岩性油气藏 ›› 2023, Vol. 35 ›› Issue (2): 110.doi: 10.12108/yxyqc.20230201
司马立强1,2, 马骏1,2, 刘俊丰3, 杨会洁3, 王亮4, 赵宁1,2
SIMA Liqiang1,2, MA Jun1,2, LIU Junfeng3, YANG Huijie3, WANG Liang4, ZHAO Ning1,2
摘要: 通过低场核磁共振实验分析了柴达木盆地涩北地区第四系泥岩型生物气储层在饱和水状态及渐变烘干温度状态下的T2谱,明确了孔隙流体的核磁响应特征,以评价孔隙的有效性。研究结果表明: ①核磁共振实验是以饱和水状态T2谱为基础,采用正态分布函数拟合构建了离心束缚水T2谱,确定了可动流体和毛管束缚流体T2截止值,用于划分出流体类型并开展了孔隙有效性评价。②研究区岩样饱和水状态T2谱谱峰呈左小右大的形态,右峰幅度值远大于左峰,占T2谱幅度值90%以上;随着烘干温度的升高,T2谱幅度减小且左移趋势明显;束缚水T2谱形态近似于正态分布,起始位置与饱和水状态的T2谱基本重合。③研究区可动流体T2截止值T2 C1平均为3.3 ms,毛管束缚流体T2截止值T2 C2平均为1.8 ms;孔隙流体包括可动水、毛管束缚水和黏土束缚水,黏土束缚水T2小于T2 C2,毛管束缚水T2大于T2 C2且小于T2 C1,可动流体T2大于T2 C1;毛管束缚水含量最高,黏土束缚水其次,两者占总孔隙流体的84.43%~95.06%,可动水含量低。④研究区储层有效孔隙占总孔隙的54.99%,主要为毛管束缚孔,黏土束缚孔为无效孔隙;黏土含量越高,有效孔隙度越小。
中图分类号:
[1] 张晓宝, 徐自远, 段毅, 等. 柴达木盆地三湖地区第四系生物气的形成途径与运聚方式[J]. 地质论评, 2003, 49(2):168-174. ZHANG Xiaobao, XU Ziyuan, DUAN Yi, et al. Metabolite pathway of the Quaternary biogenetic gases and their migration and accumulation in the Qaidam Basin[J]. Geological Review, 2003, 49(2):168-174. [2] 管志强, 夏斌, 吕宝凤. 柴达木盆地三湖地区生物气成藏基本要素及其配置性[J]. 天然气地球科学, 2008, 19(2):165-170. GUAN Zhiqiang, XIA Bin, LYU Baofeng. Elementary factors and their configuration of biogas accumulation in eastern Qaidam Basin[J]. Natural Gas Geoscience, 2008, 19(2):165-170. [3] 马力宁. 青海涩北第四系大型生物成因气气田主体开发技术研究[D]. 成都:西南石油学院, 2004. MA Lining. Research on the main development technology of the Quaternary large-scale biogenic gas field in Sebei, Qinghai[D]. Chengdu:Southwest Petroleum Institute, 2004. [4] 唐相路, 姜振学, 邵泽宇, 等. 第四系泥岩型生物气储层特征及动态成藏过程[J]. 现代地质, 2022, 36(2):682-694. TANG Xianglu, JIANG Zhenxue, SHAO Zeyu, et al. Reservoir characteristics and dynamic accumulation process of the Quaternary mudstone biogas[J]. Modern Geology, 2022, 36(2):682-694. [5] 赵佩, 李贤庆, 田兴旺, 等. 川南地区龙马溪组页岩气储层微孔隙结构特征[J]. 天然气地球科学, 2014, 25(6):947-956. ZHAO Pei, LI Xianqing, TIAN Xingwang, et al. Study on micropore structure characteristics of Longmaxi Formation shale gas reservoirs in the southern Sichuan Basin[J]. Natural Gas Geoscience, 2014, 25(6):947-956. [6] 陈秀娟, 刘之的, 刘宇羲, 等. 致密储层孔隙结构研究综述[J]. 物探与化探, 2022, 46(1):22-31. CHEN Xiujuan, LIU Zhidi, LIU Yuxi, et al. Research into the pore structure of tight reservoirs:A review[J]. Geophysical and Geochemical Exploration, 2022, 46(1):22-31. [7] 况晏, 司马立强, 瞿建华, 等.致密砂砾岩储层孔隙结构影响因素及定量评价:以玛湖凹陷玛131井区三叠系百口泉组为例[J]. 岩性油气藏, 2017, 29(4):91-100. KUANG Yan, SIMA Liqiang, QU Jianhua, et al. Influencing factors and quantitative evaluation for pore structure of tight glutenite reservoirs:A case of the Triassic Baikouquan Formation in Ma 131 well field, Mahu Sag[J]. Lithologic Reservoirs, 2017, 29(4):91-100. [8] 龚小平, 唐洪明, 赵峰, 等. 四川盆地龙马溪组页岩储层孔隙结构的定量表征[J]. 