Lithologic Reservoirs ›› 2024, Vol. 36 ›› Issue (5): 56-66.doi: 10.12108/yxyqc.20240506

• PETROLEUM EXPLORATION • Previous Articles     Next Articles

Provenance transformation and sedimentary filling response of Mesozoic in Halahatang-Hade area,Tarim Basin

YI Zhenli1,2,3, SHI Fang1,2,3, YIN Taiju4, LI Bin1,2,3, LI Meng1,2,3, LIU Liu1,2,3, WANG Zhukun1,2,3, YU Ye5   

  1. 1. Research Institute of Exploration and Development, PetroChina Tarim Oilfield Company, Korla 841000, Xinjiang, China;
    2. R & D Center for Ultra-Deep Complex Reservoir Exploration and Development, CNPC, Korla 841000, Xinjiang, China;
    3. Engineering Research Center for Ultra-deep Complex Reservoir Exploration and Development, Xinjiang Uygur Autonomous Region, Korla 841000, Xinjiang, China;
    4. School of Geosciences, Yangtze University, Wuhan 430100, China;
    5. School of Earth Sciences and Spatial Information Engineering, Hunan University of Science and Technology, Xiangtan 411201, Hunan, China
  • Received:2023-07-13 Revised:2023-08-10 Online:2024-09-01 Published:2024-09-04

Abstract: The sediment supply and infilling evolution of the Mesozoic in Halahatang-Hade area of Tarim Basin were studied by analyzing the changes in paleogeomorphic morphology,distribution of sedimentary systems, stratigraphic structure and sand-bodies development characteristics,based on the main measuring method of mineral composition analysis,calculation of sand to land ratio,seismic attribute analysis and logging response feature recognition. The results show that:(1)The provenance of the Triassic mainly came from the Tianshan orogenic belt in the northeast,with ZTR coefficient gradually increasing from the northern area to the central sag. During the Jurassic and Cretaceous,the provenance mainly came from the orogenic belt of Kunlun Mountains in the southeast and south. The ZTR coefficient of this period is gradually increasing from the northern and southern areas to the central sag.(2)In the late Triassic,with the proliferation of the Paleo-Tethys Ocean,the weakening of the uplift of the Tianshan Mountains in the north of the study area and the intensification of the uplift of the Kunlun Mountains in the south are the main reasons for this provenance transformation.(3)During the Triassic,the depression and deposition centers were located in the south of the study area,and a set of braided river delta and deep-water lake deposits in the NE-SW direction were mainly developed. During the Jurassic and Cretaceous,the depression and deposition centers migrated to the north of the study area,and a set of braided river delta and shallow lake deposits were developed in the direction of SE-NW and S-N respectively.(4)During the Triassic,the progradation direction of sand-bodies was mainly in the NE-SW direction. During the Jurassic and Cretaceous,the progradation direction of sand-bodies was mainly in the SE-NW and S-N direction respectively.(5)The exploration areas for Triassic lithologic reservoirs are located in the southwest of the study area,while the exploration areas for Jurassic and Cretaceous lithologic reservoirs are located in the northwest and north of the study area.

Key words: provenance transformation, sedimentary filling-stacking pattern, seismic attribute, ZTR coefficient of heavy mineral, intensity of uplift, lithologic reservoirs, Mesozoic, Halahatang-Hade area, Tarim Basin

CLC Number: 

