天然气地球科学

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致密油储层可动流体分布特征及主控因素分析——以鄂尔多斯盆地长7储层为例

时建超1,2,3,屈雪峰1,2,雷启鸿1,2,傅波4,何右安1,2,赵国玺1,2,成良丙1,2   

  1. 1.中国石油长庆油田分公司勘探开发研究院,陕西 西安 710018;
    2.低渗透油气田勘探开发国家工程实验室,陕西 西安 710018;
    3.西北大学大陆动力学国家重点实验室,陕西 西安 710069;
    4.中国石油长庆油田分公司第三采油厂,宁夏 银川 750000
  • 收稿日期:2015-07-31 修回日期:2015-10-22 出版日期:2016-05-10 发布日期:2016-05-10
  • 作者简介:时建超(1984-),男,陕西西安人,工程师,博士,主要从事油田开发地质研究. E-mail:jcshi@sohu.com.
  • 基金资助:
    中国石油天然气股份有限公司重大科技专项“鄂尔多斯盆地致密油勘探开发关键技术研究”(编号:2011E-2602)资助.

Distribution characteristics and controlling factors of movable fluid in tight oil reservoir:A case study of Chang 7 reservoir in Ordos Basin

Shi Jian-chao1,2,3,Qu Xue-feng1,2,Lei Qi-hong1,2,Fu Bo4,He You-an1,2,Zhao Guo-xi1,2,Cheng Liang-bing1,2   

  1. 1.Exploration and Development Research Institute of Changqing Oilfield Company,PetroChina,Xi’an; 710018,China;
    2.National Engineering Laboratory for Low Permeability Petroleum Exploration and Development,Xi’an 710018,China;
    3.Key Laboratory of Continental Dynamics of Ministry of Education,Northwest University,Xi’an 710069,China;
    4.3rd Oil Production Plant of Changqing Oilfield Company,PetroChina,Yinchuan 750000,China
  • Received:2015-07-31 Revised:2015-10-22 Online:2016-05-10 Published:2016-05-10

摘要: 致密油储层微观孔隙结构复杂,流体分布特征不同于低渗储层,主要利用核磁共振对鄂尔多斯盆地延长组长7储层可动流体进行定量评价,辅助以铸体薄片、电镜扫描、高压压汞、高分辨率X-CT等技术分析可动流体差异性的主控因素。研究表明:致密油储层T2谱形态主要表现为6种类型,中大孔隙内束缚流体量较高,导致致密油储层可动流体参数偏低,且不同样品之间可动流体参数变化幅度较大、差异性较强;储层渗透率与可动流体参数相关性较强,储层物性越好,可动流体参数变化幅度越大;孔喉半径大小、次生孔隙发育程度及所对应的孔喉连通性,裂缝的发育程度及有效性,黏土矿物含量、赋存形式及充填孔喉程度等储层特征是致密油储层可动流体差异性的主要控制因素。

关键词: 鄂尔多斯盆地, 致密油储层, 可动流体, 核磁共振, 主控因素

Abstract: The micro-porosity structure of tight oil reservoir is complex,and distribution characteristics of the fluid in tight oil reservoir are very different from that of low permeability reservoir.The movable fluid evaluation of the Chang 7 reservoir in the Ordos Basin was conducted by using nuclear magnetic resonance (NMR) technology,and the controlling factors of the differences in the movable fluid were analyzed by cast thin section,scanning electron microscopy,high pressure mercury injection,high-resolution computed tomography.The results show that T2 pattern of the tight oil reservoir displays six modes,the content of the immovable fluid is high in middle and large pore,which lead to the parameters of movable fluid being low,and the amplitude of variation and the differences in tight oil reservoir are large among different samples.The relationships are higher between the reservoir permeability and the parameters of movable fluid.The physical properties of the reservoir are better,and the change of the movable fluid parameters is greater.The microstructure characteristics of the tight oil reservoir,such as the distribution of pore and throat radius,development degree of induced porosity and connectivity between pore and throat radius,development degree and availability of micro-fracture,the content,the occurrence states,and the filling degree,are the main controlling factors to cause deviation of movable fluid parameters.

Key words: Ordos Basin, Tight oil reservoir, Movable fluid, NMR, Controlling factors

中图分类号: 

