Lithologic Reservoirs ›› 2021, Vol. 33 ›› Issue (3): 27-38.doi: 10.12108/yxyqc.20210303

• PETROLEUM GEOLOGY • Previous Articles     Next Articles

Element feature and coupling model of source-to-sink system in depression lacustrine basin: A case study of Neogene Jimidi Formation in Melut Basin, South Sudan

YANG Lisha1,2, CHEN Bintao1, MA Lun1, SHI Zhongsheng1, XUE Luo1, WANG Lei1, SHI Jianglong1, ZHAO Yanjun3   

  1. 1. PetroChina Research Institute of Petroleum Exploration & Development-Northwest, Lanzhou 730020, China;
    2. Key Laboratory of Reservoir Description, CNPC, Lanzhou 730020, China;
    3. CNPC International Nile Limited, Khartoum 10687, Sudan
  • Received:2021-02-03 Revised:2021-03-19 Published:2021-06-03

Abstract: Characteristics of elements in source-to-sink system and their coupling relationships,as one of the most important method for quantitative prediction in sediments and oil/gas reservoirs,have become the research hotspots in sedimentology. In order to characterize the elements feature and coupling relationships of source-to-sink system during the deposition of Neogene Jimidi Formation in Melut Basin,well drilling and logging data analysis,and interpretation of high-resolution 3D seismic data and 2D seismic data in the basin margins were carried out,and the elements of the source-to-sink system for depression lacustrine basin were characterized. The results show that: (1)The basement in the north depression of Melut Basin was dominated by Precambrian metamorphic rocks(phyllite)and granitic gneiss. Three first-level catchments were developed in the study area during the deposition of Jimidi Formation,four types of transportation pathways,V-type,U-type,W-type and fault trough type,were found.(2)Three source-to-sink systems can be divided:Kaka-Ruman source-to-sink system in the northwest was the typical slope-type source-to-sink coupling model,where the river-shallow delta depositional system of 600 m2 was developed in the catchment;Gandool-Wengi source-to-sink system in the northeast and Tean-Ruman West source-to-sink system in the southwest were characterized by fault-slope-break,where fan deltas of 400 km2 and 112 km2 were developed respectively.(3)The quantitative analysis for elements of the source-to-sink systems in the study area showed that the total sediments inside the basin were closely relevant with area of catchments in the source area,topographic height difference and cross-sectional area of the transport channel during the depression stage in the lacustrine basins. The area of catchments was the primary influencing factor for the scales of depositional systems,and large catchments were favorable for the development of large depositional systems. Based on the results,types of depositional system and direction of sediments source for Jimidi Formation in Ruman area of Melut Basin have been confirmed and the distribution of favorable reservoir sandbodies have been predicted, which will guide the exploration deployment effectively.

Key words: source-to-sink system, quantitative analysis, coupling relationship, Jimidi Formation, Neogene, Melut Basin, depression lacustrine basin

CLC Number: 

