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柴达木盆地西北区地层剥蚀厚度恢复及对油气成藏的启示

冯德浩 刘成林 田继先 太万雪 李培 曾旭 孔骅

冯德浩, 刘成林, 田继先, 太万雪, 李培, 曾旭, 孔骅. 柴达木盆地西北区地层剥蚀厚度恢复及对油气成藏的启示[J]. 石油实验地质, 2022, 44(1): 188-198. doi: 10.11781/sysydz202201188
引用本文: 冯德浩, 刘成林, 田继先, 太万雪, 李培, 曾旭, 孔骅. 柴达木盆地西北区地层剥蚀厚度恢复及对油气成藏的启示[J]. 石油实验地质, 2022, 44(1): 188-198. doi: 10.11781/sysydz202201188
FENG Dehao, LIU Chenglin, TIAN Jixian, TAI Wanxue, LI Pei, ZENG Xu, KONG Hua. Erosion thickness recovery and its significance to hydrocarbon accumulation in northwestern Qaidam Basin[J]. PETROLEUM GEOLOGY & EXPERIMENT, 2022, 44(1): 188-198. doi: 10.11781/sysydz202201188
Citation: FENG Dehao, LIU Chenglin, TIAN Jixian, TAI Wanxue, LI Pei, ZENG Xu, KONG Hua. Erosion thickness recovery and its significance to hydrocarbon accumulation in northwestern Qaidam Basin[J]. PETROLEUM GEOLOGY & EXPERIMENT, 2022, 44(1): 188-198. doi: 10.11781/sysydz202201188

柴达木盆地西北区地层剥蚀厚度恢复及对油气成藏的启示

doi: 10.11781/sysydz202201188
基金项目: 

国家自然科学基金面上项目 41872127

中国石油天然气股份有限公司科技重大专项 2016E-0102

详细信息
    作者简介:

    冯德浩(1997-), 男, 博士研究生, 从事石油与天然气勘探地质研究。E-mail: apparate_z@126.com

    通讯作者:

    刘成林(1970-), 男, 博士, 教授, 从事油气地球化学与资源评价、非常规油气地质研究。E-mail: liucl@cup.edu.cn

  • 中图分类号: TE122.3

Erosion thickness recovery and its significance to hydrocarbon accumulation in northwestern Qaidam Basin

  • 摘要: 柴达木盆地西北至一里坪地区面积大、油气资源探明程度低,恢复地层剥蚀厚度对油气资源评价具有重要意义。针对剥蚀厚度恢复的复杂性和恢复结果的不确定性,采用地层趋势延伸法、声波时差法、镜质体反射率法和Easy%Ro最优化法等多种方法相结合,计算了研究区晚期构造运动地层剥蚀厚度,并定量探讨了其对油气成藏的影响。研究区第四系和上新统狮子沟组(N23)普遍遭受剥蚀,局部构造顶部剥蚀量可达1 000 m,上油砂山组(N22)在油泉子等部分构造顶部遭受剥蚀,下油砂山组(N21)仅在盆地周缘被剥蚀。英雄岭构造带、各构造顶部以及阿尔金山前是剥蚀严重的区域,剥蚀量普遍超过500 m;洼陷地带以及研究区东部剥蚀量较小,剥蚀厚度小于500 m,构造活动相对稳定。油气藏和地面油气显示分布与地层剥蚀密切相关,适宜强度的地层剥蚀(300 m<剥蚀量<1 500 m)有利于形成油气藏,而剥蚀厚度超过1 500 m则易造成油气藏的破坏。

     

  • 图  1  柴达木盆地中西部地区地质概况和地层剖面

    据文献[11-12]修改。

    Figure  1.  Geological map and stratigraphic profile of central and western Qaidam Basin

    图  2  地层趋势延伸法恢复柴达木盆地西北区地层剥蚀厚度

    剖面位置见图 1

    Figure  2.  Erosion thickness of northwestern Qaidam Basin recovered by stratigraphic trend extension

    图  3  镜质体反射率法恢复柴达木盆地地层剥蚀厚度

    Figure  3.  Erosion thickness of Qaidam Basin recovered by vitrinite reflectance

    图  4  声波时差法恢复柴达木盆地地层剥蚀厚度

    Figure  4.  Erosion thickness of Qaidam Basin recovered by interval transit time

    图  5  柴达木盆地西北区—一里坪地区各层位剥蚀厚度

    Figure  5.  Contour map of erosion thickness of each layer from northwestern Qaidam Basin to Yiliping area

    图  6  柴达木盆地西北区晚期构造运动累计剥蚀厚度与油气田分布

    Figure  6.  Contour map of accumulated erosion thickness in late tectonic movement and distribution of oil and gas fields, northwestern Qaidam Basin

    图  7  柴达木盆地西北区地面调查地层剥蚀现象和油气显示

    a.干柴沟构造,核部E32地层出露;b.干柴沟构造,出露N21地层;c.干柴沟构造油气显示;d.油泉子构造,出露N22地层;e-f.油泉子构造地面油气显示

    Figure  7.  Eroded strata and hydrocarbon shows of field geological survey in northwestern Qaidam Basin

    图  8  柴达木盆地西北区部分背斜油气藏剖面及地质解析示意

    a.红沟子油藏剖面;b.南翼山油气藏剖面;c.大风山油藏剖面;d.典型背斜构造地质解析

    Figure  8.  Profile and geological analysis of some anticline reservoirs in northwestern Qaidam Basin

    表  1  柴达木盆地部分重点井位剥蚀厚度统计

    Table  1.   Statistics of erosion thickness of some key wells in Qaidam Basin m

    井位 剥蚀地层 地层趋势延伸法 声波时差法 镜质体反射率法 Easy%Ro最优化方法
    风3 Q1+2 430 438 450
    油6 Q1+2-N22 2 130 4 935 2 200
    梁3 Q1+2 413 550
    鄂深1 Q1+2-N23 883 934
    博1 Q1+2-N23 850 721
    落深1 Q1+2-N23 1 217 1 161 1 250
    开2 Q1+2-N22 2 286 2 561
    风2 Q1+2-N23 1 210 1 129
    鸭参3 Q1+2-N23 582 725 677 690
    伊深1 Q1+2 478 571 450
    下载: 导出CSV

    表  2  柴达木盆地西北地区部分油气藏剥蚀厚度统计

    Table  2.   Statistics of erosion thickness of some reservoirs in northwestern Qaidam Basin

    油气藏 剥蚀地层 核部剥蚀量/m 储集层 石油储量/104t 天然气储量/108m3 地面油气显示
    干柴沟 Q1+2-E32 1 800~2 100 N22-E32 油苗
    油墩子 Q1+2-N22 1 500~1 600 N22 油苗
    油泉子 Q1+2-N22 1 500~2 100 N22、N21 5 117.0 394 油苗、沥青
    英东 Q1+2-N23 600~800 N22、N21 17 193.0 122
    小梁山 Q1+2 400 N22、N23 3 266.0 52
    南翼山 Q1+2-N23 1 100~1 600 N22-E32 3 229.4 384 油苗
    红沟子 Q1+2-N21 1 200~1 600 N21、N1 1 412.0 油苗
    下载: 导出CSV
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  • 收稿日期:  2020-08-18
  • 修回日期:  2021-12-08
  • 刊出日期:  2022-01-28

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