  • TE122

[1]Yang Hua,Li Shixiang,Liu Xianyang.Characteristics and resource prospects of tight oil and shale oil in Ordos Basin[J].Acta Petrolei Sinica,2013,34(1):1-10.[杨华,李士祥,刘显阳.鄂尔多斯盆地致密油、页岩油特征及资源潜力[J].石油学报,2013,34(1):1-10.]
[2]Zou Caineng,Tao Shizhen,Hou Lianhua,et al.Unconventional Petroleum Geology[M].Beijing:Geological Publishing House,2011:1-310.[邹才能,陶士振,侯连华,等.非常规油气地质[M].北京:地质出版社,2011:1-310.]
[3]Du Jinhu,He Haiqing,Yang Tao,et al.Progress in China’s tight oil exploration and challenges[J].China Petroleum Exploration,2014,19(1):1-9.[杜金虎,何海清,杨涛,等.中国致密油勘探进展及面临的挑战[J].中国石油勘探,2014,19(1):1-9.]
[4]Cao Zhe,Liu Guangdi,Liu Zhuangxiaoxue,et al.Research status on tight oil and its prospects[J].Natural Gas Geoscience,2014,25(10):1499-1508.[曹喆,柳广弟,柳庄小雪,等.致密油地质研究现状及展望[J].天然气地球科学,2014,25(10):1499-1508.]
[5]Jiang Ping,Mu Longxin,Zhang Ming,et al.Differences of reservoir characteristics between domestic and oversea tight gas of CNPC and its developing trends[J].Natural Gas Geoscience,2015,26(6):1095-1105.[蒋平,穆龙新,张铭,等.中石油国内外致密砂岩气储层特征对比及发展趋势[J].天然气地球科学,2015,26(6):1095-1105.]
[6]Wang Zhenliang.Research progress,existing problem and development trend of tight rock oil[J].Petroleum Geology & Experiment,2013,35(6):587-595.[王震亮.致密岩油的研究进展、存在问题和发展趋势[J].石油实验地质,2013,35(6):587-595.]
[7]Xue Liangqing,Dong Dazhong,Li Xiaodi,et al.Analysis of Petrochina’s key aera of future China oil and gas exploration[J].China Petroleum Exploration,2002,7(2):1-8.[薛良清,董大忠,李小地,等.中国石油未来油气勘探重点领域分析[J].中国石油勘探,2002,7(2):1-8.]
[8]Zou Caineng,Zhu Rukai,Bai Bin,et al.First discovery of nano-pore throat in oil and gas reservoir in China and its scientific value[J].Acta Petrologica Sinica,2011,27(6):1857-1864.[邹才能,朱如凯,白斌,等.中国油气储层中纳米孔首次发现及其科学价值[J].岩石学报,2011,27(6):1857-1864.]
[9]Bai Bin,Zhu Rukai,Wu Songtao,et al.New micro-throat structural characterization techniques for unconventional tight hydrocarbon reservoir[J].China Petroleum Exploration,2015,19(3):78-86.[白斌,朱如凯,吴松涛,等.非常规油气致密储层微观孔喉结构表征新技术及意义[J].中国石油勘探,2015,19(3):78-86.]
[10]Wang Weimin,Guo Hekun,Ye Chaohui.The evaluation of development potential in low permeability oil field by the aid of NMR movable fluid detecting technology[J].Acta Petrolei Sinica,2001,22(6):40-44.[王为民,郭和坤,叶朝辉.利用核磁共振可动流体评价低渗透油田开发潜力[J].石油学报,2001,22(6):40-44.]
[11]Zheng Ke,Xu Huaimin,Chen Jianwen,et al.Movable fluid study of low permeability reservoir with Nuclear Magnetic Resonance technology[J].Geoscience,2013,27(3):710-718.[郑克,徐怀民,陈建文,等.低渗透储层可动流体核磁共振研究[J].现代地质,2013,27(3):710-718.]
[12]Hamada G M,Abushanab M A.Better porosity estimate of gas sandstone reservoirs using density and NMR logging data[J].Emirates Journal for Engineering Research,2008,13(3):47-54.
[13]Wang Xuewu,Yang Zhengming,Li Haibo,et al.Experimental study on pore structure of low permeability core wiht NMR spectra[J].Journal of Southwest Petroleum University:Science & Technology Edition,2010,32(2):69-72.[王学武,杨正明,李海波,等.核磁共振研究低渗透储层孔隙结构方法[J].西南石油大学学报:自然科学版,2010,32(2):69-72.]
[14]Mao Zhiqiang,Zhang Chong,Xiao Liang.A NMR-based porosity calculation method for low porosity and low permeability gas reservoir[J].Oil Geophysical Prospecting,2010,45(1):105-109.[毛志强,张冲,肖亮.一种基于核磁共振测井计算低孔低渗气层孔隙度的新方法[J].石油地球物理勘探,2010,45(1):105-109.]
[15]Yang Zhengming,Zhang Yingzhi,Hao Mingqiang,et al.Comprehensive evaluation of reservoir in low-permeability oilfields[J].Acta Petrolei Sinica,2006,27(2):64-67.[杨正明,张英芝,郝明强,等.低渗透油田储层综合评价方法[J].石油学报,2006,27(2):64-67.]
[16]Li Haibo,Zhu Juyi,Guo Hekun.Methods for calculating pore radius distribution in rock from NMR T2 spectra[J].Chinese Journal of Magnetic Resonance,2008,25(2):273-279.[李海波,朱巨义,郭和坤.核磁共振T2谱换算孔隙半径分布方法研究[J].波谱学杂志,2008,25(2):273-279.]
[17]Guo Hekun,Liu Qiang,Li Haibo,et al.Microstructural characteristics of the Jurassic tight oil reservoirs in Sichuan Basin[J].Journal of Shenzhen University Science and Engineering,2013,30(3):306-312.[郭和坤,刘强,李海波,等.四川盆地侏罗系致密储层孔隙结构特征[J].深圳大学学报理工版,2013,30(3):306-312.]
[18]Lu Hui,Lu Xuesong,Fan Junjia,et al.The controlling effects of fractures on gas accumulation and production in tight sandstone:A case of Jurassic Dibei gas reservoir in the east Kuqa Foreland Basin[J].Natural Gas Geoscience,2015,26(6):1047-1056.[芦慧,鲁雪松,范俊佳,等.裂缝对致密砂岩气成藏富集与高产的控制作用——以库车前陆盆地东部侏罗系迪北气藏为例[J].天然气地球科学,2015,26(6):1047-1056.]
[19]Peng Hui,Liu Yuzhang,Ran Qiquan,et al.Study on the horizontal well production in tight oil reservoirs[J].Natural Gas Geoscience,2014,25(5):771-777.[彭晖,刘玉章,冉启全,等.致密油储层水平井产能影响因素研究[J].天然气地球科学,2014,25(5):771-777.]
[20]Zeng Lianbo.Fissure and its seepage characteristics in low-permeable sandstone reservoir[J].Chinese Journal of Geology,2004,39(1):11-17.[曾联波.低渗透砂岩油气储层裂缝及其渗流特征[J].地质科学,2004,39(1):11-17.]

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