岩性油气藏 ›› 2024, Vol. 36 ›› Issue (6): 169–180.doi: 10.12108/yxyqc.20240616

• 地质勘探 • 上一篇    下一篇

准噶尔盆地盆1井西凹陷侏罗系三工河组凝析气藏特征及成因机制

乔桐1,2, 刘成林1,2, 杨海波3, 王义凤4,5, 李剑4,5, 田继先4,5, 韩杨3, 张景坤1,2   

  1. 1. 中国石油大学(北京)油气资源与工程全国重点实验室, 北京 102249;
    2. 中国石油大学(北京)地球科学学院, 北京 102249;
    3. 中国石油新疆油田公司 勘探开发研究院, 新疆 克拉玛依 834000;
    4. 中国石油勘探开发研究院, 北京 10083;
    5. 中国石油天然气集团有限公司天然气成藏与开发重点实验室, 河北 廊坊 065007
  • 收稿日期:2023-10-25 修回日期:2023-12-26 出版日期:2024-11-01 发布日期:2024-11-04
  • 第一作者:乔桐(1998—),男,中国石油大学(北京)在读博士研究生,研究方向为油气地球化学与成藏。地址:(102249)北京市昌平区府学路18号。Email:1053132434@qq.com
  • 通信作者: 刘成林(1970—),男,博士,教授,主要从事油气地球化学与资源评价方面的教学与研究工作。Email:liucl@cup.edu.cn
  • 基金资助:
    中国石油天然气股份有限公司重大科技专项“凝析油与轻质油形成机制、成藏条件及资源潜力研究”(编号:2021DJ0603)资助。

Characteristics and genetic mechanism of condensate oil and gas of the Jurassic Sangonghe Formation in western well Pen-1 sag,Junggar Basin

QIAO Tong1,2, LIU Chenglin1,2, YANG Haibo3, WANG Yifeng4,5, LI Jian4,5, TIAN Jixian4,5, HAN Yang3, ZHANG Jingkun1,2   

  1. 1. State Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum(Beijing), Beijing 102249, China;
    2. College of Geosciences, China University of Petroleum(Beijing), Beijing 102249, China;
    3. Research Institute of Exploration and Development, PetroChina Xinjiang Oilfield Company, Karamay 834000, Xinjiang, China;
    4. PetroChina Research Institute of Petroleum Exploration & Development, Beijing 100083, China;
    5. Key Laboratory of Gas Reservoir Formation and Development, CNPC, Langfang 065007, Hebei, China
  • Received:2023-10-25 Revised:2023-12-26 Online:2024-11-01 Published:2024-11-04

摘要: 基于油气地球化学、试油结果与凝析气相态分析实验等资料,采用盆地模拟技术分析了准噶尔盆地盆1井西凹陷前哨井区侏罗系三工河组凝析气藏特征,并对凝析气藏的成藏过程与成因机制进行了详细研究。研究结果表明:①盆1井西凹陷侏罗系三工河组凝析气藏为构造-岩性油气藏,优质储层岩性主要为灰色细—中粒长石岩屑砂岩,孔隙度为2.70%~16.10%,平均为12.10%,渗透率为0.016~109.000 mD,平均为14.170 mD,属于中孔、低渗储层,与下伏的二叠系风城组和下乌尔禾组2套烃源岩形成了良好的储-盖组合。②研究区凝析油表现为低密度、低黏度、低凝固点和低含蜡量等特征,正构烷烃以低—中碳数为主,为下乌尔禾组烃源岩成熟—高成熟阶段的产物。③研究区凝析气藏天然气组分以烃类气为主,甲烷与乙烷碳同位素值分布集中,分别为-37.40‰~-36.84‰与-27.55‰~-26.54‰,为腐殖型烃源岩裂解气,来源于下乌尔禾组烃源岩。④研究区下乌尔禾组烃源岩于古近纪早期生成的凝析油气经过不断调整最终于新近纪早期充注形成凝析气藏,从成藏至现今储层流体组分未发生改变,油气藏相态类型也未发生改变,为原生型凝析气藏。

