Geologic Exploration

Evaluation Techniques of Bedrock Reservoir Effectiveness in the Northern Songliao Basin

  • Gao Tao ,
  • Wang Chunyan ,
  • Wang Haiyan ,
  • Jin Xueying ,
  • Qin Hao
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  • PetroChina Daqing Oilfield Co., Ltd., Daqing, Heilongjiang 163712, China

Received date: 2023-01-13

  Revised date: 2023-12-10

  Online published: 2024-07-26

Abstract

To address the problem such as the complex bedrock lithology, dense reservoirs, fracture development, low calculation accuracy of reservoir parameter and difficult evaluation of reservoir effectiveness in the northern Songliao Basin, a new three-dimensional lithology identification method of "original rock+composition+structure" was proposed; the effective porosity model for variable skeletal density based on M and N was established by calculating the slope M using the acoustic-density rendezvous plot and the slope N using the neutron-density rendezvous plot; the gas saturation model of fracture-containing reservoir was established by studying the conductivity mechanism of bedrock and correcting the additional conductivity of fractures; the effective thickness standard of bedrock reservoir and the classification standard of effective reservoir were determined by considering the effective porosity, secondary porosity and the degree of fracture development. The application results show that the lithologic interpretation compliance rate of this set of technology can reach 87.5%, the gas-bearing formation identification compliance rate reaches 88.5%, and the calculation accuracy of porosity and saturation meets the requirements of the reservoir specification. The study results can provide technical guarantee for the geological exploration and reserve evaluation of bedrock reservoirs in the northern Songliao Basin.

Cite this article

Gao Tao , Wang Chunyan , Wang Haiyan , Jin Xueying , Qin Hao . Evaluation Techniques of Bedrock Reservoir Effectiveness in the Northern Songliao Basin[J]. Special Oil & Gas Reservoirs, 2024 , 31(2) : 57 -65 . DOI: 10.3969/j.issn.1006-6535.2024.02.007

