2024 Vol. 44, No. 3
Article Contents

LIANG Jie, LI Sen, CHEN Jianwen, LIAO Jing, GONG Jianming, LU Kai, LIU Hong, ZHANG YinGuo. Discovery of Mesozoic strata in the eastern region of offshore Pakistan and its oil and gas significance[J]. Marine Geology & Quaternary Geology, 2024, 44(3): 115-124. doi: 10.16562/j.cnki.0256-1492.2024010401
Citation: LIANG Jie, LI Sen, CHEN Jianwen, LIAO Jing, GONG Jianming, LU Kai, LIU Hong, ZHANG YinGuo. Discovery of Mesozoic strata in the eastern region of offshore Pakistan and its oil and gas significance[J]. Marine Geology & Quaternary Geology, 2024, 44(3): 115-124. doi: 10.16562/j.cnki.0256-1492.2024010401

Discovery of Mesozoic strata in the eastern region of offshore Pakistan and its oil and gas significance

  • After more than 60 years of oil and gas exploration in the offshore areas of Pakistan, the primary focus has long been on the Cenozoic strata. The distribution of Mesozoic formations and the tectonic evolution remain unclear. The eastern offshore areas of Pakistan underwent a complex tectonic-sedimentary evolution during the Neogene. Influenced by the Himalayan uplift during the Neogene, a significant amount of detritus from continental margin deposited, making it an excellent location for studying numerous fundamental scientific questions. Due to the impact of regional volcanic rocks in the late Cretaceous, there has been considerable controversy regarding the existence and distribution of the Mesozoic strata in the region, significantly hindering the regional oil and gas exploration activities. Based on high-quality 2D geological profiles, overcomes the previous shielding effect of volcanic rock layers. By means of seismic reflection interface delineation, analysis of seismic wave group characteristics, and layer velocity analysis, the extensive distribution of the Mesozoic strata in the eastern offshore areas of Pakistan was clarified. The Mesozoic formations, controlled by intense extensional faulting in the same period, are segmented within multiple secondary basins of varying scales, forming a paleo-tectono-geographic pattern of alternating uplifts and depressions. The overall thickness ranges from 800 to 10000 m, thicker in the southeast and thinner in the northwest. Overlapping towards the north and west, the maximum sedimentary thickness is located in the southeast and northwest regions of the study area. The stratigraphic unit was confirmed as an important hydrocarbon source rock layer in the onshore of the lower Indus River Basin, which effectively expanded the future directions and potential value of oil and gas exploration in the offshore areas.

  • 加载中
  • [1] Carmichael S M, Akhter S, Bennett J K, et al. Geology and hydrocarbon potential of the offshore Indus Basin, Pakistan[J]. Petroleum Geoscience, 2009, 15(2):107-116. doi: 10.1144/1354-079309-826

    CrossRef Google Scholar

    [2] Shahzad K, Betzler C, Qayyum F. Controls on the Paleogene carbonate platform growth under greenhouse climate conditions (Offshore Indus Basin)[J]. Marine and Petroleum Geology, 2019, 101:519-539. doi: 10.1016/j.marpetgeo.2018.12.025

    CrossRef Google Scholar

    [3] Clift P, Gaedicke C. Accelerated mass flux to the Arabian Sea during the middle to late Miocene[J]. Geology, 2002, 30(3):207-210. doi: 10.1130/0091-7613(2002)030<0207:AMFTTA>2.0.CO;2

    CrossRef Google Scholar

    [4] 李森, 梁杰, 龚建明, 等. 巴基斯坦东部海域中-新生代沉积研究进展[J]. 海洋地质前沿, 2022, 38(2):1-13

    Google Scholar

    LI Sen, LIANG Jie, GONG Jianming, et al. Research progress of the Meso-Cenozoic sedimentary evolution in eastern Pakistan sea[J]. Marine Geology Frontiers, 2022, 38(2):1-13.]

    Google Scholar

    [5] 王改云, 刘金萍, 简晓玲, 等. 印度河扇近海盆地沉积演化特征[J]. 中国海上油气, 2021, 33(4):31-38

    Google Scholar

    WANG Gaiyun, LIU Jinping, JIAN Xiaoling, et al. Sedimentary evolution characteristics of offshore Indus river fan basin[J]. China Offshore Oil and Gas, 2021, 33(4):31-38.]

    Google Scholar

    [6] Clift P, Gaedicke C, Edwards R, et al. The stratigraphic evolution of the Indus Fan and the history of sedimentation in the Arabian Sea[J]. Marine Geophysical Researches, 2002, 23(3):223-245. doi: 10.1023/A:1023627123093

    CrossRef Google Scholar

    [7] Ogawa K, Back S. Seismostratigraphic and sedimentological characterization of deepwater channel systems on the NW Borneo margin: Sediment sources and structurally-controlled routing system[J]. Journal of Asian Earth Sciences, 2022, 232:105126. doi: 10.1016/j.jseaes.2022.105126

    CrossRef Google Scholar

    [8] Khan M, Liu Y K. Geodynamic evolution of the offshore Indus Basin Pakistan: the western Indian Plate Passive Continental Margin[J]. Geophysical Journal International, 2019, 217(2):1366-1386. doi: 10.1093/gji/ggz091

    CrossRef Google Scholar

    [9] 陈斌. 青藏高原及其周边区域夏季上对流层水汽变化和输送特征研究[D]. 北京: 中国气象科学研究院, 2009

    Google Scholar

    CHEN Bin. The study on the uppper troposphere water vapor change and transportation characteristics over Tibetan Plateau and its adjoint regions in boreal summer[D]. Beijing: Chinese Academy of Meteorological Sciences, 2009.]