关键词: 凝析油, 凝析气藏, 腐殖型裂解气, 下乌尔禾组烃源岩, 油气藏相态类型, 三工河组, 侏罗系, 盆1井西凹陷, 准噶尔盆地

Abstract: Based on the analysis and test data of petroleum geochemistry,oil test and phase behavior analysis of condensate gas,basin modeling techniques were used to determine the characteristics,accumulation process and genetic mechanism of condensate gas reservoirs of Jurassic Sangonghe Formation in Qianshao well area of western well Pen-1 sag,Junggar Basin. The results show that:(1)The condensate reservoirs of Jurassic Sangonghe Formation are structural-lithologic reservoirs in western well Pen-1 sag. The high-quality reservoirs are mainly composed of gray fine-medium feldspathic detritus sandstone,with porosity ranging from 2.70% to 16.1%,an average value of 12.10%,permeability ranging from 0.016 mD to 109.000 mD,an average value of 14.17 mD. The reservoirs belong to middle porosity and low permeability reservoirs,and form reservoir-cap assemblage with two sets of source rocks from the underlying Permian Fengcheng Formation and lower Urho Formation.(2)The condensate oil in the study area is the product of the source rocks of lower Urho Formation within mature to high-mature stage,it has physical properties of low density,low viscosity,low freezing point and low wax content,and its n-alkanes are composed of low and medium carbon components.(3)The natural gas of condensate gas reservoirs in the study area is mainly composed of hydrocarbon gas,with concentrated distribution of methane and ethane carbon isotope values ranging from -37.40‰ to -36.84‰ and -27.55‰ to -26.54‰,respectively. It was derived from the cracking of humic-type source rocks of lower Urho Formation. (4)The condensate oil and gas generated by the source rocks of lower Urho Formation in the early Paleogene were continuously adjusted and finally charged in the early Neogene to form the present condensate gas reservoirs. The fluid composition has not changed since the reservoir formation,and the fluid phase type is also unchanged,so it is a primary condensate gas reservoir.

Key words: condensate oil, condensate gas reservoir, humic-type cracking gas, source rocks of lower Urho Formation, phase type of reservoir, Sangonghe Formation, Jurassic, western well Pen-1 sag, Junggar Basin

中图分类号: 

  • TE122.1
[1] 杨海军,朱光有. 塔里木盆地凝析气田的地质特征及其形成机制[J]. 岩石学报,2013,29(9):3233-3250. YANG Haijun,ZHU Guangyou. The condensate gas field geo logical characteristics and its formation mechanism in Tarim Basin[J]. Acta Petrologica Sinica,2013,29(9):3233-3250.
[2] 李小地. 凝析气藏的成因类型与成藏模式[J]. 地质论评, 1998,44(2):200-206. LI Xiaodi. Genetical types and formation model of condensate gas pools[J]. Geological Review,1998,44(2):200-206.
[3] 杨德彬,朱光有,刘家军,等. 全球大型凝析气田的分布特征及其形成主控因素[J]. 地学前缘,2010,17(1):339-349. YANG Debin,ZHU Guangyou,LIU Jiajun,et al. Distribution of global condensate gas field and major factors controlling its formation[J]. Earth Science Frontiers,2010,17(1):339-349.
[4] 杨海军,朱光有,韩剑发,等. 塔里木盆地塔中礁滩体大油气田成藏条件与成藏机制研究[J]. 岩石学报,2011,27(6): 1865-1885. YANG Haijun,ZHU Guangyou,HAN Jianfa,et al. Conditions and mechanism of hydrocarbon accumulation in large reefbank karst oil/gas fields of Tazhong area,Tarim Basin[J]. Acta Petrologica Sinica,2011,27(6):1865-1885.
[5] 李明阳,黎承银,屈大鹏,等. 川东南涪陵地区凉高山组凝析油气藏特征及成因[J]. 新疆石油地质,2022,43(4):387-395. LI Mingyang,LI Chengyin,QU Dapeng,et al. Characteristics and genesis of condensate reservoirs of Lianggaoshan Forma tion in Fuling area,southeastern Sichuan Basin[J]. Xinjiang Petroleum Geology,2022,43(4):387-395.
[6] 胡安文,牛成民,王德英,等. 渤海湾盆地渤中凹陷渤中19-6构造凝析油气特征与形成机制[J]. 石油学报,2020,41(4): 403-411. HU Anwen,NIU Chengmin,WANG Deying,et al. The charac teristics and formation mechanism of condensate oil and gas in Bozhong 19-6 structure,Bozhong sag,Bohai Bay Basin[J]. Acta Petrolei Sinica,2020,41(4):403-411.
[7] 唐勇,雷德文,曹剑,等. 准噶尔盆地二叠系全油气系统与源内天然气勘探新领域[J]. 新疆石油地质,2022,43(6):654-662. TANG Yong,LEI Dewen,CAO Jian,et al. Total petroleum system and innersource natural gas exploration in Permian strata of Junggar Basin[J]. Xinjiang Petroleum Geology,2022,43(6): 654-662.
[8] 费李莹,王仕莉,苏昶,等. 准噶尔盆地盆1井西凹陷东斜坡侏罗系三工河组油气成藏特征及控制因素[J]. 天然气地球科学,2022,33(5):708-719. FEI Liying,WANG Shili,SU Chang,et al. Characteristics of hydrocarbon accumulation and its controlling factors in Juras sic Sangonghe Formation in the east slope of well Pen-1 west ern depression in Junggar Basin[J]. Natural Gas Geoscience, 2022,33(5):708-719.
[9] 赵洪,罗晓容,张立宽,等. 准噶尔盆地中部1区块三工河组流体包裹体特征及对油气多期充注—调整过程的指示[J]. 天然气地球科学,2015,26(3):466-476. ZHAO Hong,LUO Xiaorong,ZHANG Likuan,et al. A sign to the multi-phase hydrocarbon charge and adjustment:Fluid in clusion study from the Sangonghe Formation in the No.1 block, the middle Junggar Basin[J]. Natural Gas Geoscience,2015,26(3):466-476.
[10] 刘华,孟祥雨,任新成,等. 准噶尔盆地盆1井西凹陷侏罗系原油成因与来源[J].中国石油大学学报(自然科学版),2023, 47(1):25-37. LIU Hua,MENG Xiangyu,REN Xincheng,et al. Origin and source of Jurassic crude oil in well Pen-1 western depression, Junggar Basin[J]. Journal of China University of Petroleum (Edition of Natural Science),2023,47(1):25-37.
[11] 韩杨,杨海波,郭文建,等. 准噶尔盆地盆1井西凹陷二叠系烃源岩生烃演化史及成藏模式[J]. 东北石油大学学报, 2023,47(1):30-43. HAN Yang,YANG Haibo,GUO Wenjian,et al. Hydrocarbon generation evolution and accumulation of Permian source rocks in the well Pen1 western depression of Junggar Basin[J]. Jour nal of Northeast Petroleum University,2023,47(1):30-43.
[12] 王小军,宋永,郑孟林,等. 准噶尔西部陆内盆地构造演化与油气聚集[J]. 地学前缘,2022,29(6):188-205. WANG Xiaojun,SONG Yong,ZHENG Menglin,et al. Tectonic evolution of and hydrocarbon accumulation in the western Jung gar Basin[J]. Earth Science Frontiers,2022,29(6):188-205.
[13] 何登发,张磊,吴松涛,等. 准噶尔盆地构造演化阶段及其特征[J]. 石油与天然气地质,2018,39(5):845-861. HE Dengfa,ZHANG Lei,WU Songtao,et al. Tectonic evolu tion stages and features of the Junggar Basin[J]. Oil & Gas Ge ology,2018,39(5):845-861.
[14] 雷海艳,王剑,陈锐兵,等. 准噶尔盆地盆1井西凹陷东斜坡下侏罗统三工河组二段油气成藏有利地质因素[J]. 吉林大学学报(地球科学版),2022,52(4):1052-1064. LEI Haiyan,WANG Jian,CHEN Ruibing,et al. Favorable geo logical factors for hydrocarbon accumulation in the second member of Sangonghe Formation of Lower Jurassic in the east slope of western well Pen-1 sag in Junggar Basin[J]. Journal of Jilin University(Edition Science Edition),2022,52(4):1052- 1064.
[15] 陈棡,卞保力,李啸,等. 准噶尔盆地腹部中浅层油气输导体系及其控藏作用[J]. 岩性油气藏,2021,33(1):46-56. CHEN Gang,BIAN Baoli,LI Xiao,et al. Transport system and its control on reservoir formation of Jurassic-Cretaceous in hin terland of Junggar Basin[J]. Lithologic Reservoirs,2021,33(1):46-56.
[16] 郭秋麟,吴晓智,卫延召,等. 准噶尔盆地腹部侏罗系油气运移路径模拟[J]. 岩性油气藏,2021,33(1):37-45. GUO Qiulin,WU Xiaozhi,WEI Yanzhao,et al. Simulation of oil and gas migration pathways for Jurassic in hinterland of Junggar Basin[J]. Lithologic Reservoirs,2021,33(1):37-45.
[17] 国家发展和改革委员会. 石油和沉积有机质烃类气相色谱分析方法:SY/T 5779—2008[S]. 北京:石油工业出版社,2008. National Development and Reform Commission. Analytical method of hydrocarbons in petroleum and sediment by gas chromatography:SY/T 5779—2008[S]. Beijing:Petroleum In dustry Press,2008.
[18] 程克明,金伟明,何忠华,等. 陆相原油及凝析油的轻烃单体组成特征及地质意义[J]. 石油勘探与开发,1987,14(1):34-44. CHENG Keming,JIN Weiming,HE Zhonghua,et al. Composi tion characteristics of light hydrocarbons in continental oil and condensate and their geological significance[J]. Petroleum Ex ploration and Development,1987,14(1):34-44.
[19] 党文龙,高岗,尤新才,等. 准噶尔盆地玛湖凹陷大油区不同类型原油分布及成因[J]. 石油勘探与开发,2023,50(4):731-741. DANG Wenlong,GAO Gang,YOU Xincai,et al. Genesis and distribution of oils in Mahu Sag province,Junggar Basin,NW China[J]. Petroleum Exploration and Development,2023,50(4):731-741.
[20] 唐勇,王智强,庞燕青,等. 准噶尔盆地西部坳陷二叠系下乌尔禾组烃源岩生烃潜力评价[J]. 岩性油气藏,2023,35(4): 16-28. TANG Yong,WANG Zhiqiang,PANG Yanqing,et al. Hydrocarbon-generating potential of source rocks of Permian lower Urho Formation in western depression,Junggar Basin[J]. Lithologic Reservoirs,2023,35(4):16-28.
[21] 陈建平,王绪龙,邓春萍,等. 准噶尔盆地烃源岩与原油地球化学特征[J]. 地质学报,2016,90(1):37-67. CHEN Jianping,WANG Xulong,DENG Chunping. et al. Geo chemical features of source rocks and crude oil in the Junggar Basin,northwest China[J]. Acta Geologica Sinica,2016,90(1):37-67.
[22] 中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会. 气相色谱-质谱法测定沉积物和原油中生物标志物:GB/T 18606—2017[S]. 北京:中国标准出版社,2017. General Administration of Quality Supervision,Inspection and Quarantine of the People’s Republic of China,Standardization Administration of the People’s Republic of China. The test method for biomarkers in sediment and crude oil by GC-MS:GB/T 18606—2017[S]. Beijing:Standards Press of China,2017.
[23] 国家市场监督管理总局,国家标准化管理委员会. 天然气发热量、密度、相对密度和沃泊指数的计算方法:GB/T 11062— 2020[S].北京:中国标准出版社,2020. State Administration for Market Regulation,Standardization Administration of the People’s Republic of China. Natural gas— Calculation of calorific values,density,relative density and Wobbe indices from composition:GB/T 11062—2020[S]. Beijing: Standards Press of China,2020.
[24] 国家市场监督管理总局,国家标准化管理委员会. 天然气的组成分析气相色谱法:GB/T 13610—2020[S]. 北京:中国标准出版社,2020. State Administration for Market Regulation,Standardization Administration of the People’s Republic of China. Analysis of natural gas composition—Gas chromatography:GB/T 13610— 2020[S]. Beijing:Standards Press of China,2020.
[25] 国家能源局. 有机物和碳酸盐岩碳、氧同位素分析方法:SY/ T 5238—2019[S]. 北京:石油工业出版社,2019. National Energy Administration. Analysis method for carbon and oxygen isotope of organic matter and carbonate:SY/T 5238— 2019[S]. Beijing:Petroleum Industry Press,2019.
[26] 中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会. 沉积岩中干酪根分离方法:GB/T 19144— 2010[S]. 北京:中国标准出版社,2010. General Administration of Quality Supervision,Inspection and Quarantine of the People’s Republic of China,Standardization Administration of the People’s Republic of China. Isolation method for kerogen from sedimentary rock:GB/T 19144—2010[S]. Beijing:Standards Press of China,2010.
[27] 陈建平,王绪龙,陈践发,等. 甲烷碳同位素判识天然气及其源岩成熟度新公式[J]. 中国科学:地球科学,2021,51(4): 560-581. CHEN Jianping,WANG Xulong,CHEN Jianfa,et al. New equation to decipher the relationship between carbon isotopic composition of methane and maturity of gas source rocks[J]. Science China:Earth Sciences,2021,51(4):560-581.
[28] MILKOV A V. New approaches to distinguish shale-sourced and coal-sourced gases in petroleum systems[J]. Organic Geochemistry,2021,158(4):1104271.
[29] 胡国艺,李剑,谢增业,等. 天然气轻烃地球化学[M]. 北京: 石油工业出版社,2018:1-262. HU Guoyi,LI Jian,XIE Zengye,et al. Geochemistry of light hydrocarbons in natural gas[M]. Beijing:Petroleum Industry Press,2018:1-262.
[30] 王鹏,沈忠民,何崇康,等. 川南地区须家河组天然气地球化学特征及成藏过程[J]. 岩性油气藏,2017,29(5):19-27. WANG Peng,SHEN Zhongmin,HE Chongkang,et al. Geo chemical characteristics and accumulation process of natural gas of Xujiahe Formation in southern Sichuan Basin[J]. Litho logic Reservoirs,2017,29(5):19-27.
[31] 国家能源局. 罐顶气轻烃气相色谱分析方法:SY/T 5259— 2019[S]. 北京:石油工业出版社,2019. National Energy Administration. Gas chromatography analysis method of the light hydrocarbon from head space gas:SY/T 5259—2019[S]. Beijing:Petroleum Industry Press,2019.
[32] 胡国艺,李剑,李谨,等. 判识天然气成因的轻烃指标探讨[J]. 中国科学D辑:地球科学,2007,37(2):111-117. HU Guoyi,LI Jian,LI Jin,et al. Preliminary study on the origin identification of natural gas by the parameters of light hydrocar bon[J]. Science in China Series D:Earth Sciences,2007,37(2):111-117.
[33] 胡惕麟,戈葆雄,张义纲,等. 源岩吸附烃和天然气轻烃指纹参数的开发和应用[J]. 石油实验地质,1990,12(4):375-394. HU Tilin,GE Baoxiong,ZHANG Yigang,et al. The develop ment and application of fingerprint parameters for hydrocar bons absorbed by source rocks and light hydrocarbons in natu ral gas[J]. Petroleum Geology & Experiment,1990,12(4): 375-394.
[34] 江梦雅,王江涛,刘龙松,等. 准噶尔盆地盆1井西凹陷石炭系—二叠系天然气特征及成藏主控因素[J]. 岩性油气藏, 2023,35(3):138-151. JIANG Mengya,WANG Jiangtao,LIU Longsong,et al. Characteris tics and main controlling factors of natural gas of CarboniferousPermian in western well Pen-1 sag,Junggar Basin[J]. Litho logic Reservoirs,2023,35(3):138-151.
