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    普光地区须家河组烃源岩特征及成烃演化过程

    李松峰 王生朗 毕建霞 曾正清 贺艳梅

    李松峰, 王生朗, 毕建霞, 曾正清, 贺艳梅, 2016. 普光地区须家河组烃源岩特征及成烃演化过程. 地球科学, 41(5): 843-852. doi: 10.3799/dqkx.2016.071
    引用本文: 李松峰, 王生朗, 毕建霞, 曾正清, 贺艳梅, 2016. 普光地区须家河组烃源岩特征及成烃演化过程. 地球科学, 41(5): 843-852. doi: 10.3799/dqkx.2016.071
    Li Songfeng, Wang Shenglang, Bi Jianxia, Zeng Zhengqing, He Yanmei, 2016. Characteristics of Xujiahe Formation Source Rock and Process of Hydrocarbon-Generation Evolution in Puguang Area. Earth Science, 41(5): 843-852. doi: 10.3799/dqkx.2016.071
    Citation: Li Songfeng, Wang Shenglang, Bi Jianxia, Zeng Zhengqing, He Yanmei, 2016. Characteristics of Xujiahe Formation Source Rock and Process of Hydrocarbon-Generation Evolution in Puguang Area. Earth Science, 41(5): 843-852. doi: 10.3799/dqkx.2016.071

    普光地区须家河组烃源岩特征及成烃演化过程

    doi: 10.3799/dqkx.2016.071
    基金项目: 

    国家科技重大专项项目 No.2011ZX05017-001

    详细信息
      作者简介:

      李松峰(1980-), 男, 博士, 在站博士后, 研究方向为烃源岩地球化学评价、烃源岩地球物理预测、油气成藏及油气资源评价.E-mail:cuglsf@qq.com

    • 中图分类号: P618

    Characteristics of Xujiahe Formation Source Rock and Process of Hydrocarbon-Generation Evolution in Puguang Area

    • 摘要: 烃源岩特征研究是成烃演化研究的基础, 烃源岩地球物理预测能够有效地定量评价烃源岩特征.普光地区因可用钻井较少, 难以对陆相须家河组烃源岩总有机碳(TOC)含量和厚度进行定量评价.基于烃源岩TOC体定量预测技术, 对普光地区须家河组烃源岩的TOC含量和厚度进行地球物理预测.研究结果表明:须家河组主要为中等烃源岩, TOC含量约0.6%~1.5%, 主要以条带状分布; 须三段的有效烃源岩厚度主要为20~30 m, 须五段主要为30~40 m; 晚燕山期的剥蚀厚度约2 000~5 000 m, 从构造高部位向研究区两侧呈递减的趋势; 侏罗纪末期, 须三段烃源岩大部分地区进入成熟阶段, 而须五段只有北部洼陷地区进入成熟阶段, 达到生烃门限, 现今, 须三段和须五段烃源岩基本进入高成熟-过成熟阶段, 主产气, 成熟度由北向南递减.

       

    • 图  1  普光地区须三和须五段烃源岩TOC分布

      Fig.  1.  TOC distribution of Xusan and Xuwu Member source rock in Puguang area

      图  2  普光地区须家河组烃源岩有机质类型

      Fig.  2.  Organic matter type of Xujiahe Formation source rock in Puguang area

      图  3  普光地区须家河组烃源岩Ro-Tmax交汇图

      Fig.  3.  Ro-Tmax crossplot of Xujiahe Formation source rock in Puguang area

      图  4  TOC体定量预测技术流程

      Fig.  4.  Flowchart showing the quantitative prediction technology of the TOC volume

      图  5  普光地区须家河组烃源岩TOC数据体剖面

      Fig.  5.  TOC data volume profiles of Xujiahe Formation source rock in Puguang area

      图  6  普光地区须三段和须五段烃源岩TOC等值线

      Fig.  6.  TOC contour of Xusan and Xuwu Member source rocks in Puguang area

      图  7  普光地区须三段和须五段烃源岩等厚图

      Fig.  7.  Isopach of Xusan and Xuwu Member source rocks in Puguang area

      图  8  普光地区晚燕山期剥蚀厚度等值线

      Fig.  8.  Erosion thickness contour of Late Yanshanian in Puguang area

      图  9  普陆1井盆地模拟

      a.埋藏史、热史;b.Ro校验;c.成熟史

      Fig.  9.  Basin modeling of Pulu 1 well

      图  10  普光地区须三段和须五段烃源岩关键时期成烃演化

      Fig.  10.  Hydrocarbon-generation evolution of Xusan and Xuwu Member source rock in the crucial period in Puguang area

