Lithologic Reservoirs ›› 2020, Vol. 32 ›› Issue (3): 144-158.doi: 10.12108/yxyqc.20200314

• OIL AND GAS FIELD DEVELOPMENT • Previous Articles     Next Articles

Architecture characterization of single distributary channel sand bodies restricted by architecture interface of Yan 8 member in Y116 well area,Yanwu Oilfield

TONG Qiang1, YU Jianguo2, TIAN Yunji2, HU Kelai2, YANG Hongmei3, CHENG Xuming4, ZHU Yushuang1   

  1. 1. State Key Laboratory of Continental Dynamics/Department of Geology, Northwest University, Xi'an 710069, China;
    2. No. 11 Oil Production Plant, PetroChina Changqing Oilfield Company, Xifeng 745000, Gansu, China;
    3. No.2 Oil Production Plant, PetroChina Changqing Oilfield Company, Qingyang 745100, Gansu, China;
    4. No.1 Operation Area, Suligen South Operation Branch, PetroChina Changqing Oilfield Company, Xi'an 710018, China
  • Received:2019-06-12 Revised:2019-09-10 Online:2020-05-21 Published:2020-04-30

Abstract: The fine description of architecture of the sand bodies in a single channel is restricted by the third and fourth order architecture interface,which makes the classification and recognition of the interlayers to be the premise of this study. Guided by the analytic hierarchy process,starting from the core calibration,combined with the comprehensive analysis of logging data,the partition standard of the interlayer in Y116 well area of Yanwu Oilfield was identified by using intersection chart,and the horizontal and vertical distribution characteristics of the interlayer were studied by tracking multiple wells from a single well. Under its constraints,three types of architecture characterization units were depicted,forming the spatial distribution model of the architecture characterization interlayer. The results show that in Yan 8 member of Yanwu Oilfield,three types of architecture interfaces were identified,namely,the architecture characterization interlayer between sand bodies of single channel in vertical direction,the architecture characterization interlayer between sand bodies of single channel in horizontal direction and the interlayer within sand bodies of single channel. Under the genesis of argillaceous,calcareous and physical properties,the sand bodies of compound distributary channel were divided into four stages of single channel sand bodies. Among them,the architecture characterization interlayers are mainly distributed in the middle of the river,the muddy interlayers are common in the edge of the river,and the calcareous interlayers are mostly distributed in the upper part of the river. The research on the vertical superposition pattern and the plane contact pattern of the architecture characterization elements shows that the vertical separation type and cutting superposition type are the main types,and the horizontal side cutting type and flood plain contact type are the main types,forming the independent distributary channel unit,separate fine-grained sedimentary unit and contact accretion unit. All the architecture elements form an "extensive contact,superimposed and intricate" architecture distribution model of braided river delta plain with wide connectivity. This study realized the identification and characterization of interfaces in the study area,which can provide a basis for the fine characterization of single channel sand body architecture characterization unit,and has theoretical and practical significance for the further production and development of oilfield.

Key words: architecture characterization in single channel sand body, fine characterization, architecture interface, distribution pattern, Yan 8 member, Yanwu Oilfield

CLC Number: 

