OUYANG Siqi, SUN Wei, HUANG Hexing. Multi-method synergistic characterization of total pore structure of extra-low permeability sandstone reservoirs: case study of the Heshui area of Ordos Basin[J]. PETROLEUM GEOLOGY & EXPERIMENT, 2018, 40(4): 595-604. doi: 10.11781/sysydz201804595
Citation: OUYANG Siqi, SUN Wei, HUANG Hexing. Multi-method synergistic characterization of total pore structure of extra-low permeability sandstone reservoirs: case study of the Heshui area of Ordos Basin[J]. PETROLEUM GEOLOGY & EXPERIMENT, 2018, 40(4): 595-604. doi: 10.11781/sysydz201804595

Multi-method synergistic characterization of total pore structure of extra-low permeability sandstone reservoirs: case study of the Heshui area of Ordos Basin

doi: 10.11781/sysydz201804595
  • Received Date: 2017-12-18
  • Rev Recd Date: 2018-07-03
  • Publish Date: 2018-07-28
  • Mercury injection capillary pressure (MICP), rate-controlled porosimetry (RCP) and nuclear magnetic resonance (NMR) have limitations in describing the characteristics of microscopic pore structure characteristics of extra-low permeability sandstone reservoirs, and the results are not completely consistent with the observation of thin sections and scanning electron microscopy. Five ultra-low permeability sandstone reservoir samples were collected from the Heshui area of Ordos Basin. A collaborative multi-method for characterizing pore throat structure was proposed in order to describe the detailed characteristics of pore size distribution. MICP and NMR combined with MICP were used to obtain pore connectivity. The connectivity ratio of adsorption throat, micro throat, fine throat, middle throat was calculated. Nuclear magnetic resonance data were used to achieve the conversion of transverse relaxation time to pore throat radius. The specific surface area was calculated by MICP, and the relaxation rate was calibrated by RCP and the T2 spectrum. The synergistic calculated pore throat distribution results were multiplied by the corresponding pore throat connectivity ratio to obtain the spatial distribution curves of throat and pore connectivity at different scales. The results showed that the adsorption throat connectivity ratio was the lowest, and the ratio of other sizes was relatively higher, but the difference is not significant. The throat radius ranged from 0.003 to 3.661 μm, which was greater than constant rate-controlled porosimetry test results. The pore radius ranged from 0.8 to 91.4 μm and the pore-throat ratio ranged from 16.4 to 58.6 μm, both of which were smaller than rate-controlled porosimetry test results. The final calculation results were basically in accordance with the observed results of cast thin section and scanning electron microscopy. It showed that the collaborative calculation of multiple methods overcomes the superposition of throat and pores on high-pressure mercury-injection and the calculation error of rate-controlled porosimetry, which is closer to the true state of reservoir.

     

  • loading
  • [1]
    廖朋,王琪,唐俊,等.鄂尔多斯盆地环县-华池地区长8砂岩储层成岩作用及孔隙演化[J].中南大学学报(自然科学版),2014,45(9):3200-3210. LIAO Peng,WANG Qi,TANG Jun,et al.Diagenesis and porosity evolution of sandstones reservoir from Chang 8 of Yanchang formation in Huanxian-Huachi region of Ordos Basin[J].Journal of Central South University (Science and Technology),2014,45(9):3200-3210.
    [2]
    钟大康,祝海华,孙海涛,等.鄂尔多斯盆地陇东地区延长组砂岩成岩作用及孔隙演化[J].地学前缘,2013,20(2):61-68.

    ZHONG Dakang,ZHU Haihua,SUN Haitao,et al.Diagenesis and porosity evolution of sandstones in Longdong area,Ordos Basin[J].Earth Science Frontiers,2013,20(2):61-68.
    [3]
    张兴良,田景春,王峰,等.致密砂岩储层成岩作用特征与孔隙演化定量评价:以鄂尔多斯盆地高桥地区二叠系下石盒子组盒8段为例[J].石油与天然气地质,2014,35(2):212-217.

    ZHANG Xingliang,TIAN Jingchun,WANG Feng,et al.Diagenetic characteristics and quantitative porosity estimation of tight sandstone reservoirs:a case from the 8th Member of Permian Xiashihezi Formation in the Gaoqiao region,Ordos Basin[J]Oil & Gas Geo-logy,2014,35(2):212-217.
    [4]
    任大忠,孙卫,赵继勇,等.鄂尔多斯盆地岩性油藏微观水驱油特征及影响因素:以华庆油田长81油藏为例[J].中国矿业大学学报,2015,44(6):1043-1052.