References

[1] 韩瑞民.基岩油气藏探测方法综述[J].江汉石油科技,2006,16(4):16-18.
HAN Ruimin.Overview of detection methods for bedrock oil and gas reservoirs[J].Jianghan Petroleum Science and Technology,2006,16(4):16-18.
[2] 孙娜.辽河盆地兴马太古界潜山的岩性识别与储层划分[J].石油地质与工程,2007,21(4):20-23.
SUN Na.Lithologic identification and reservoir division of Xing-MA Archean group buried hill in Liaohe Basin[J].Petroleum Geology & Engineering,2007,21(4):20-23.
[3] 付崇清.辽河油田变质岩潜山测井综合评价[J].大庆石油地质与开发,2007,26(5):138-143.
FU Chongqing.Comprehensive logging evaluation to metamorphic buried hill in Liaohe Oilfield[J].Petroleum Geology & Oilfield Development in Daqing,2007,26(5):138-143.
[4] 钱宝娟.兴隆台古潜山储层特征及成藏条件研究[J].特种油气藏,2007,14(5):35-48.
QIAN Baojuan.Xinglongtai buried hill reservoir characteristics and hydrocarbon accumulation conditions[J].Special Oil & Gas Reservoirs,2007,14(5):35-48.
[5] 陆诗阔,李冬冬.变质岩储层岩性及裂缝测井识别方法研究进展[J].特种油气藏,2016,23(4):1-6.
LU Shikuo,LI Dongdong.Advances in logging identification of lithology and fracture in metamorphic reservoir[J].Special Oil & Gas Reservoirs,2016,23(4):1-6.
[6] 朱留芳,吴海燕,翟勇.太古界变质岩储集层测井资料综合评价[J].天然气工业,2005,25(11):39-42.
ZHU Liufang,WU Haiyan,ZHAI Yong.Comprehensively evaluating the log data of archaeozoic erathem metamorphics reservoir[J].Natural Gas Industry,2005,25(11):39-42.
[7] 张顺,王丽静,张博远,等.松辽盆地安达古隆起风化壳特征及控藏机制[J].大庆石油地质与开发,2019,38(1):9-16.
ZHANG Shun,WANG Lijing,ZHANG Boyuan,et al.Characteristics of the weathered crust and reservoir-controlling mechanism for Anda Palaeohigh in Songliao Basin[J].Petroleum Geology & Oilfield Development in Daqing,2019,38(1):9-16.
[8] 王春燕.火山岩岩相测井响应机理及识别方法[J].大庆石油地质与开发,2013,23(3):135-140.
WANG Chunyan.Log response mechanism and identifying method for volcanic facies[J].Petroleum Geology & Oilfield Development in Daqing,2013,23(3):135-140.
[9] 郭睿.储集层物性下限值确定方法及其补充[J].石油勘探与开发,2004,31(5):140-145.
GUO Rui.Supplement to determining method of cut-off value of net pay[J].Petroleum Exploration and Development,2004,31(5):140-145.
[10] 张厚淼.裂缝性储层饱和度模型研究[D].东营:中国石油大学(华东),2010.
ZHANG Houmiao.Research on saturation modeling of fractured reservoirs[D].Dongying:China University of Petroleum (East China),2010.
[11] 王斌,潘建国,尹路,等.基于双重孔隙结构的测井解释模型及应用[J].大庆石油地质与开发,2013,25(4):68-73.
WANG Bin,PAN Jianguo,YIN Lu,et al.Well logging interpretation model based on double pores and its application[J].Petroleum Geology & Oilfield Development in Daqing,2013,25(4):68-73.
[12] 孙建孟,王克文,李伟.测井饱和度解释模型及发展[J].石油勘探与开发,2008,35(1):101-108.
SUN Jianmeng,WANG Kewen,LI Wei.Development and analysis of logging saturation interpretation models[J].Petroleum Exploration and Development,2008,35(1):101-108.
[13] 李宁.电阻率-孔隙度、电阻率-含油(气)饱和度关系的一般形式及其最佳逼近函数类型的确定(I)[J].地球物理学报,1989,32(5):580-591.
LI Ning.General forms of the resistivity-porosity and resistivity-oil/gas saturation relations,as well as the determination of their optimum approximating function types(I)[J].Chinese Journal of Geophysics,1989,32(5):580-591.
[14] 田素月,司马立强.普光地区缝洞性储层岩电参数影响因素分析[J].测井技术,2009,32(2):130-134.
TIAN Suyue,SIMA Liqiang.On the influential factors of rock electrical parameters in fractured and caved reservoirs in the Puguang Area[J].Well Logging Technology,2009,32(2):130-134.
[15] 郭子南.兴隆台潜山基岩油藏储层分类评价[J].特种油气藏,2022,29(2):64-71.
GUO Zinan.Classification and evaluation of bedrock reservoirs in Xinglongtai Buried Hill[J].Special Oil & Gas Reservoirs,2022,29(2):64-71.
[16] 邱晨,闫建平,钟光海,等.四川盆地泸州地区奥陶系五峰组—志留系龙马溪组页岩沉积微相划分及测井识别[J].岩性油气藏,2022,34(3):117-130.
QIU Chen,YAN Jianping,ZHONG Guanghai,et al.Sedimentary microfacies division and logging identification of Ordovician Wufeng-Silurian Longmaxi shale in Luzhou Area,Sichuan Basin[J].Lithologic Reservoirs,2022,34(3):117-130.
[17] 李新文,吴华.基于改进毛管压力曲线的非均质储层分级评价与应用[J].特种油气藏,2022,29(2):128-134.
LI Xinwen,WU Hua.Classification evaluation and application of heterogeneous reservoirs based on improved capillary pressure curve[J].Special Oil & Gas Reservoirs,2022,29(2):128-134.
[18] 赵笑笑,闫建平,王敏,等.沾化凹陷沙河街组湖相泥页岩夹层特征及测井识别方法[J]. 岩性油气藏,2022,34(1):118-129.
ZHAO Xiaoxiao,YAN Jianping,WANG Min,et al.Logging identification method of lacustrine shale interlayers of Shahejie Formation in Zhanhua Sag[J].Lithologic Reservoirs,2022,34(1):118-129.
[19] 柳筠, 张梦吟.页岩气田储层含气性测井评价——以四川盆地涪陵页岩气田J区块为例[J].石油实验地质, 2021, 43(1): 128-135.
LIU Yun, ZHANG Mengyin.Gas-bearing property evaluation by petrophysical logging in shale gas reservoirs:a case study in J Area of Fuling shale gas field,Sichuan Basin[J].Petroleum Geology & Experiment,2021, 43(1): 128-135.
[20] 崔裔曈,王祝文,徐方慧,等. 基于斯通利波及电成像测井数据对火成岩裂缝地层的特征分析[J].吉林大学学报(地球科学版),2022,52(2):624-632.
CUI Yitong,WANG Zhuwen,XU Fanghui,et al.Analysis of fracture formation characteristics of igneous rock based on Stoneley wave and electrical imaging logging[J].Journal of Jilin University (Earth Science Edition), 2022, 52 (2): 624-632.
[21] 冯动军, 肖开华.恒速压汞及核磁共振技术在四川盆地西部致密砂岩储层评价中的应用[J]. 石油实验地质, 2021, 43(2): 368-376.
FENG Dongjun,XIAO Kaihua.Constant velocity mercury injection and nuclear magnetic resonance in evaluation of tight sandstone reservoirs in western Sichuan Basin[J].Petroleum Geology & Experiment,2021, 43(2): 368-376.
[22] 雷海艳,郭佩,孟颖,等.玛湖凹陷二叠系风城组页岩油储层孔隙结构及分类评价[J]. 岩性油气藏,2022,34(3):142-153.
LEI Haiyan,GUO Pei,MENG Ying,et al.Pore structure and classification evaluation of shale oil reservoirs of Permian Fengcheng Formation in Mahu Sag[J].Lithologic Reservoirs,2022,34(3):142-153.
[23] 蔺敬旗, 孟鑫, 李晴晴, 等.砾岩储层电成像测井表征方法及应用[J].石油钻探技术, 2022, 50(2): 126-131.
LIN Jingqi,MENG Xin,LI Qingqing,et al.Characterization method and application of electrical imaging logging in conglomerate reservoir:a case study in Mahu Sag of Junggar Basin[J]. Petroleum Drilling Techniques, 2022, 50(2): 126-131.
[24] HERRON M M.Mineralogy from geochemical well logging[J].Clays & Clay Minerals,2014,34(2):204-213.
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