      表  1  中国陆相烃源岩有机质丰度标准

      Table  1.   Organic matter abundance standard of the continental source rock in China

      演化阶段烃源岩级别评价参数干酪根类型很好烃源岩好烃源岩中等烃源岩差烃源岩非烃源岩
      未成熟-
      低成熟
      有机质类型富烃腐泥型腐泥型中间型腐植型腐植型
      H/C原子比1.5~1.71.3~1.51.3~1.00.7~1.00.5~0.7
      TOC(%)Ⅰ-Ⅱ1>2.01.0~2.00.5~1.00.3~0.5<0.3
      2-Ⅲ>4.02.5~4.01.0~2.50.5~1.0<0.5
      沥青“A”(%)>0.250.15~0.250.05~0.150.03~0.05<0.03
      总烃(HC)(10-6)>1 000500~1 000150~50050~150<50
      S1+S2/(mg/g)>10.05.0~10.02.0~5.00.5~2.0<0.5
      成熟-
      过成熟
      TOC(%)Ⅰ-Ⅱ1>1.20.8~1.20.4~0.80.2~0.4<0.2
      2-Ⅲ>3.001.50~3.000.60~1.500.35~0.60<0.35
      下载: 导出CSV

      表  2  TOC体定量预测技术优势对比

      Table  2.   Comparative advantages of the quantitative prediction technology of the TOC volume

      分类技术手段应用效果
      TOC体定量预测技术优选振幅包络、绝对振幅积分、平均频率、瞬时相位、波阻抗等多种属性三维数据体的TOC定量预测、有效烃源岩厚度定量预测
      Loseth et al.(2011)波阻抗二维剖面的TOC定量预测
      顾礼敬等(2011)层序地层格架、地震波层速度烃源岩生烃量
      潘仁芳徐乾承(2011)层序地层格架、地震波层速度烃源岩成熟度
      刘震等(2007)层序地层格架、地震波层速度烃源岩厚度
      王志宏等(2008)地震反射特征烃源岩分布范围
      下载: 导出CSV

      表  3  普光地区晚燕山期剥蚀厚度

      Table  3.   The erosion thickness of Late Yanshanian in Puguang Area

      序号井号趋势方程相关系数(R2)剥蚀厚度(m)备注
      1普陆1H=-51.631AC+6 567.40.919 3-3 190.859地面AC值取620 μs/m
      2回注1H=-50.783AC+5 453.70.929 6-4 144.287
      3普光107-1HH=-52.769AC+7 038.50.946 5-2 934.841
      4普光101H=-51.356AC+6 915.90.949 2-2 790.384
      5大湾101H=-54.172AC+5 721.50.915 6-4 517.008
      6毛坝6H=-50.675AC+5 383.90.941 8-4 193.675
      7分2H=-58.339AC+8 004.70.924 4-3 021.371
      8东岳1H=-56.782AC+6 408.70.935 6-4 323.098
      9新清溪1H=-45.632AC+5 846.50.959 5-2 777.948
      10双庙1H=-42.271AC+4 587.20.951 3-3 402.019
      11双庙102H=-44.659AC+ 5 110.50.926 5-3 330.051
      12雷北1H=-60.581AC+7 425.10.921 5-4 024.709
      下载: 导出CSV

      表  4  普光地区须三段和须五段烃源岩关键时期Ro

      Table  4.   Ro of the Xusan and Xuwu Member source rock in the crucial period in Puguang area

      序号井号三叠纪末期侏罗纪末期白垩纪末期(现今)
      须三须五须三须五须三须五
      1普陆10.350.280.630.552.111.83
      2回注10.310.280.370.331.961.83
      3普光107-1H0.360.300.650.592.322.14
      4大湾1010.370.300.540.432.101.80
      5毛坝60.310.280.530.471.861.72
      6分20.330.290.740.682.362.19
      7东岳10.330.290.520.452.32.12
      8新清溪10.320.280.500.431.451.31
      9双庙10.320.290.490.431.461.34
      10双庙1020.330.290.450.411.431.32
      11雷北10.320.290.430.371.251.15
      下载: 导出CSV
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    • 收稿日期:  2016-01-25
    • 刊出日期:  2016-05-15

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