    REN Dazhong,SUN wei,ZHAO Jiyong,et al.Microscopic waterflooding characteristics of lithologic reservoirs in Ordos basin and its influence factors:taking the Chang 81 reservoir in Huaqing oilfield as an example[J].Journal of China University of Mining & Technology,2015,44(6):1043-1052.
    [5]
    刘晓鹏,刘燕,陈娟萍,等.鄂尔多斯盆地盒8段致密砂岩气藏微观孔隙结构及渗流特征[J].天然气地球科学,2016,27(7):1225-1234.

    LIU Xiaopeng,LIU Yan,CHEN Juanping,et al.Characteristics of micro pore structure and seepage in tight sandstone gas reservoir of the 8th section of Shihezi Formation in Ordos Basin,China[J].Natural Gas Geoscience,2016,27(7):1225-1234.
    [6]
    王伟明,卢双舫,陈旋,等.致密砂岩气资源分级评价新方法:以吐哈盆地下侏罗统水西沟群为例[J].石油勘探与开发,2015,42(1):60-67.

    WANG Weiming,LU Shuangfang,CHEN Xuan,et al.A new method for grading and assessing the potential of tight sand gas resources:a case study of the Lower Jurassic Shuixigou Group in the Turpan-Hami Basin[J].Petroleum Exploration and Development,2015,42(1):60-67.
    [7]
    白玉彬,赵子龙,赵靖舟,等.鄂尔多斯盆地安塞地区长9致密油成藏机理与主控因素[J].中南大学学报(自然科学版),2014,45(9):3127-3136. BAI Yubin,ZHAO Zilong,ZHAO Jingzhou,et al.Oil reservoir forming mechanisms and main controlling factors of tight oil of Chang-9 member in Ansai area,Ordos Basin[J].Journal of Central South University (Science and Technology),2014,45(9):3127-3136.
    [8]
    郭彦如,刘俊榜,杨华,等.鄂尔多斯盆地延长组低渗透致密岩性油藏成藏机理[J].石油勘探与开发,2012,36(4):417-425.

    GUO Yanru,LIU Junbang,YANG Hua,et al.Hydrocarbon accumulation mechanism of low permeable tight lithologic oil reservoirs in the Yanchang Formation,Ordos Basin,China[J].Petroleum Exploration and Development,2012,36(4):417-425.
    [9]
    肖佃师,卢双舫,陆正元,等.联合核磁共振和恒速压汞方法测定致密砂岩孔喉结构[J].石油勘探与开发,2016,43(6):961-970.

    XIAO Dianshi,LU Shuangfang,LU Zhengyuan,et al.Combining nuclear magnetic resonance and rate-controlled porosimetry to probe the pore-throat structure of tight sandstones[J].Petro-leum Exploration and Development,2016,43(6):961-970.
    [10]
    宁传祥,姜振学,高之业,等.用核磁共振和高压压汞定量评价储层孔隙连通性:以沾化凹陷沙三下亚段为例[J].中国矿业大学学报,2017,46(3):578-585.

    NING Chuanxiang,JIANG Zhenxue,GAO Zhiye,et al.Quantitative evaluation of pore connectivity with nuclear magnetic resonance and high pressure mercury injection:A case study of the lower section of Es3 in Zhanhua Sag[J].Journal of China University of Mining & Technology,2017,46(3):578-585.
    [11]
    姜振学,唐相路,李卓,等.川东南地区龙马溪组页岩孔隙结构全孔径表征及其对含气性的控制[J].地学前缘,2016,23(2):126-134.

    JIANG Zhenxue,TANG Xianglu,LI Zhuo,et al.The whole-aperture pore structure characteristics and its effect on gas content of the Longmaxi Formation shale in the southeastern Sichuan Basin[J].Earth Science Frontiers,2016,23(2):126-134.
    [12]
    孙亮,王晓琦,金旭,等.微纳米孔隙空间三维表征与连通性定量分析[J].石油勘探与开发,2016,43(3):490-498.

    SUN Liang,WANG Xiaoqi,JIN Xu,et al.Three dimensional characterization and quantitative connectivity analysis of micro/nano pore space[J].Petroleum Exploration and Development,2016,43(3):490-498.
    [13]
    朱永贤,孙卫,于锋.应用常规压汞和恒速压汞实验方法研究储层微观孔隙结构:以三塘湖油田牛圈湖区头屯河组为例[J].天然气地球科学,2008,19(4):553-556.