  • TE121.3+2
[1] 陈思明, 侯明才, 房启飞, 等. 塔北隆起英买2地区奥陶系油气成藏特征及富集规律[J]. 岩性油气藏, 2015, 27(6):64-71. CHEN Siming, HOU Mingcai, FANG Qifei, et al. Hydrocarbon accumulation and enrichment rule of Ordovician in Yingmai-2 area, northern uplift of Tarim Basin[J]. Lithologic Reservoirs, 2015, 27(6):64-71.
[2] 马永生, 蔡勋育, 云露, 等. 塔里木盆地顺北超深层碳酸盐岩油气田勘探开发实践与理论技术进展[J]. 石油勘探与开发, 2022, 49(1):1-17. MA Yongsheng, CAI Xunyu, YUN Lu, et al. Practice and theoretical and technical progress in exploration and development of Shunbei ultra-deep carbonate oil and gas field, Tarim Basin, NW China[J]. Petroleum Exploration and Development, 2022, 49(1):1-17.
[3] 宋兴国, 陈石, 杨明慧, 等. 塔里木盆地富满油田FⅠ16断裂发育特征及其对油气分布的影响[J]. 岩性油气藏, 2023, 35(3):99-109. SONG Xingguo, CHEN Shi, YANG Minghui, et al. Development characteristics of F Ⅰ 16 fault in Fuman oilfield of Tarim Basin and its influence on oil and gas distribution[J]. Lithologic Reservoirs, 2023, 35(3):99-109.
[4] 刘永福, 赵建华, 范秋海, 等. 塔北隆起中部白垩系卡普沙良群层序地层格架及沉积体系研究[J]. 沉积学报, 2014, 32(6):1113-1122. LIU Yongfu, ZHAO Jianhua, FAN Qiuhai, et al. Study on the sequence stratigraphy and depositional systems of the Kapushaliang group of Cretaceous in the Central Tabei Uplift[J]. Acta Sedimentologica Sinica, 2014, 32(6):1113-1122.
[5] YANG Fulin, WANG Tieguan, LI Meijun. Oil filling history of the Mesozoic oil reservoir in the Tabei Uplift of Tarim Basin, NW China[J]. Journal of Petroleum Science and Engineering, 2016, 142:129-140.
[6] WU Guanghui, MA Bingshan, HAN Jianfa, et al. Origin and growth mechanisms of strike-slip faults in the central Tarim cratonic basin, NW China[J]. Petroleum Exploration and Development, 2021, 48(3):595-607.
[7] WANG Ziyi, GAO Zhiqian, FAN Tailiang, et al. Architecture of strike-slip fault zones in the central Tarim Basin and implications for their control on petroleum systems[J]. Journal of Petroleum Science and Engineering, 2022, 213:110432.
[8] 崔海峰, 郑多明, 滕团余. 塔北隆起哈拉哈塘凹陷石油地质特征与油气勘探方向[J]. 岩性油气藏, 2009, 21(2):54-58. CUI Haifeng, ZHENG Duoming, TENG Tuanyu. Petroleum geologic characteristics and exploration orientation in Halahatang Depression of Tabei uplift[J]. Lithologic Reservoirs, 2009, 21(2):54-58.
[9] 徐壮, 石万忠, 王任, 等. 塔北隆起西部地区白垩系碎屑岩油气成藏规律及成藏模式[J]. 岩性油气藏, 2023, 35(2):31-46. XU Zhuang, SHI Wanzhong, WANG Ren, et al. Hydrocarbon accumulation law and model of Cretaceous clastic rocks in western Tabei uplift[J]. Lithologic Reservoirs, 2023, 35(2):31-46.
[10] 王新新, 崔德育, 孙崇浩, 等. 哈拉哈塘油田A地区断裂特征及其控油作用[J]. 地质力学学报, 2019, 25(6):1058-1067. WANG Xinxin, CUI Deyu, SUN Chonghao, et al. Characteristics of strike-slip fault and its controlling on oil in block A of the Halahatang oilfield, Tarim Basin[J]. Journal of Geomechanics, 2019, 25(6):1058-1067.
[11] 李洪辉, 李曰俊, 马德波, 等. 南天山造山带的同碰撞和碰撞后构造:塔里木盆地北部地震解释成果[J]. 地质科学, 2020, 52(2):322-338. LI Honghui, LI Yuejun, MA Debo, et al. Synand post-collision structures of the South Tianshan orogenic beit:Results of the seismic interpretation in the northern Tarim Basin along the South Tianshan[J]. Chinese Journal of Geology, 2020, 52(2):322-338.
[12] YANG Shuai, WU Guanghui, ZHU Yongfeng, et al. Key oil accumulation periods of ultra-deep fault-controlled oil reservoir in northern Tarim Basin, NW China[J]. Petroleum Exploration and Development, 2022, 49(2):285-299.
[13] 曾智伟, 朱红涛, 杨香华, 等. 珠江口盆地白云凹陷恩平组物源转换及沉积充填演化[J]. 地球科学, 2017, 42(11):1936-1954. ZENG Zhiwei, ZHU Hongtao, YANG Xianghua, et al. Provenance transformation and sedimentary evolution of Enping Formation, Baiyun Sag, Pearl River Mouth Basin[J]. Earth Science, 2017, 42(11):1936-1954.
[14] 张闻亭, 龙礼文, 肖文华, 等. 酒泉盆地青西凹陷窟窿山构造带下沟组沉积特征及储层预测[J]. 岩性油气藏, 2021, 33(1):186-197. ZHANG Wenting, LONG Liwen, XIAO Wenhua, et al. Sedimentary characteristics and reservoir prediction of Xiagou Formation in Kulongshan structural belt, Qingxi Sag, Jiuquan Basin[J]. Lithologic Reservoirs, 2021, 33(1):186-197.
[15] LI Yichao, GONG Chenglin, PENG Guangrong, et al. Detrital zircon signals of the late Eocene provenance change of the Pearl River Mouth Basin, northern South China Sea[J]. Sedimentary Geology, 2023, 451:106409.
[16] 林畅松, 李思田, 刘景彦, 等. 塔里木盆地古生代重要演化阶段的古构造格局与古地理演化[J]. 岩石学报, 2011, 27(1):210-218. LIN Changsong, LI Sitian, LIU Jingyan, et al. Tectonic framework and paleogeographic evolution of the Tarim Basin during the Paleozoic major evolutionary stages[J]. Acta Petrologica Sinica, 2011, 27(1):210-218.
[17] 贾承造. 中国塔里木盆地构造特征与油气[M]. 北京:石油工业出版社, 1997:1-200. JIA Chengzao. Tectonic characteristics and petroleum in Tarim Basin of China[M]. Beijing:Petroleum Industry Press, 1997:1-200.
[18] 宁超众, 胡素云, 潘文庆, 等. 塔里木盆地哈拉哈塘地区奥陶系良里塔格组古地貌与岩溶洞穴特征[J]. 石油与天然气地质, 2020, 41(5):985-995. NING Chaozhong, HU Suyun, PAN Wenqing, et al. Characterization of paleo-topography and karst caves in Ordovician Lianglitage Formation, Halahatang oilfield, Tarim Basin[J]. Oil & Gas Geology, 2020, 41(5):985-995.
[19] 李丕龙. 塔里木盆地中央隆起带油气突破领域与勘探方向[J]. 石油与天然气地质, 2007, 28(5):576-583. LI Pilong. Potential areas and exploration direction in the central uplift belt of the Tarim Basin[J]. Oil & Gas Geology, 2007, 28(5):576-583.
[20] 祝渭平, 孙东, 姚清洲, 等. 塔里木盆地哈拉哈塘地区碳酸盐岩油气富集规律[J]. 特种油气藏, 2021, 28(2):41-48. ZHU Weiping, SUN Dong, YAO Qingzhou, et al. The law of hydrocarbon accumulation in carbonate reservoirs in Halahatang area, Tarim Basin[J]. Special Oil & Gas Reservoirs, 2021, 28(2):41-48.
[21] 吴高奎, 张忠民, 林畅松, 等. 塔里木盆地塔北隆起区中生界沉积演化特征[J]. 石油与天然气地质, 2022, 43(4):845-858. WU Gaokui, ZHANG Zhongmin, LIN Changsong, et al. Evolution of Mesozoic sedimentary fill in the Tabei Uplift region, Tarim Basin[J]. Oil & Gas Geology, 2022, 43(4):845-858.
[22] 仲米虹, 唐武. 前陆盆地隆后坳陷区湖底扇沉积特征及主控因素:以塔北轮南地区三叠系为例[J]. 岩性油气藏, 2018, 30(5):18-28. ZHONG Mihong, TANG Wu. Sedimentary characteristics and controlling factors of sublacustrine fans in backbulge zone of foreland basin:Triassic in Lunnan area, Tarim Basin[J]. Lithologic Reservoirs, 2018, 30(5):18-28.
[23] 余烨, 张昌民, 张尚峰, 等. 惠州凹陷新近系珠江组物源方向研究[J]. 断块油气田, 2012, 19(1):17-21. YU Ye, ZHANG Changmin, ZHANG Shangfeng, et al. Research on source direction of Neogene Zhujiang Formation in Huizhou Depression[J]. Fault-block Oil & Gas Field, 2012, 19(1):17-21.
[24] 靳军, 文华国, 向宝力, 等. 准噶尔盆地东部阜东斜坡头屯河组物源分析[J]. 岩性油气藏, 2014, 26(2):54-58. JIN Jun, WEN Huaguo, XIANG Baoli, et al. Provenance analysis of Middle Jurassic Toutunhe Formation in eastern Fukang slope, Junggar Basin[J]. Lithologic Reservoirs, 2014, 26(2):54-58.
[25] 岳红林, 张岚, 崔龙涛, 等. 莱州湾凹陷垦利A油田沙三段物源转换与沉积充填响应[J]. 石油地质与工程, 2023, 37(2):29-34. YUE Honglin, ZHANG Lan, CUI Longtao, et al. Provenance transformation and sedimentary filing response of third member of Shahejie Formation in Kenli A Oilfield, Laizhouwan Sag[J]. Petroleum Geology and Engineering, 2023, 37(2):29-34.
[26] 贾东, 卢华复, 蔡东升, 等. 塔里木盆地北缘库车前陆褶皱-冲断构造分析[J]. 大地构造与成矿学, 1997, 21(1):1-8. JIA Dong, LU Huafu, CAI Dongsheng, et al. Structural analyses of Kuqa foreland fold-thrust belt along the northern margin of Tarim Basin[J]. Geotectonica et Metallogenia, 1997, 21(1):1-8.
[27] 李曰俊, 宋文杰, 买光荣, 等. 库车和北塔里木前陆盆地与南天山造山带的耦合关系[J]. 新疆石油地质, 2001, 22(5):376-381. LI Yuejun, SONG Wenjie, MAI Guangrong, et al. Characteristics of Kuqa and northern Tarim foreland basins and their coupling relation to South Tianshan orogen[J]. Xinjiang Petroleum Geology, 2001, 22(5):376-381.
[28] 廖晓, 王震亮, 范昌育, 等. 西昆仑山前甫沙-克里阳地区中新生代构造事件的裂变径迹证据及其地质意义[J]. 中南大学学报(自然科学版), 2018, 49(3):642-654. LIAO Xiao, WANG Zhenliang, FAN Changyu, et al. Fission track evidence for Meso-Cenozoic tectonic event of Fusha-Keliyang area in piedmont of the western Kunlun Mountains and its geological significance[J]. Journal of Central South University (Science and Technology), 2018, 49(3):642-654.
[29] 贾承造, 马德波, 袁敬一, 等. 塔里木盆地走滑断裂构造特征、形成演化与成因机制[J]. 天然气工业, 2021, 41(8):81-91. JIA Chengzao, MA Debo, YUAN Jingyi, et al. Structural characteristics, formation & evolution and genetic mechanisms of strike-slip faults in the Tarim Basin[J]. Natural Gas Industry, 2021, 41(8):81-91.
[30] 卜旭强, 王来源, 朱莲花, 等. 塔里木盆地顺北油气田奥陶系断控缝洞型储层特征及成藏模式[J]. 岩性油气藏, 2023, 35(3):152-160. BU Xuqiang, WANG Laiyuan, ZHU Lianhua, et al. Characteristics and reservoir accumulation model of Ordovician fault-controlled fractured-vuggy reservoirs in Shunbei oil and gas field, Tarim Basin[J]. Lithologic Reservoirs, 2023, 35(3):152-160.
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