[35] THOMAS H,ARMIN I K. Fundamentals of basin and petro leum systems modeling[M]. Berlin:Springer,2009.
[36] FENG Dehao,LIU Chenglin,TIAN Jixian,et al. Natural gas genesis,source and accumulation processes in northwestern Qa idam Basin,China,revealed by integrated 3D basin modeling and geochemical research[J]. Natural Resources Research, 2022,32(1):391-412.
[37] 冯德浩,刘成林,田继先,等. 柴达木盆地一里坪地区新近系盆地模拟及有利区预测[J]. 岩性油气藏,2021,33(3):74-84. FENG Dehao,LIU Chenglin,TIAN Jixian,et al. Basin model ing and favorable play prediction of Neogene in Yiliping area, Qaidam Basin[J]. Lithologic Reservoirs,2021,33(3):74-84.
[38] 饶松,朱亚珂,胡迪,等. 准噶尔盆地热史恢复及其对早—中二叠世时期盆地构造属性的约束[J]. 地质学报,2018,92(6):1176-1195. RAO Song,ZHU Yake,HU Di,et al. The thermal history of Junggar Basin:Constraints on the tectonic attribute of the EarlyMiddle Permian Basin[J]. Acta Geologica Sinica,2018,92(6):1176-1195.
[39] WYGRALA B. Integrated study of an oil field in the southern Po Basin,northern Italy[D]. Cologne:University of Cologne, 1989.
[40] 葸克来,操应长,王艳忠,等. 低渗透储集层成岩作用与孔渗演化:以准噶尔盆地中部1区侏罗系三工河组为例[J]. 石油勘探与开发,2015,42(4):434-443. XI Kelai,CAO Yingchang,WANG Yanzhong,et al. Diagenesis and porosity-permeability evolution of low permeability reser voirs:A case study of Jurassic Sangonghe Formation in block 1,central Junggar Basin,NW China[J]. Petroleum Exploration and Development,2015,42(4):434-443.
[41] 付广,陈雪晴,邓玮,等. 油源断裂输导油气时间有效性研究方法及其应用[J]. 岩性油气藏,2016,28(6):9-15. FU Guang,CHEN Xueqing,DENG Wei,et al. Research method of time effectiveness of hydrocarbon transporting by oil-source fault and its application[J]. Lithologic Reservoirs,2016,28(6):9-15.
[42] 吕雪莹,蒋有录,刘景东. 东濮凹陷古近系凝析气藏相态类型判识及成因分析[J]. 中国矿业大学学报,2016,45(6):1211- 1218. LYU Xueying,JIANG Youlu,LIU Jingdong,et al. Phase types identification and genetic analysis for Paleogene condensate gas pools in the Dongpu Depression[J]. Journal of China Uni versity of Mining & Technology,2016,45(6):1211-1218.
[43] 王金铎,曾治平,徐冰冰,等. 准噶尔盆地沙湾凹陷二叠系上乌尔禾组流体相态及油气藏类型[J]. 岩性油气藏,2024,36(1):23-31. WANG Jinduo,ZENG Zhiping,XU Bingbing,et al. Fluid phase and hydrocarbon reservoir types of Permian Upper Urho Formation in Shawan Sag,Junggar Basin[J]. Lithologic Reser voirs,2024,36(1):23-31.
[44] 张水昌,苏劲,张斌,等. 塔里木盆地深层海相轻质油/凝析油的成因机制与控制因素[J]. 石油学报,2021,42(12),1566- 1580. ZHANG Shuichang,SU Jin,ZHANG Bin,et al. Genetic mechanism and controlling factors of deep marine light oil and condensate oil in Tarim Basin[J]. Acta Petrolei Sinica,2021,42(12):1566-1580.
[45] 张水昌. 运移分馏作用:凝析油和蜡质油形成的一种重要机制[J]. 科学通报,2000,45(6):667-670. ZHANG Shuichang. The migration fractionation:An important mechanism in the formation of condensate and waxy oil[J]. Chinese science Bulletin,2000,45(6):667-670.
[46] THOMPSON K F M. Fractionated aromatic petroleums and the generation of gas-condensate[J]. Organic Geochemistry,1987, 11(6):573-590.
[47] LORANT F,PRINZHOFER A,BEHAR F,et al. Carbon isoto pic and molecular constraints on the formation and the expul sion of thermogenic hydrocarbon gases[J]. Chemical Geology, 1998,147(3/4):249-264.
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