  • TE121.3
[1] 于兴河,马兴祥,穆龙新,等.辫状河储层地质模式及层次界面分析.北京:石油工业出版社,2004:101-183. YU X H,MA X X,MU L X,et al. Reservoir geology model and analysis of hierarchy surface. Beijing:Petroleum Industry Press,2004:101-183.
[2] 肖大坤,胡光义,范廷恩,等.现代曲流河沉积原型建模及构型级次特征探讨:以海拉尔河、潮白河为例.中国海上油气, 2018,30(1):118-126. XIAO D K,HU G Y,FAN T E,et al. Prototype model of modern fluvial deposits and discussion on architectural units:a case study of Hailar River and Chaobai River. China Offshore Oil and Gas,2008,30(1):118-126.
[3] 党胜国,闫建丽,汪巍,等.渤海海域辫状河储层构型界面定量表征.特种油气藏,2017,24(4):88-93. DANG S G,YAN J L,WANG W,et al. Quantitative characterization of braided river reservoir architecture interface in Bohai Sea. Special Oil and Gas Reservoirs,2017,24(4):88-93.
[4] 孙天建,穆龙新,吴向红,等.砂质辫状河储层构型表征方法:以苏丹穆格莱特盆地Hegli油田为例.石油学报,2014,35(4):715-724. SUN T J,MU L X,WU X H,et al. A quantitative method for architectural characterization of sandy braided-river reservoirs:Taking Hegli oilfield Muglad Basin in Sudan as an example. Acta Petrolei Sinica,2014,35(4):715-724.
[5] 胡光义,许磊,王宗俊,等.加拿大阿萨巴斯卡Kinosis区域下白垩统McMurray组内河口湾复合点坝砂体构型解剖.古地理学报,2018,20(6):1001-1012. HU G Y,XU L,WANG Z J,et al. Architectural analysis of compound point-bar sandbody in inner estuary of the Lower Cretaceous McMurry Formation in Kinosis area,Athabasca, Canada. Journal of Palaeogeography (Chinese Edition),2018, 20(6):1001-1012.
[6] 陈飞,胡光义,胡宇霆,等.储层构型研究发展历程与趋势思考.西南石油大学学报(自然科学版),2018,40(5):1-14. CHEN F,HU G Y,HU Y T,et al. Development history and future trends in reservoir architecture research. Journal of Southwest Petroleum University (Science&Technology Edition), 2018,40(5):1-14.
[7] 胡光义,范廷恩,陈飞,等.复合砂体构型理论及其生产应用.石油与天然气地质,2018,39(1):1-10. HU G Y,FAN T E,CHEN F,et al. Theory of composite sand body architecture and its application to oilfield development. Oil and Gas Geology,2018,39(1):1-10.
[8] 胡光义,肖大坤,范廷恩,等.河流相储层构型研究新理论、新方法:海上油田河流相复合砂体构型概念、内容及表征方法.古地理学报,2019,21(1):143-159. HU G Y,XIAO D K,FAN T E,et al. New theory and method of fluvial reservoir architecture study:Concepts,contents and characterization of offshore oilfield fluvial compound sandbody architecture. Journal of Palaeogeography (Chinese Edition),2019,21(1):143-159.
[9] 胡光义,范廷恩,梁旭,等.河流相储层复合砂体构型概念体系、表征方法及其在渤海油田开发中的应用探索.中国海上油气,2018,30(1):89-98. HU G Y,FAN T E,LIANG X,et al. Concept system and characterization method of compound sandbody architecture in fluvial reservoir and its application exploration in development of Bohai oilfield. China Offshore Oil and Gas,2018,30(1):89-98.
[10] 赵晔,师永民,刘新菊,等.安塞浅水三角洲前缘复合单砂体精细识别与划分.特种油气藏,2018,25(3):56-60. ZHAO Y,SHI Y M,LIU X J,et al. Precise identification and classification of composite single sandbodies in the Ansai shallow water delta front. Special Oil and Gas Reservoir,2018,25(3):56-60.
[11] 常海燕,严耀祖,陈更新,等.近岸水下扇储层构型及剩余油分布模式:以柴达木盆地七个泉油田E31油藏为例.岩性油气藏,2018,30(3):143-152. CHANG H Y,YAN Y Z,CHEN G X,et al. Reservoir configuration and remaining oil distribution patterns of nearshore subaqueous fan:a case from E31 reservoir in Qigequan oilfield,Qaidam Basin. Lithologic Reservoirs,2018,30(3):143-152.
[12] 尹艳树,刘元.近岸水下扇扇中厚砂体储层构型及对剩余油控制:以南襄盆地泌阳凹陷古近系核桃园组三段四砂组2小层为例.地质论评,2017,63(3):703-718. YIN Y S,LIU Y. Analysis of the reservoir architecture of thick sandbody and its control on remaining oil in middle nearshore subaqueous fan. Geological Review,2017,63(3):703-718.
[13] 印森林,吴胜和,冯文杰,等.冲积扇储集层内部隔夹层样式:以克拉玛依油田一中区克下组为例.石油勘探与开发,2013, 40(6):757-763. YIN S L,WU S H,FENG W J,et al. Patterns of inter-layers in the alluvial fan reservoirs:a case study on Triassic lower Karamay Formation,Yizhong area,Karamay Oilfield,NW China. Petroleum Exploration and Development,2013,40(6):757-763.
[14] 余义常,徐怀民,江同文,等.海相碎屑岩水平井隔夹层识别与表征:以哈得逊油田东河砂岩为例.中国矿业大学学报, 2018,47(6):1313-1324. YU Y C,XU H M,JIANG T W,et al. Identification and characterization of interlayers on horizontal well in marine clastic reservoir:a case study of Donghe sandstone in Hadeson oilfield Tarim basin. Journal of China University of Mining and Technology,2018,47(6):1313-1324.
[15] 潘石坚,戴宗,刘伟新,等. L油田巨厚层海相砂岩内隔夹层定量表征及开发意义.石油地质与工程,2018,32(3):68-72. PAN S J,DAI Z,LIU W X,et al. Quantitative characterization and development significance of interlayers in thick marine sandstones of L oilfield. Petroleum Geology and Engineering, 2018,32(3):68-72.
[16] 徐丽强,李胜利,于兴河,等.辫状河三角洲前缘储层隔夹层表征及剩余油预测:以彩南油田彩9井区三工河组为例.东北石油大学学报,2016,40(4):10-18. XU L Q,LI S L,YU X H,et al. Characterization of barrier-intercalation and remaining oil prediction in the braided river delta front reservoirs:an example from the Sangonghe Formation in block Cai 9 of caiman oilfield. Journal of Northeast Petroleum University,2016,40(4):10-18.
[17] 杨有星,金振奎,白忠凯,等.辫状河单河道砂体接触关系及主控因素分析:以新疆克拉玛依,山西柳林、大同和陕西延安辫状河露头为例.岩性油气藏,2018,30(2):30-38. YANG Y X,JIN Z K,BAI Z K,et al. Contact relationship and main controlling factors of braided river single channel sand body:a case of braided river from Karamay in Xinjiang. Lithologic Reservoirs,2018,30(2):30-38.
[18] 张建兴,林承焰,张宪国,等.基于储层构型与油藏数值模拟的点坝储层剩余油分布研究.岩性油气藏,2017,29(4):146-153. ZHANG J X,LIN C Y,ZHANG X G,et al. Remaining oil distribution of point bar reservoir based on reservoir architecture and reservoir numerical simulation. Lithologic Reservoirs,2017, 29(4):146-153.
[19] MIALL A D. A review of the braided-river depositional environment. Earth Science Reviews,1977,13:1-62.
[20] MIALL A D. Lithofacies types and vertical profile models in braided river deposits:a summary//MIALL A D. Fluvial Sedimentology. Canadian Society of Petroleum Geology Memoir 5, 1978:597-604.
[21] MIALL A D. Architectural elements analysis:a new method of facies analysis applied to fluvial deposits. Earth Science Reviews,1985,22:261-308.
[22] MIALL A D. Architectural elements and bounding surfaces in fluvial deposits:Anatomy of the Kayenta Formation (Lower Jurassic),south-west Colorado.Sedimentary Geology,1988,55:233-262.
[23] MIALL A D. The geology of fluvial deposits:Sedimentary facies,basin analysis,and petroleum geology. Berlin:Springer, 1996:75-310.
[24] 周学慧,丁文龙,昌伦杰,等."三端员定型"法识别滨岸相砂岩储层隔夹层:以塔里木盆地哈得逊油田东河砂岩为例.地学前缘,2017,24(5):328-338. ZHOU X H,DING W L,CHANG L J,et al. Three-end-mumber diagram of classification to identify the interlayers of sandstone reservoir in littoral facies:a case from Carboniferous Donghe sandstone in Hade Oilfield,Tarim Basin,NW China. Earth Science Frontiers,2017,24(5):328-338.
[25] 冯文杰,芦凤明,吴胜和,等.断陷湖盆长轴缓坡辫状河三角洲前缘储层构型研究:以大港枣园油田枣南断块孔一段枣V油组为例.中国矿业大学学报,2018,47(2):367-379. FENG W J,LU F M,WU S H,et al. Reservoir architecture analysis of braided delta front developed in the long-axis gentle slope of faulted basin:a case study of the fifth Zaoyuan formation,Zaonan fault block,Zaoyuan oilfield,Dagang. Journal of China University of Mining and Technology,2018,47(2):367-379.
[26] 何翠.基于井震结合的辫状河三角洲前缘构型表征及控制因素.北京:中国地质大学(北京),2017. HE C. Delta front architecture characterization of braided river based on combination of well and seismic and its controlling factors. Beijing:China University of Geosciences (Beijing), 2017.
[27] 李岩.扇三角洲前缘储层构型及其控油作用:以赵凹油田赵凹区块核桃园组三段Ⅳ31厚油层为例.岩性油气藏,2017,29(3):132-139. LI Y. Reservoir architecture of fan delta front and its oil-control models:a case of Eh3 Ⅳ31 reservoir in Zhaowa block of Zhaowa Oilfield,Biyang Depression. Lithologic Reservoirs,2017, 29(3):132-139.