  • TE121.3
[1] 林畅松, 夏庆龙, 施和生, 等. 地貌演化、源-汇过程与盆地分析. 地学前缘, 2015, 22(1):9-20. LIN C S, XIA Q L, SHI H S, et al. Geomorphological evolution, source to sink system and basin analysis. Earth Science Frontiers, 2015, 22(1):9-20.
[2] WALSH J P, WIBERG P L, AALTO R, et al. Source-to-sink research:Economy of the Earth's surface and its strata. EarthScience Reviews, 2016, 153:1-6.
[3] 徐长贵, 杜晓峰, 徐伟, 等. 沉积盆地"源-汇" 系统研究新进展. 石油与天然气地质, 2017, 38(1):1-11. XU C G, DU X F, XU W, et al. New advances of the "sourceto-sink" system research in sedimentary basin. Oil & Gas Geology, 2017, 38(1):1-11.
[4] 朱红涛, 徐长贵, 朱筱敏, 等. 陆相盆地源-汇系统要素耦合研究进展. 地球科学, 2017, 42(11):1851-1870. ZHU H T, XU C G, ZHU X M, et al. Advances of the source-tosink units and coupling model research in continental basin. Earth Science, 2017, 42(11):1851-1870.
[5] 操应长, 徐琦松, 王健. 沉积盆地"源-汇" 系统研究进展. 地学前缘, 2018, 25(4):116-131. CAO Y C, XU Q S, WANG J. Progress in "source to sink" system research. Earth Science Frontiers, 2018, 25(4):116-131.
[6] ANTHONY E J, JULIAN M. Source-to-sink sediment transfer, environmental engineering and hazard mitigation in the steep Var River catchment, French Riviera,southeastern France. Geomorphology, 1999, 31(1):337-354.
[7] ALLEN P A. From landscapes into geological history. Nature, 2008, 451(7176):274-276.
[8] SØMME T O, JACKSON C A-L, VAKSDAL M. Source-tosink analysis of ancient sedimentary systems using a subsurface case study from the Møre-Trøndelag area of southern Norway:Part1-Depositional setting and fan evolution. Basin Research, 2013, 25:489-511.
[9] BHATTACHARYA J P, COPELAND P, LAWTON F F, et al. Estimation of source area, river paleo-discharge, paleoslope, and sediment budgets of linked deep-time depositional systems and implications for hydrocarbon potential. Earth-Science Reviews, 2016, 153:77-110.
[10] 郑荣才, 李云, 戴朝成, 等.白云凹陷珠江组深水扇砂质碎屑流沉积学特征. 吉林大学学报(地球科学版), 2012, 42(6):1581-1589. ZHENG R C, LI Y, DAI C C, et al. Depositional features of sand debris flow of submarine fan in Zhujiang Formation, Baiyun Sag. Journal of Jilin University(Earth Science Edition), 2012, 42(6):1581-1589.
[11] 郑荣才, 郑哲, 高博禹, 等. 珠江口盆地白云凹陷珠江组海底扇深水重力流沉积特征. 岩性油气藏, 2013, 25(2):1-8. ZHENG R C, ZHENG Z, GAO B Y, et al. Sedimentary features of gravity flows in submarine fan of Zhujiang Formation in Baiyun Sag, Pearl River Mouth Basin. Lithologic Reservoirs, 2013, 25(2):1-8.
[12] 徐长贵. 陆相断陷盆地源-汇时空耦合控砂原理:基本思想、概念体系及控砂模式. 中国海上油气, 2013, 25(4):1-11. XU C G. Controlling and principle of source-sink coupling in time and space in continental rift basin:Basic idea, conceptual systems and controlling sand models. China Offshore Oil and Gas, 2013, 25(4):1-11.
[13] ZHU H T, YANG X H, LIU K Y, et al. Seismic-based sediment provenance analysis in continental lacustrine rift basins:An example from the Bohai Bay Basin, China. AAPG Bulletin, 2014, 98(10):1995-2018.
[14] 李顺利, 朱筱敏, 刘强虎, 等.沙垒田凸起古近纪源-汇系统中有利储层评价与预测.地球科学, 2017, 42(11):1994-2009. LI S L, ZHU X M, LIU Q H, et al. Evaluation and prediction of favorable reservoirs in source-to-sink systems of the Palaeogene, Shaleitian Uplift. Earth Science, 2017, 42(11):1994-2009.
[15] 刘强虎, 朱筱敏, 李顺利, 等. 沙垒田凸起西部断裂陡坡型源- 汇系统. 地球科学, 2017, 42(11):1883-1896. LIU Q H, ZHU X M, LI S L, et al. Source to sink system of the steep slope fault in the western Shaleitian Uplift. Earth Science, 2017, 42(11):1883-1896.
[16] BLUM M, MARTIN J, MILLIKEN K, et al. Paleovalley systems:Insights from quaternary analogs and experiments. EarthScience Reviews, 2013, 116:128-169.
[17] 陈彬滔, 于兴河, 王天奇, 等. 岱海湖盆沿坡流与顺坡流相互作用的沉积响应. 地球科学——中国地质大学学报, 2014, 39(4):399-410. CHEN B T, YU X H, WANG T Q, et al. Sedimentary response to interaction between downslope and along slope currents in Daihai Lake, North China. Earth Science-Journal of China University of Geosciences, 2014, 39(4):399-410.