    ZHU Yongxian,SUN Wei,YU Feng,et al.Application of high pressure hg injection and rate-controlled Hg penetration experimental technique to studying reservoir microscopic pore structure:taking Toutunhe Formation in Niuquanhu area of Santanghu Oilfield as an example[J].Natural Gas Geoscience,2008,19(4):553-556.
    [14]
    YAO Yanbin,LIU Dameng.Comparison of low-field NMR and mercury intrusion porosimetry in characterizing pore size distributions of coals[J].Fuel,2012,95:152-158.
    [15]
    黄家国,许开明,郭少斌,等.基于SEM、NMR和X-CT的页岩储层孔隙结构综合研究[J].现代地质,2015,29(1):198-205.

    HUANG Jiaguo,XU Kaiming,GUO Shaobin,et al.Comprehensive study on pore structures of shale reservoirs based on SEM,NMR and X-CT[J].Geoscience,2015,29(1):198-205.
    [16]
    李爱芬,任晓霞,王桂娟,等.核磁共振研究致密砂岩孔隙结构的方法及应用[J].中国石油大学学报(自然科学版),2015,39(6):92-98. LI Aifen,REN Xiaoxia,WANG Guijuan,et al.Characterization of pore structure of low permeability reservoirs using a nuclear magnetic resonance method[J].Journal of China University of Petroleum (Edition of Natural Science),2015,39(6):92-98.
    [17]
    屈乐,孙卫,杜环虹,等.基于CT扫描的三维数字岩心孔隙结构表征方法及应用:以莫北油田116井区三工河组为例[J].现代地质,2014,28(1):190-196.

    QU Le,SUN Wei,DU Huanhong,et al.Characterization technique of pore structure by 3D digital core based on CT scanning and its application:An example from Sangonghe Formation of 116 well field in Mobei Oilfield[J].Geoscience,2014,28(1):190-196.
    [18]
    SLIJKERMAN W F J,HOFMAN J P,LOOYESTIJN W J,et al.A practical approach to obtain primary drainage capillary pressure curves from NMR core and log data[J].Petrophysics,2001,42(4):334-343.
    [19]
    何雨丹,毛志强,肖立志,等.利用核磁共振T2分布构造毛管压力曲线的新方法[J].吉林大学学报(地球科学版),2005,35(2):177-181. HE Yudan,MAO Zhiqiang,XIAO Lizhi,et al.A new method to obtain capillary pressure curve using NMR T2 distribution[J].Journal of Jilin University (Earth Science Edition),2005,35(2):177-181.
    [20]
    任大忠.低渗-超低渗透岩性油藏精细描述:以鄂尔多斯盆地华庆地区长81储层为例[D].西安:西北大学,2012. REN Dazhong.The fine reservoir description of low/ultra-low permeability lithologic reservoir:taking 81 reservoir of Yanchang Formation in Huaqing area in Ordos basin as an example[D].Xi'an:Northwest University,2012.
    [21]
    王振华,陈刚,李书恒,等.核磁共振岩心实验分析在低孔渗储层评价中的应用[J].石油实验地质,2014,36(6):773-779.

    WANG Zhenhua,CHEN Gang,LI Shuheng,et al.Application of NMR core experimental analysis in evaluation of low-porosity and low-permeability sandstone reservoirs[J].Petroleum Geo-logy & Experiment,2014,36(6):773-779.
    [22]
    杨峰,宁正福,孔德涛,等.高压压汞法和氮气吸附法分析页岩孔隙结构[J].天然气地球科学,2013,24(3):450-455.

    YANG Feng,NING Zhengfu,KONG Detao,et al.Pore structure of shales from high pressure mercury injection and nitrogen adsorption method[J].Natural Gas Geoscience,2013,24(3):450-455.
    [23]
    曹涛涛,宋之光,刘光祥,等.氮气吸附法-压汞法分析页岩孔隙、分形特征及其影响因素[J].油气地质与采收率,2016,23(2):1-8.

    CAO Taotao,SONG Zhiguang,LIU Guangxiang,et al.Characteristics of shale pores,fractal dimension and their controlling factors determined by nitrogen adsorption and mercury injection methods[J].Petroleum Geology and Recovery Efficiency,2016,23(2):1-8.
    [24]
    李彦举.基于恒速压汞的孔隙结构特征研究[D].北京:中国地质大学(北京),2014. LI Yanju.Study on pore structure characteristics based on constant-rate mercury injection[D].Beijing:China University of Geosciences(Beijing),2014.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1241) PDF downloads(264) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return