岩性油气藏, 2016, 28(3):48-57. GONG Xiaoping, TANG Hongming, ZHAO Feng, et al. Quantitative characterization of pore structure in shale reservoirs of Longmaxi Formation in Sichuan Basin[J]. Lithologic Reservoirs, 2016, 28(3):48-57. [9] 刘永. 基于核磁共振流态分析的页岩微纳米孔隙类型划分方法[D]. 北京:中国地质大学(北京), 2018. LIU Yong. A study of shale pore size classification by using low field nuclear magnetic resonance fluid typing method[D]. Beijing:China University of Geosciences(Beijing), 2018. [10] CHANG Dahai, VINEGAR H J, MORRISS C, et al. Effective porosity, producible fluid, and permeability in carbonates from NMR logging[J]. Log Analyst, 1997, 38(2):60-72. [11] 黄杰, 杜玉洪, 王红梅, 等. 特低渗储层微观孔隙结构与可动流体赋存特征:以二连盆地阿尔凹陷腾一下段储层为例[J]. 岩性油气藏, 2020, 32(5):93-101. HUANG Jie, DU Yuhong, WANG Hongmei, et al. Characteristics of micro pore structure and movable fluid of extra-low permeability reservoirs:A case study of lower Et1 reservoir in A' er Sag, Erlian Basin[J]. Lithologic Reservoirs, 2020, 32(5):93-101. [12] SUN Mengdi, YU Bingsong, HU Qinhong, et al. Pore connectivity and tracer migration of typical shales in south China[J]. Fuel, 2017, 203:32-46. [13] MINH C C, JAIN V, GRIFFITHS R, et al. NMR T2 fluids substitution[R]. Reykjavik, Iceland:SPWLA 57th Annual Logging Symposium, 2016. [14] STRALEY C, ROSSINI D, VINEGAR H J, et al. Core analysis by low-field NMR[J]. Log Analyst, 1997, 38(2):84-93. [15] 孙军昌, 陈静平, 杨正明, 等. 页岩储层岩心核磁共振响应特征实验研究[J]. 科技导报, 2012, 30(14):25-30. SUN Junchang, CHEN Jingping, YANG Zhengming, et al. Experimental study of the NMR characteristics of shale reservoir rock[J]. Science & Technology Review, 2012, 30(14):25-30. [16] LIU Yong, YAO Yanbin, LIU Dameng, et al. Shale pore size classification:An NMR fluid typing method[J]. Marine and Petroleum Geology, 2018, 96:591-601. [17] 向雪冰, 司马立强, 王亮, 等. 页岩气储层孔隙流体划分及有效孔径计算:以四川盆地龙潭组为例[J]. 岩性油气藏, 2021, 33(4):137-146.XIANG Xuebing, SIMA Liqiang, WANG Liang, et al. Pore fluid division and effective pore size calculation of shale gas reservoirs:A case study of Longtan Formation in Sichuan Basin[J]. Lithologic Reservoirs, 2021, 33(4):137-146. [18] 蒋裕强, 刘雄伟, 付永红, 等. 渝西地区海相页岩储层孔隙有效性评价[J]. 石油学报, 2019, 40(10):1233-1243. JIANG Yuqiang, LIU Xiongwei, FU Yonghong, et al. Evaluation of effective porosity in marine shale reservoirs, western Chongqing[J]. Acta Petrolei Sinica, 2019, 40(10):1233-1243. [19] 朱明, 贾春明, 穆玉庆, 等. 基于正态分布拟合的致密砂砾岩储层核磁共振测井可变T2截止值计算方法[J]. 石油地球物理勘探, 2021, 56(3):612-621. ZHU Ming, JIA Chunming, MU Yuqing, et al. A method of predicting T2 cutoffs from NMR logging data of tight glutenite reservoirs based on normal distribution simulation[J]. Petroleum Geophysical Exploration, 2021, 56(3):612-621. [20] 吴丰, 司马立强, 杨洪明, 等. 柴西地区复杂岩性核磁共振T2 截止值研究[J]. 