亮煤+半亮煤 中型网状裂隙,方解石充填 顶板:碳质泥岩→粉砂岩(过渡) 泥炭沼泽 最优封盖条件,原生结构煤
      6# 0.57 二分型 镜煤+亮煤 层状裂隙 顶板:碳酸盐潮坪(海侵终止) 潮坪沼泽 聚煤作用受海侵中断
      7# 0.25 简单结构煤层 光亮煤为主,次为暗淡煤 大裂隙方解石充填 顶板:碳酸盐潮坪(海侵终止) 潮坪沼泽 厚度较薄
      8# 6.07 二分型 光亮煤+半亮煤 裂隙密度3.93条/cm3(网状) 顶板:灰岩→泥岩→灰岩(接触) 泥炭沼泽 储集优势段:8#-1
      9# 0.44 二分型 镜煤+亮煤 层状裂隙 顶板:灰黑页岩;底板:粉砂质泥岩 潮坪沼泽 厚度波动大
      下载: 导出CSV

      表  2  大吉70井泥页岩段厚度分布

      Table  2.   Distribution layers and thickness of shale in Well Daji 70

      发育层段 本二段 本一段 太1+太2段 山23亚段 山21+2亚段
      具体井段埋深(m) 2 012.87~2 018.90 1 996.48~2 004.97 1 956.23~1 982.20 1 933.20~1 956.23 1 898.65~1 904.37
      页岩厚度(m) 6.03 8.49 6.53 19.16 6.70
      下载: 导出CSV

      表  3  大吉70井页岩矿物组成(%)及总有机碳(TOC)含量(%)

      Table  3.   Mineral composition (%) and total organic carbon (TOC, %) of shales from Well Daji 70

      校正岩心深度
      (m)
      层位 编号 石英(%) 斜长石(%) 方解石(%) 菱铁矿(%) 黄铁矿(%) 锐钛矿(%) 金红石(%) 黏土矿物(%) TOC(%) 平均TOC(%)
      1 883.87 山21 1 44.3 4.4 0.0 1.2 0.0 0.8 0.0 49.3 0.55 0.43
      1 887.97 2 36.4 15.2 0.0 0.4 0.0 0.4 0.0 47.6 0.30
      1 918.07 山23 3 34.8 1.8 0.0 1.9 0.0 0.7 0.0 60.8 2.86 4.02
      1 919.27 4 22.4 0.6 0.0 0.4 4.6 0.4 0.0 71.6 8.68
      1 919.67 5 26.6 0.8 0.0 0.4 5.0 0.6 0.0 66.6 9.63
      1 927.47 6 46.3 1.2 0.0 0.4 2.9 0.7 0.0 48.5 1.64
      1 927.87 7 54.4 0.9 0.0 2.7 0.6 0.3 0.0 41.1 1.63
      1 934.97 8 1.4 0.0 0.0 0.0 0.0 0.4 0.2 98.0 2.36
      1 935.77 9 1.0 0.0 0.0 0.0 2.3 0.6 0.2 95.9 0.74
      1 952.30 10 33.3 0.0 0.0 0.0 0.0 0.6 0.0 66.1 4.66
      1 955.47 太1段 11 37.4 0 0 0 11.3 0 0 51.3 4.25 1.68
      1 957.40 12 42.6 0 0 0 1.9 0 0 55.5 0.18
      1 961.43 13 52.1 0 0 0 0 0 0 45.6 0.29
      1 971.83 14 63 0 0 0 3.9 0 0 33.1 1.24
      1 973.57 15 39.1 0 0 1.6 8.4 0 0 50.9 2.48
      1 994.35 本1段 16 11.7 0.7 0 9.1 1 0 0 77.5 1.41 2.40
      1 995.49 17 12.5 0 8.4 6.6 2.8 0 0 69.7 2.22
      2 000.29 18 19.5 1.3 0 0 10.2 0 0 67.8 1.39
      2 000.56 19 14.9 0 0 0 9.9 0 0 74.1 3.58
      2 000.99 20 18.6 1.1 0 0 12.5 0 0 66.5 3.96
      2 005.07 21 31.5 0 0 4.3 2.8 0 0 59.2 1.35
      2 013.04 22 29.4 2.2 0 1.6 6.7 0 0 59.6 2.91
      2 013.82 本2段 23 31.2 2.9 0 8.6 0.9 0 0 55.5 4.81 3.04
      2 014.40 24 31.4 3.8 0 8 1.4 0 0 54.5 3.14
      2 015.06 25 22.2 2.6 0 7.2 1.2 0 0 66.2 2.22
      2 015.60 26 28 2.1 0 5.7 1.2 0 0 62.6 2.41
      2 016.29 27 22.2 2.6 0 7.2 1.2 0 0 66.2 2.63
      下载: 导出CSV
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    • 收稿日期:  2025-01-23
    • 刊出日期:  2026-07-25

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