[18] 朱秀, 朱红涛, 曾洪流, 等.云南洱海现代湖盆源-汇系统划分、特征及差异.地球科学, 2017, 42(11):2010-2024. ZHU X, ZHU H T, ZENG H L, et al. Subdivision, characteristics, and varieties of the source-to-sink systems of the modern lake Erhai Basin, Yunnan Province. Earth Science, 2017, 42(11):2010-2024.
[19] 陈彬滔, 史忠生, 薛罗, 等. 古潜山周缘滩坝沉积模式与岩性油藏勘探实践:以南苏丹Melut盆地Ruman地区Galhak组为例. 岩性油气藏, 2018, 30(6):37-44. CHEN B T, SHI Z S, XUE L, et al. Depositional models and lithologic reservoir exploration of sandy beach bar around buriedhill:A case from Galhak Formation in Ruman region of Melut Basin, South Sudan. Lithologic Reservoirs, 2018, 30(6):37-44.
[20] 陈彬滔, 史忠生, 马凤良, 等. 南苏丹Melut盆地Ruman凹陷白垩系层序地层级次与砂质滩坝的沉积响应. 古地理学报, 2018, 20(6):1013-1022. CHEN B T, SHI Z S, MA F L, et al. Cretaceous sequence stratigraphic hierarchies and the sedimentary response of sandy beachbar in Ruman Sag, Melut Basin, South Sudan. Journal of Palaeogeography(Chinese Edition), 2018, 20(6):1013-1022.
[21] 史忠生, 庞文珠, 陈彬滔, 等. 南苏丹Melut盆地下组合近源白垩系成藏模式与勘探潜力. 岩性油气藏, 2020, 32(5):23-33. SHI Z S, PANG W Z, CHEN B T, et al. Hydrocarbon accumulation models and exploration potential of near-source Cretaceous in the lower assemblage of Melut Basin, South Sudan. Lithologic Reservoirs, 2020, 32(5):23-33.
[22] 陈彬滔, 于兴河, 王磊, 等. 河流相沉积的河型转换特征与控制因素及其油气地质意义:以南苏丹Melut盆地Ruman地区坳陷期Jimidi组为例. 沉积学报,2021,39(2):424-433. CHEN B T, YU X H, WANG L, et al. Features and controlling factors of river pattern transition in fluvial deposition and its significance for petroleum geology:An insight from the Jimidi Formation in the Ruman area, Melut Basin, South Sudan. Acta Sedimentologica Sinica, 2021, 39(2):424-433.
[1] FENG Bin, HUANG Xiaobo, HE Youbin, LI Hua, LUO Jinxiong, LI Tao, ZHOU Xiaoguang. Reconstruction of source-to-sink system of the third member of Paleogene Shahejie Formation in Miaoxibei area,Bohai Bay Basin [J]. Lithologic Reservoirs, 2024, 36(3): 84-95.
[2] MA Feng, PANG Wenzhu, ZHAO Wenguang, ZHANG Bin, ZHAO Yanjun, XUE Luo, ZHENG Xi, CHEN Bintao. Main controlling factors and hydrocarbon accumulation models of structurallithologic reservoirs above source kitchen in rift basins in South Sudan [J]. Lithologic Reservoirs, 2023, 35(6): 92-105.
[3] XU Zhongbo, WANG Libing, SHEN Chunsheng, CHEN Mingyang, GAN Liqin. Architecture characterization of meandering river reservoirs of lower Ming huazhen Formation of Neogene in Penglai 19-3 oilfield,Bohai Sea [J]. Lithologic Reservoirs, 2023, 35(5): 100-107.
[4] XUE Luo, SHI Zhongsheng, MA Lun, ZHAO Yanjun, YUE Shijun, HONG Liang, WANG Lei, LEI Ming. Hydrocarbon accumulation models and exploration potential of MesoCenozoic heavy oil in northern Melut Basin,South Sudan [J]. Lithologic Reservoirs, 2023, 35(3): 76-85.
[5] YAO Xiutian, WANG Chao, YAN Sen, WANG Mingpeng, LI Wan. Reservoir sensitivity of Neogene Guantao Formation in Zhanhua Sag, Bohai Bay Basin [J]. Lithologic Reservoirs, 2023, 35(2): 159-168.
[6] HUANG Junli, ZHANG Wei, LIU Lihui, CAI Guofu, ZENG Youliang, MENG Qingyou, LIU Hao. Ternary seismic configuration interpretation technology of Paleogene Wenchang Formation in Panyu 4 depression, Pearl River Mouth Basin [J]. Lithologic Reservoirs, 2023, 35(2): 103-112.
[7] YANG Kaile, HE Shenglin, YANG Zhaoqiang, WANG Meng, ZHANG Ruixue, REN Shuangpo, ZHAO Xiaobo, YAO Guangqing. Diagenesis characteristics of tight sandstone reservoirs with high temperature,overpressure and high CO2 content: A case study of Neogene Meishan-Huangliu Formation in LD10 area,Yinggehai Basin [J]. Lithologic Reservoirs, 2023, 35(1): 83-95.
[8] LI Guoxin, SHI Yajun, ZHANG Yongshu, CHEN Yan, ZHANG Guoqing, LEI Tao. New progress and enlightenment of oil and gas exploration and geological understanding in Qaidam Basin [J]. Lithologic Reservoirs, 2022, 34(6): 1-18.