测井技术, 2014, 38(2):144-149. WU Feng, SIMA Liqiang, YANG Hongming, et al. Research on NMR T 2 cutoff of complex lithology in the west Qaidam Basin[J]. Logging Technology, 2014, 38(2):144-149. [21] 朱筱敏, 康安, 胡宗全, 等. 柴达木盆地第四系层序地层特征与油气评价[J]. 石油勘探与开发, 2002, 29(1):56-60. ZHU Xiaomin, KANG An, HU Zongquan, et al. Quaternary sequence stratigraphy and hydrocarbon evaluation in Qaidam Basin[J]. Petroleum Exploration and Development, 2002, 29(1):56-60. [22] 马翔宇. 多层气藏试井分析[D]. 北京:中国地质大学(北京), 2012. MA Xiangyu. Well test analysis of multi-layered gas reservoir[D]. Beijing:China University of Geosciences(Beijing), 2012. [23] 胡鹏轩. 涩北一号气田水侵规律及开发对策研究[D]. 成都:西南石油大学, 2019. HU Pengxuan. Water invasion rule and development strategy of Sebei-1 gas field[D]. Chengdu:Southwest Petroleum University, 2019. [24] TESTAMANTI M N, REZAEE R. Determination of NMR T2 cut-off for clay bound water in shales:A case study of Carynginia Formation, Perth Basin, Western Australia[J]. Journal of Petroleum Science and Engineering, 2017, 149:497-503. [25] 时建超, 屈雪峰, 雷启鸿, 等. 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[J]. 天然气地球科学, 2016, 27(5):827-834. SHI Jianchao, QU Xuefeng, LEI Qihong, et al. Distribution characteristics and controlling factors of movable fluid in tight oil reservoirs:A case study of Chang 7 reservoir in Ordos Basin[J]. Natural Gas Geoscience, 2016, 27(5):827-834. [26] YUAN Yujie, REZAEE R, VERRALL M, et al. Pore characterization and clay bound water assessment in shale with a combination of NMR and low-pressure nitrogen gas adsorption-Science Direct[J]. International Journal of Coal Geology, 2018, 194:11-21. [27] 李闽, 王浩, 陈猛. 致密砂岩储层可动流体分布及影响因素研究:以吉木萨尔凹陷芦草沟组为例[J]. 岩性油气藏, 2018, 30(1):140-149. LI Min, WANG Hao, CHEN Meng. Distribution characteristics and influencing factors of movable fluid in tight sandstone reservoirs:A case study of Lucaogou Formation in Jimsar Sag[J]. Lithologic Reservoirs, 2018, 30(1):140-149. [28] 冒海军, 郭印同, 王光进, 等. 黏土矿物组构对水化作用影响评价[J]. 岩土力学, 2010, 31(9):2723-2728. MAO Haijun, GUO Yintong, WANG Guangjin, et al. Evaluation of impact of clay mineral fabrics on hydration process[J]. Rock and Soil Mechanics, 2010, 31(9):2723-2728. [29] 毛惠, 邱正松, 黄维安, 等. 温度和压力对黏土矿物水化膨胀特性的影响[J].石油钻探技术, 2013, 41(6):56-61. MAO Hui, QIU Zhengsong, HUANG Weian, et al. The effects of temperature and pressure on the hydration swelling characterietics of clay mineral[J]. Petroleum Drilling Technology, 2013, 41(6):56-61. [30] 余致理, 郭高峰, 余恒, 等. 水化作用下页岩微观孔隙结构伤害特征[J]. 西安石油大学学报(自然科学版), 2022, 37(1):44-50. YU Zhili, GUO Gaofeng, YU Heng, et al. Damage of hydration effect to micropore structure of shale[J]. Journal of Xi'an Shiyou University(Natural Science Edition), 2022, 37(1):44-50. |
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