[28] 解珺,胡望水,陈叔阳,等.塔河一区下油组辫状河三角洲储层构型分析.油气地质与采收率,2017,24(5):46-52. XIE J,HU W S,CHEN S Y,et al. Reservoir architectural analysis of the braided fluvial delta of the lower oil layer in the 1st block of the Tahe Oilfield. Petroleum Geology and Recovery Efficiency,2017,24(5):46-52.
[29] 刘桂珍,鲍志东,关延华,等.英台油田辫状河三角洲前缘沉积特征及构型要素.石油天然气学报(江汉石油学院学报), 2008,30(6):186-189. LIU G Z,BAO Z D,GUAN Y H,et al. Sedimentary characteristics and configuration elements of braided river delta front in Yingtai oilfield. Journal of Oil and Gas Technology (Journal of Jianghan Petroleum Institute),2008,30(6):186-189.
[30] 肖正录,陈世加,廖建波,等.河道构型单元及其对油藏的控制作用:以鄂尔多斯盆地华庆地区长8段储集层为例.新疆石油地质,2018,39(5):524-529. XIAO Z L,CHEN S J,LIAO J B,et al. Channel architecture element and its controls on hydrocarbon accumulation:a case study from Chang-8 member in Huaqing area,Ordos Basin. Xinjiang Petroleum Geology,2018,39(5):524-529.
[31] 王玥,郭彦如,张延玲,等.鄂尔多斯盆地东北部山西组层序格架下的砂体成因类型、构型及分布.岩性油气藏,2018,30(3):80-91. WANG Y,GUO Y R,ZHANG Y L,et al. Genetic types,configuration and distribution of sand bodies of Shanxi Formation in northeastern Ordos Basin. Lithologic Reservoirs,2018,30(3):80-91.
[32] 秦国省,吴胜和,宋新民,等.远源细粒辫状河三角洲沉积特征与单砂体构型分析.中国石油大学学报(自然科学版), 2017,41(6):9-19. QIN G S,WU S H,SONG X M,et al. Sedimentary characteristics of distal fine-grain braided delta and architecture analysis of single sand body. Journal of China University of Petroleum (Natural Science Edition),2017,41(6):9-19.
[33] 葛云龙,逯径铁,廖保方,等.辫状河相储集层地质模型: "泛连通体".石油勘探与开发,1998,25(5):77-79. GE Y L,LU J T,LIAO B F,et al. A braided river reservoir geological model:Pan-communicated sandbody. Petroleum Exploration and Development,1998,25(5):77-79.
[34] 吴俊,樊太亮,高志前,等.辽河西部凹陷杜84块兴隆台Ⅰ油层隔夹层识别、成因及分布特征.石油与天然气地质,2017, 38(2):248-258. WU J,FAN T L,GAO Z Q,et al. Identification,origin and distributions of barriers/baffles Xing-Ⅰoil layer in block Du-84 of the western Liaohe Depression. Oil and Gas Geology,2017,38(2):248-258.
[35] 王爱国,王震亮,冷先刚,等.柴北缘N1井储层的源控成岩演化与钙质夹层成因.中国石油大学学报(自然科学版),2018, 42(5):1-13. WANG A G,WANG Z L,LENG X G,et al. Source-rock-derived diagenetic evolution and origin of calcareous interlayer in reservoirs of well N1 in the northern Qaidam Basin. Journal of China University of Petroleum (Natural Science Edition),2018,42(5):1-13.
[36] 刘超,李云鹏,刘宗宾,等.渤海湾盆地S油田三角洲相储层隔夹层及剩余油挖潜研究.西安石油大学学报(自然科学版),2017,32(3):26-33. LIU C,LI Y P,LIU Z B,et al. Research on interlayers and remaining oil of delta facies reservoir in S oilfield,Bohai Bay Basin. Journal of Xi'an Shiyou University (Natural Science Edition),2017,32(3):26-33.
[37] 封从军,鲍志东,代春明,等.三角洲前缘水下分流河道单砂体叠置机理及对剩余油的控制:以扶余油田J19区块泉头组四段为例.石油与天然气地质,2015,36(1):128-135. FENG C J,BAO Z D,DAI C M,et al. Superimposition patterns of underwater distributary channel sands in deltaic front and its control on remaining oil distribution:a case study from K1q4 in J19 block,Fuyu oilfield. Oil&Gas Geology,2015,36(1):128-135.
[38] 封从军,鲍志东,杨玲,等.三角洲前缘水下分流河道储集层构型及剩余油分布.石油勘探与开发,2014,41(3):323-329. FENG C J,BAO Z D,YANG L,et al. Reservoir architecture and remaining oil distribution of deltaic front underwater distributary channel. Petroleum Exploration and Development, 2014,41(3):323-329.
[39] 封从军,鲍志东,单启铜,等.三角洲平原复合分流河道内部单砂体划分:以扶余油田中区南部泉头组四段为例.石油与天然气地质,2012,33(1):77-83. FENG C J,BAO Z D,SHAN Q T,et al. Single sand body identification in compound distributary channel of delta plain:a case study from the fourth member of Quantou Formation in the southern part of central Fuyu oilfield. Oil&Gas Geology, 2012,33(1):77-83.
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