    Google Scholar

    [10] Talling P J, Wynn R B, Schmmidt D N, et al. How did thin submarine debris flows carry boulder-sized intraclasts for remarkable distances across low gradients to the far reaches of the Mississippi fan?[J]. Journal of Sedimentary Research, 2010, 80(10):829-851. doi: 10.2110/jsr.2010.076

    CrossRef Google Scholar

    [11] 刘瑞璇, 鹿化煜, 王珧, 等. 东阿拉伯海拉克希米盆地浊流沉积序列的粒度变化及其对中更新世气候转型的响应[J]. 第四纪研究, 2018, 38(5):1120-1129

    Google Scholar

    LIU Ruixuan, LU Huayu, WANG Yao, et al. Grain size analysis of a depositional sequence in the Laxmi Basin (IODP Hole U1456A, Arabian Sea) reveals the Indian monsoon shift at the Mid-Pleistocene Climatic Transition[J]. Quaternary Sciences, 2018, 38(5):1120-1129.]

    Google Scholar

    [12] Gaedicke C, Schlüter H U, Roeser H A, et al. Origin of the northern Indus Fan and Murray Ridge, Northern Arabian Sea: interpretation from seismic and magnetic imaging[J]. Tectonophysics, 2002, 355(1-4):127-143. doi: 10.1016/S0040-1951(02)00137-3

    CrossRef Google Scholar

    [13] 廖晶, 龚建明, 陈建文, 等. 印度扇近海盆地重力滑动构造新发现[J]. 海洋地质前沿, 2020, 36(6):76-79

    Google Scholar

    LIAO Jing, GONG Jianming, CHEN Jianwen, et al. New discovery of gravity gliding structure in the offshore Indus Basin[J]. Marine Geology Frontiers, 2020, 36(6):76-79.]

    Google Scholar

    [14] 刘金萍, 王改云, 简晓玲, 等. 巴基斯坦印度扇近海盆地油气地质条件分析[J]. 地质学刊, 2022, 46(4):351-357

    Google Scholar

    LIU Jinping, WANG Gaiyun, JIAN Xiaoling, et al. Analysis of petroleum geological condition in offshore Indus Basin, Pakistan[J]. Journal of Geology, 2022, 46(4):351-357.]

    Google Scholar

    [15] 李林涛, 李运振, 赵厚祥, 等. 印度河前陆盆地油气富集规律与成藏主控因素[J]. 石油天然气学报, 2015, 37(9):7-13

    Google Scholar

    LI Lintao, LI Yunzhen, ZHAO Houxiang, et al. The oil and gas enrichment patterns and main controlling factors in the Indus foreland basin[J]. Journal of Oil and Gas Technology, 2015, 37(9):7-13.]

    Google Scholar

    [16] 钱凯, 孙晓惠, 许小琼, 等. 下印度河盆地石油地质、油气分布及油气富集区特征[J]. 天然气地球科学, 2017, 28(12):1797-1809

    Google Scholar

    QIAN Kai, SUN Xiaohui, XU Xiaoqiong, et al. Petroleum geology, hydrocarbon distribution and accumulation fairway study in the Lower Indus Basin[J]. Natural Gas Geoscience, 2017, 28(12):1797-1809.]

    Google Scholar

    [17] 朱泽栋, 石雪峰, 康弘男, 等. 深水油气藏地质特征研究——以印度扇盆地UEPL区块为例[J]. 中国石油和化工标准与质量, 2022, 42(2):100-102

    Google Scholar

    ZHU Zedong, SHI Xuefeng, KANG Hongnan, et al. Geological characteristics of deepwater oil and gas reservoirs: A case study of the UEPL block in the Indian fan basin[J]. China Petroleum and Chemical Standard and Quality, 2022, 42(2):100-102.]

    Google Scholar

    [18] Carmichael S M, Akhter S, Bennett J K. 巴基斯坦印度河盆地海域地质概况和油气潜力[J]. 张振, 译. 海洋地质, 2019(3):1-11

    Google Scholar

    Carmichael S M, Akhter S, Bennett J K. Geological overview and oil and gas potential in the Pakistan Indus Basin sea area[J]. ZHANG Zhen, trans. Marine Geology, 2019(3):1-11.]

    Google Scholar

    [19] Wandrey C J, Law B E, Shah H A. Sembar Goru/Ghazij composite total petroleum system, Indus and Sulaiman-Kirthar geologic provinces, Pakistan and India[M]. Reston V A, USA: US Department of the Interior, US Geological Survey, 2004.

    Google Scholar

    [20] Ul E H, Ji Y, Hadayat U, et al. Architectural complexities and morphological variations of the indus fan and its elements: Understanding of the turbidite system through seismic characterization[J]. Marine and Petroleum Geology, 2023, 150.

    Google Scholar

  • 加载中
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Figures(9)

Article Metrics

Article views(703) PDF downloads(89) Cited by(0)

Access History

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint