Differential hydrocarbon accumulation model of the Ordovician in Tazhong Ⅱ block,Tarim Basin

被引:0
|
作者
Li B. [1 ,2 ]
Zhao X. [3 ]
Wu G. [1 ,2 ]
Han J. [4 ]
Guan B. [4 ]
Shen C. [4 ]
机构
[1] School of Earth Science and Technology, Southwest Petroleum University, Sichuan, Chengdu
[2] State Key Experiment of Oil and Gas Reservoir Geology and Exploitation Engineering, Southwest Petroleum University, Sichuan, Chengdu
[3] Tarim Oilfield Company, PetroChina, Xinjiang, Korla
[4] Exploration and Development Research Instityte of Tarim Oilfield Branch Company, PetroChina, Xinjiang, Korla
来源
Oil and Gas Geology | 2023年 / 44卷 / 02期
关键词
charging channel; differential accumulation; evaporite layer; Ordovician; strike-slip fault; Tarim Basin; Tazhong; Ⅱ; block;
D O I
10.11743/ogg20230205
中图分类号
学科分类号
摘要
The study aims to analyze the nature,distribution patterns and origin of fluids in the Ordovician by means of reservoir geochemistry,in view of existing problems concerned with coexistence of multiple phases of oil and gas,large difference of productivity and limited knowledge of hydrocarbon enrichment modes of the Ordovician reservoirs in Tazhong Ⅱ block,Tarim Basin. The pressure-volume-temperature(pVT)analysis of the Ordovician reservoir fluids shows that condensate gas reservoirs and light oil reservoirs coexist along strike-slip faults. The crude oil maturity parameters indicate the oil is product of mature stage,and the carbon isotope and hydrocarbon composition ratio of natural gases reveals that the gas is a mixture of the gas associated with the crude oil and oil-cracking gas. The analysis of diamondoid compounds and natural gas shows that the charging of gas from cracking of oil in reservoirs below the Middle Cambrian evaporite layer is an important factor leading to the formation of the Ordovician condensate gas reservoirs. The analysis in combination with 3D seismic interpretation data of high precision indicates that the hydrocarbon distribution is controlled by strike-slip faults,and that the crude oil density and wax content are relatively lower,and gas/oil ratio,drying coefficient and 4-MDBT/1-MDBT ratio are relatively higher in horsetail-type graben,wing tail-type graben and intersection of strike-slip fault and thrust fault which are of favorable channels for hydrocarbon charging. The coupling of the periodical opening of strike-slip faults with the sealing mechanism of evaporite intervals controls the hydrocarbon accumulation of the Ordovician in the study area. It is considered that the hydrocarbon reservoirs in Tazhong Ⅱ block are characterized by juxtaposition of source rock and reservoir,vertical migration and enrichment along strike-slip faults,and multi-stage scattered hydrocarbon charging,all of which are an important reason for the differential hydrocarbon distribution in the Ordovician reservoirs. Strike-slip faults control hydrocarbon accumulation in the Ordovician,and there is great exploration potential in the horsetail-type graben,wing-tail-type graben,and intersection of strike-slip faults and thrust faults. Large-scale gas reservoirs may exist in sequences below the Middle Cambrian evaporite layer,and this is in need of further attention. © 2023 Editorial Department of Oil and Gas Geology. All rights reserved.
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页码:308 / 320
页数:12
相关论文
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  • [1] PUNANOVA S A,, VINOGRADOVA T L., Specifics of the hydrocarbon and trace-element composition of oils and condensates from shallow-water marine deposits[J], Petroleum Chemistry, 50, 1, pp. 23-30, (2010)
  • [2] LINDSAY B., West Texas(Permian)Super Basin,United States:Tectonics,structural development,sedimentation,petroleum systems,and hydrocarbon reserves[J], AAPG Bulletin, 105, 6, pp. 1099-1147, (2021)
  • [3] Jun CAI, Youbin HE, Jianshe LIANG, Et al., Differential deformation of gravity-driven deep-water fold-and-thrust belts along the passive continental margin of East Africa and their impact on petroleum migration and accumulation[J], Marine and Petroleum Geology, 112, (2020)
  • [4] LYU Haitao, GENG Feng, SHANG Kai, Key factors and directions of exploration in the Cambrian pre-salt sequence,Tarim Basin[J], Oil & Gas Geology, 43, 5, pp. 1049-1058, (2022)
  • [5] ZHANG Wenbiao, ZHANG Yaxiong, DUAN Taizhong, Et al., Hierarchy modeling of the Ordovician fault-karst carbonate reservoir in Tuoputai area,Tahe Oilfield,Tarim Basin,NW China [J], Oil & Gas Geology, 43, 1, pp. 207-218, (2022)
  • [6] HUANG Cheng, YUN Lu, CAO Zicheng, Et al., Division and formation mechanism of fault-controlled fracture-vug system of the Middle-to-Lower Ordovician,Shunbei area,Tarim Basin[J], Oil & Gas Geology, 43, 1, pp. 54-68, (2022)
  • [7] TIAN Jun, WANG Qinghua, YANG Haijun, Et al., Petroleum exploration history and enlightenment in Tarim Basin[J], Xinjiang Petroleum Geology, 42, 3, pp. 272-282, (2021)
  • [8] CHANG Yuan, JIA Pengfei, Geological characteristics and forming cause of the continuous carbonate reservoirs in Tazhong area,Tarim Basin[J], Petroleum Geology & Oilfield Development in Daqing, 41, 2, pp. 11-15, (2022)
  • [9] LIN Tong, WANG Tongshan, LI Zhisheng, Et al., Hydrocarbon filling evolution and exploration direction of the Middle-Lower Cambrian interval in Tazhong area,Tarim Basin[J], Journal of China University of Petroleum(Edition of Natural Science), 45, 3, pp. 42-54, (2021)
  • [10] LI Huili, MA Anlai, CAI Xunyu, Et al., Kinetics of oil-cracking of ultra-deep Ordovician oil in the North Shuntuoguole area of Tarim Basin and its geological implications[J], Petroleum Geology and Experiment, 43, 5, pp. 818-825, (2021)