[9] REN Mengyi, HU Guangyi, FAN Tingen, FAN Hongjun. Composite sand body architecture and controlling factors of the lower Minghuazhen Formation of Neogene in northern Qinhuangdao 32-6 oilfield [J]. Lithologic Reservoirs, 2022, 34(6): 141-151.
[10] MA Kuiqian, LIU Dong, HUANG Qin. Physical simulation experiment of steam flooding in horizontal wells of Neogene heavy oil reservoir in Lvda oilfield,Bohai Sea [J]. Lithologic Reservoirs, 2022, 34(5): 152-161.
[11] ZHOU Donghong, TAN Huihuang, ZHANG Shengqiang. Seismic description technologies of Neogene composite channel sand bodies in Kenli 6-1 oilfield,Bohai Sea [J]. Lithologic Reservoirs, 2022, 34(4): 13-21.
[12] WANG Lifeng, SONG Ruiyou, CHEN Dianyuan, XU Tao, PAN Guangchao, HAN Guangming. Seismic identification and gas-bearing prediction of large-scale submarine fans of Neogene Huangliu Formation in D13 area of Yinggehai Basin [J]. Lithologic Reservoirs, 2022, 34(4): 42-52.
[13] LI Xiaohui, DU Xiaofeng, GUAN Dayong, WANG Zhiping, WANG Qiming. Sedimentary characteristics of braided-meandering transitional river of Neogene Guantao Formation in northeastern Liaodong Bay Depression [J]. Lithologic Reservoirs, 2022, 34(3): 93-103.
[14] FENG Dehao, LIU Chenglin, TIAN Jixian, TAI Wanxue, LI Pei, ZENG Xu, LU Zhendong, GUO Xuanhao. Basin modeling and favorable play prediction of Neogene in Yiliping area, Qaidam Basin [J]. Lithologic Reservoirs, 2021, 33(3): 74-84.
[15] SHI Zhongsheng, PANG Wenzhu, CHEN Bintao, XUE Luo, ZHAO Yanjun, MA Lun. Hydrocarbon accumulation models and exploration potential of near-source Cretaceous in the lower assemblage of Melut Basin,South Sudan [J]. Lithologic Reservoirs, 2020, 32(5): 23-33.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] YANG Qiulian, LI Aiqin, SUN Yanni, CUI Panfeng. Classification method for extra-low permeability reservoirs[J]. Lithologic Reservoirs, 2007, 19(4): 51 -56 .
[2] ZHANG Jie, ZHAO Yuhua. Seismic sequence of Triassic Yanchang Formation in Ordos Basin[J]. Lithologic Reservoirs, 2007, 19(4): 71 -74 .
[3] YANG Zhanlong,ZHANG Zhenggang,CHEN Qilin,GUO Jingyi,SHA Xuemei,LIU Wensu. Using multi-parameters analysis of seismic information to evaluate lithologic traps in continental basins[J]. Lithologic Reservoirs, 2007, 19(4): 57 -63 .
[4] ZHU Xiaoyan, LI Aiqin, DUAN Xiaochen, TIAN Suiliang, LIU Meirong. Fine stratigraphic classification and correlation of Chang 3 reservoir of Yanchang Formation in Zhenbei Oilfield[J]. Lithologic Reservoirs, 2007, 19(4): 82 -86 .
[5] FANG Chaohe, WANG Yifeng, ZHENG Dewen, GE Zhixin. Maceral and petrology of Lower Tertiary source rock in Qintong Sag, Subei Basin[J]. Lithologic Reservoirs, 2007, 19(4): 87 -90 .
[6] HAN Chunyuan,ZHAO Xianzheng,JIN Fengming,WANG Quan,LI Xianping,WANG Suqing. “Multi-factor controlling, four-factor entrapping and key-factor enrichment”of stratigraphic-lithologic reservoirs and exploration practice in Erlian Basin (Ⅳ)———Exploration practice[J]. Lithologic Reservoirs, 2008, 20(1): 15 -20 .
[7] DAI Chaocheng, ZHENG Rongcai, WEN Huaguo, ZHANG Xiaobing. Sequence-based lithofacies and paleogeography mapping of Paleogene in Lvda area, Liaodongwan Basin[J]. Lithologic Reservoirs, 2008, 20(1): 39 -46 .
[8] YIN Yanshu, ZHANG Shangfeng, YIN Taiju. High resolution sequence stratigraphy framework and the distribution of sandbodies in salt lake of Qianjiang Formation in Zhongshi Oilfield[J]. Lithologic Reservoirs, 2008, 20(1): 53 -58 .
[9] SHI Xuefeng, DU Haifeng. Study on the sedimentary facies of the member 3 and 4+5 of Yanchang Formation in Jiyuan area[J]. Lithologic Reservoirs, 2008, 20(1): 59 -63 .
[10] YAN Shibang, HUWangshui, LI Ruisheng, GUAN Jian, LI Tao, NIE Xiaohong. Structural features of contemporaneous thrust faults in Hongche fault belt of Junggar Basin[J]. Lithologic Reservoirs, 2008, 20(1): 64 -68 .
TRENDMD: