Citation: | ZHANG Zhibo,GUO Yinghai,ZHENG Weiqing,et al. Geochemical characteristics and organic matter enrichment model of Wufeng-Longmaxi formations shale in northeast Sichuan China[J]. Coal Science and Technology,2024,52(8):124−138. DOI: 10.12438/cst.2023-0946 |
The Sichuan Basin, located in southwestern China, is considered the primary producing area for shale gas development in the country. Its rich shale gas reserves have made it a significant contributor to China’s energy production. Within the Sichuan Basin, northeast Sichuan has emerged as a region of particular interest for shale gas development. In order to investigate the controlling factors and enrichment patterns of organic matter-rich shales from the Upper Ordovician Wufeng Formation-Lower Silurian Longmaxi Formation in northeast Sichuan, inductively coupled plasma mass spectrometry (ICP–MS) was used to analyze 14 shale samples from the Wufeng Formation-Longmaxi Formation in northeast Sichuan. Combined with the characteristics of logging curves, the sedimentary system, redox conditions, terrestrial debris input, primary productivity, and paleoclimate relationship of the Wufeng Formation to the Longmaxi Formation were explored. As a result, three third-order sequences (SSQ1, SSQ2, and SSQ3) were identified, and the sea level experienced a process from high-low-high-low, which, in combination with the shale elemental parameters of w(V)/w(Cr), w(V)/w(V+Ni), w(Ni)/w(Co), w(Sr)/w(Cu), w(Sr)/w(Ba), and T (℃), indicated that the Wufeng Formation-Longmaxi Formation underwent an oxidized-poorly oxygenated-anoxic reduced-poorly oxygenated-oxidized freshwater environment; the climate has undergone a warm-humid, dry-cold, warm-humid, dry-cold, warm-humid evolution, and the temperature has gone through the process of decreasing – increasing – decreasing – increasing. The organic matter enrichment pattern of the Wufeng Formation-Longmaxi Formation in northeast Sichuan can be divided into a Ⅲ stage pattern. Stage Ⅰ, the depositional period from the Wufeng Formation to the bottom of the Longmaxi Formation, is a stage of gradual increase in organic carbon; stage Ⅱ, the depositional period of the middle part of the Longmaxi Formation, is a stage of enrichment of organic carbon (sweet-spot member); and stage Ⅲ, the depositional period of the upper part of the Longmaxi Formation, is a stage of gradual decrease in organic carbon. It is expected to provide a basis for the exploration of shale gas in northeast Sichuan, and the next step will be to carry out research on the resource response of major geological events to organic matter enrichment in the study area and deepen the shale gas enrichment model.
[1] |
李 鹏,刘全有,毕 赫,等. 火山活动与海侵影响下的典型湖相页岩有机质保存差异分析[J]. 地质学报,2021,95(3):632‒642.
LI Peng,LIU Quanyou,BI He,et al. Analysis of the difference in organic matter preservation in typical lacustrine shale under the influence of volcanism and transgression[J]. Acta Geologica Sinica,95(3):632‒642.
|
[2] |
胡 涛,庞雄奇,姜福杰,等. 陆相断陷咸化湖盆有机质差异富集因素探讨—以东濮凹陷古近系沙三段泥页岩为例[J]. 沉积学报,2021,39(1):140−152.
HU Tao,PANG Xiongqi,JIANG Fujie,et al. Factors controlling differential enrichment of organic matter in saline lacustrine rift basin:A case study of third member Shahejie Fm in Dongpu depression[J]. Acta Sedimentologica Sinica,2021,39(1):140−152.
|
[3] |
秦身钧,徐飞,崔莉,等. 煤型战略关键微量元素的地球化学特征及资源化利用[J]. 煤炭科学技术,2022,50(3):1−38.
QIN Shenjun,XU Fei,CUI Li,et al. Geochemistry characteristics and resource utilization of strategically critical trace elements from coal-related resources[J]. Coal Science and Technology,2022,50(3):1−38.
|
[4] |
龚 月,高和群,李小越,等. 四川盆地及周缘页岩气赋存方式展布特征研究[J]. 非常规油气,2023,10(2):49−56.
GONG Yue,GAO Hequn,LI Xiaoyue,et al. Distribution characteristics of occurrence modes of shale gas in Sichuan Basin and its surrounding areas[J]. Unconventional Oil and Gas,2023,10(2):49−56.
|
[5] |
潘 妮,赵迪斐,魏 源,等. 渝西地区龙马溪组深层页岩矿物特征及其储层地质意义[J]. 非常规油气,2022,9(2):8−14,33.
PAN Ni,ZHAO Difei,WEI Yuan,et al. Mineral characteristics and reservoir geological significance of deep shale in LONGMAXI Formation,western Chongqing area[J]. Unconventional Oil and Gas,2022,9(2):8−14,33.
|
[6] |
严德天,陈代钊,王清晨,等. 扬子地区奥陶系–志留系界线附近地球化学研究[J]. 中国科学:D 辑,2009(3):285−299.
YAN Detian,CHEN Daizhao,WANG Qingchen,et al. Geochemistry near the Ordovician-Silurian boundary in the Yangtze Region[J]. Science in China:SERIES D,2009(3):285−299.
|
[7] |
王淑芳,董大忠,王玉满,等. 四川盆地志留系龙马溪组富气页岩地球化学特征及沉积环境[J]. 矿物岩石地球化学通报,2015,34(6):1203−1212. doi: 10.3969/j.issn.1007-2802.2015.06.012
WANG Shufang,DONG Dazhong,WANG Yuman,et al. Geochemical characteristics and sedimentary environment of gas-rich shale in Silurian LONGMAXI Formation,Sichuan Basin[J]. Bulletin of Mineralogy,Petrology and Geochemistry,2015,34(6):1203−1212. doi: 10.3969/j.issn.1007-2802.2015.06.012
|
[8] |
CHEN C,MU C L,ZHOU K K,et al. The geochemical characteristics and factors controlling the organic matter accumulation of the Late Ordovician-Early Silurian black shale in the Upper YANGTZE Basin,South China[J]. Marine & Petroleum Geology,2016,76:159−175.
|
[9] |
张春明,张维生,郭英海. 川东南–黔北地区龙马溪组沉积环境及对烃源岩的影响[J]. 地学前缘,2012,19(1):137−143.
ZHANG Chunming,ZHANG Weisheng,GUO Yinghai. Sedimentary environment of Longmaxi Formation in southeastern Sichuan-northern Guizhou area and its influence on source rocks[J]. Geoscience Frontiers,2012,19(1):137−143.
|
[10] |
YAN D,WANG H,FU Q,et al. Geochemical characteristics in the Longmaxi Formation(Early Silurian) of South China:Implications for organic matter accumulation[J]. Marine and Petroleum Geology,2015,a,65:290−301.
|
[11] |
ZHAO J,JIN Z,JIN Z,et al. Applying sedimentary geochemical proxies for paleoenvironment interpretation of organic-rich shale deposition in the SICHUAN Basin,China[J]. International Journal of Coal Geology,2016,163:52−71. doi: 10.1016/j.coal.2016.06.015
|
[12] |
WANG S,ZHAO W,ZOU C,et al. Organic carbon and stable CO isotopic study of the Lower Silurian Longmaxi Formation black shales in SICHUAN Basin,SW China:Paleoenvironmental and shale gas implications[J]. Energy Exploration & Exploitation,2015,33(3):439−457.
|
[13] |
WEI H Y,CHEN D Z,WANG J,et al. Organic accumulation in the lower Chihsia Formation(Middle Permian) of South China:constraints from pyrite morphology and multiple geochemical proxies[J]. Palaeogeography,Palaeoclimatology,Palaeoecology,2012,353:73−86.
|
[14] |
腾格尔,高长林,胡 凯,等. 上扬子东南缘下组合优质烃源岩发育及生烃潜力[J]. 石油实验地质,2006,28(4):359−365.
TENG Ge’er,GAO Changlin,HU Kai,et al. High-quality Source Rocks in the Lower Combination in Southeast Upper-Yangtze Area and their Hydrocarbon GENERATING Potential[J]. Petroleum Geology & Experiment,2006,28(4):359−365.
|
[15] |
邹才能,董大忠,王玉满,等. 中国页岩气特征,挑战及前景(一)[J]. 石油勘探与开发,2015,42(6):753−767.
ZOU Caineng,DONG Dazhong,WANG Yuman,et al. Shale gas in China:Characteristics,challenges and prospects(I)[J]. Petroleum Exploration and Development,2015,42(6):753−767.
|
[16] |
江增光. 四川盆地五峰组—龙马溪组有机质富集主控因素及沉积模式[D]. 南昌:东华理工大学,2018.
JIANG Zengguang. Main controlling factors and sedimentary model of organic matter enrichment in Wufeng-LONGMAXI Formation,Sichuan Basin [D].Nanchang: East China University of Technology,2018.
|
[17] |
MA Y Q,FAN M J,LU Y C,et al. Geochemistry and sedimentology of the lower silurian longmaxi mudstone in Southwestern China:Implications for Depositional Controls on Organic MATTER Accumulation. Marine and Petroleum Geology,2016,75,291–309.
|
[18] |
YAN C N,JIN Z J,ZHAO J H,et al. Influence of Sedimentary environment on organic matter enrichment in Shale:A Case Study of the Wufeng and Long-maxi Formations of the SICHUAN Basin,China[J]. Marine and Petroleum Geology,2018,92:880−894.
|
[19] |
陆扬博,马义权,王雨轩,等. 上扬子地区五峰组–龙马溪组主要地质事件及岩相沉积响应[J]. 地球科学,2017,42(7):1169−1184.
LU Yangbo,MA Yiquan,WANG Yuxuan,et al. Main geological events and lithofacies sedimentary responses of Wufeng-Longmaxi Formation in Upper Yangtze Area[J]. Earth Science,2017,42(7):1169−1184.
|
[20] |
苏文博,李志明,ETTENSOHN F R,等. 华南五峰组–龙马溪组黑色岩系时空展布的主控因素及其启示[J]. 地球科学:中国地质大学学报,2007,32(6):819−827.
SU Wenbo,LI Zhiming,ETTENSOHN F R,et al. Main controlling factors and implications of temporal and spatial distribution of black rock series in Wufeng-LONGMAXI Formation,South China[J]. Journal of China University of Geosciences (Earth Science),2007,32(6):819−827.
|
[21] |
王清晨,严德天,李双建. 中国南方志留系底部优质烃源岩发育的构造–环境模式[J]. 岩石学报,2008,82(3):289−297.
WANG Qingchen,YAN Detian,LI Shuangjian. Tectono-environmental model of high-quality source rocks at the bottom of Silurian in southern China[J]. Acta Petrologica Sinica,2008,82(3):289−297.
|
[22] |
杨向荣,严德天,张利伟,等. 赫南特冰期古海洋环境转变及其成因机制研究现状[J]. 沉积学报,2018,36(2):319−332.
YANG Xiangrong,YAN Detian,ZHANG Liwei,et al. Paleo-marine environmental transformation and its genetic mechanism in the Herman Glacial Period[J]. Acta Sedimentology Sonica,2018,36(2):319−332.
|
[23] |
周业鑫,丁 俊,余 谦,等. 渝东北地区观音桥段沉积与有机碳同位素特征及其区域对比[J]. 地质学报,2017,91(5):1097−1107.
ZHOU Yexin,DING Jun,YU Qian,et al. Sedimentary characteristics and isotopic characteristics of organic carbon in the GUANYINQIAO Formation,Northeast Chongqing[J]. Acta Geologica Sinica,2017,91(5):1097−1107.
|
[24] |
熊小辉,王 剑,熊国庆,等. 渝东北地区五峰组—龙马溪组页岩气地质特征及其勘探方向探讨[J]. 地质学报,2018,92(9):1948–1958.
XIAO Xiaohui,WANG Jian,XIONG Guoqing,et al. Geological characteristics and exploration direction of shale gas in Wufeng Formation-Longmaxi Formation in northeast Chongqing[J]. Acta Geologica Sinica,2018,92,9,1948–1958.
|
[25] |
刘 明,李彦婧,潘 兰,等. 南川地区页岩储层构造裂缝特征及其定量预测[J]. 非常规油气,2023,10(3):8−14.
LIU Ming,LI Yanjing,PAN Lan,et al. Characteristics and quantitative prediction of structural fractures in shale reservoirs in Nanchuan area[J]. Unconventional Oil and Gas,2023,10(3):8−14.
|
[26] |
何梅朋. 武隆地区五峰组—龙马溪组优质浅层常压页岩储层发育特征及含气性影响因素[J]. 非常规油气,2023,10(3):64−73.
HE Meipeng. Development characteristics and influencing factors of high quality shallow atmospheric shale reservoirs in Wufeng-LONGMAXI Formation,Wulong Area[J]. Unconventional Oil and Gas,2023,10(3):64−73.
|
[27] |
何 龙,王云鹏,陈多福. 川南地区晚奥陶–早志留世沉积环境与古气候的地球化学特征[J]. 地球化学,2019,48(6):555−566.
HE Long,WANG Yunpeng,CHEN Duofu. Geochemical characteristics of Late Ordovician-Early Silurian Sedimentary environment and paleoclimate in Southern Sichuan Basin[J]. Chinese Journal of Geochemistry,2019,48(6):555−566.
|
[28] |
李 刚. 渝东北城口地区龙马溪组页岩储层特征及孔隙演化模拟研究[D]. 徐州:中国矿业大学,2019.
LI Gang. Simulation study on shale reservoir characteristics and pore evolution of Longmaxi Formation in Chengkou area,Northeast Chongqing [D]. Xuzhou: China University of Mining and Technology,2019.
|
[29] |
邱 振,韦恒叶,刘翰林,等. 异常高有机质沉积富集过程与元素地球化学特征[J]. 石油与天然气地质,2021,42(4):931–948.
QIU Zhen,WEI Hengye,LIU H L,et al. Accumulation of sediments with extraordinary high Organic matter content:Insight gained through geochemical characterization of indicative elements[J]. Oil & Gas Geology,2021,42,(4),931–948.
|
[30] |
TAYLOR S R,McLennan S M. The continental Crust:Its Composition and Evolution[M]. London:Blackwell Scientific,1985,312.
|
[31] |
赵迪斐. 川东下古生界五峰组–龙马溪组页岩储层孔隙结构精细表征[D]. 徐州:中国矿业大学,2020.
ZHAODifei. Quantitative characterization of pore structure of shale reservoirs in the Lower Paleozoic Wufeng-Longmaxi formation of the East Sichuan area [D]. Xuzhou:China University of Mining and Technology,2020.
|
[32] |
王益友,吴 萍. 江浙海岸带沉积物的地球化学标志[J]. 同济大学学报,1983(4):82−90.
WANG Yiyou,WU Ping. Geochemical criteria of sediments in the coastal area of Jiangsu and Zhejiang Provinces[J]. Journal of Tongji University,1983(4):82−90.
|
[33] |
刘 刚,周东升. 微量元素分析在判别沉积环境中的应用:以江汉盆地潜江组为例[J]. 石油实验地质,2007,29(3):307−310.
LIU Gang,ZHOU Dongsheng. Application of microelements analysis in identifying sedimentary environment:Taking Qianjiang Formation in the Jianghan basin as an example[J]. Petroleum Geology& Experiment,2007,29(3):307−310.
|
[34] |
王益友,董大忠,王玉满,等. 四川盆地南部志留系龙马溪组富有机质页岩沉积环境的元素地球化学判别指标[J]. 海相油气地质,2014,19(3):27−34.
WANG Shufang,DONG Dazhong,WANG Yuman,et al. Geochemistry evaluation index of redox–sensitive elements for depositional environments of Silurian Longmaxi organic–rich shale in the south of Sichuan basin[J]. Marine Origin Petroleum Geology,2014,19(3):27−34.
|
[35] |
WIGNALL P B. Black shales[M]. Oxford:Clarendon Press,1994:46.
|
[36] |
王敏芳,焦养泉,王正海,等. 沉积环境中古盐度的恢复–以吐哈盆地西南缘水西沟群泥岩为例[J]. 新疆石油地质,2005,26(6):117−120.
WANG Minfang,JIAO Yangquan,WANG Zhenghai,et al. Recovery paleosalinity in sedimentary environment–an example of mudstone in Shuixigou Group,southwestern margin of Turpan–Hami basin[J]. Xinjiang Petroleum Geology,2005,26(6):117−120.
|
[37] |
许 璟,蒲仁海,杨 林,等. 塔里木盆地石炭系泥岩沉积时的古盐度分析[J]. 沉积学报,2010,28(3):509−517.
XU Jing,PU Renhai,YANG Lin,et al. The palaeosalinity analysis of Carboniferous mudstone,Tarm basin[J]. Acta Sedimentologica Sinica,2010,28(3):509−517.
|
[38] |
李 兵. 笔石动物沉积. 学术资讯,科技工作者之家[OL]. https://www.scimall.org.cn/article/detail?id=4815998,2020.
LI Bing. Graptolitic animal deposits. Academic information,home for science and technology workers [OL]. https://www.scimall.org.cn/article/detail?id=4815998,2020.
|
[39] |
张治波,朱志军,王文锋,等. 滇西兰坪盆地中—新生代蒸发岩元素地球化学特征及其形成环境[J]. 吉林大学学报(地球科学版),2019,49(2):356−379.
ZHANG Zhibo,ZHU Zhijun,WANG Wenfeng,et al. Geochemical characteristics and forming environment of elements of evaporite in Meso–cenozoic Era in Lanping basin,western Yunnan[J]. Journal of Jilin University(Geoscience),2019,49(2):356−379.
|
[40] |
田景春,张 翔. 沉积地球化学[M]. 北京:地质出版社,2016.
TIAN Jingchun,ZHANG Xiang. Sedimentary Geochemistry [M]. Beijing:Geological Publishing House,2016.
|
[41] |
LIU M,CHEN D,JIANG L,et al. Oceanic anoxia and extinction in the latest Ordovician. Earth and Planetary Science Letters,2022,588,117553.
|
[42] |
TRIBOVILLARD N,ALGEO T. J,LYONS T. W,et al. Trace metals as paleoredox and paleoproductivity proxies:an update. Chem. Geol,2006,232(1–2):12–32.
|
[43] |
LÉZIN C,ANDREU B,PELLENARD P,et al. Geochemical Disturbance and Paleoenvironmental Changes during the Early Toarcian in NW Europe[J]. Chemical Geology,2013,341:1–15.
|
[44] |
孙卫东,廖仁强. 冰期快速形成导致奥陶纪末生物大灭绝[J]. 科学通报,2020,65(6):431–433.
SUN Weidong,LIAO Renqiang. Rapid glaciation led to the mass extinction at the end of Ordovician [J]. Chinese Science Bulletin,20,65(6):431–433.
|
[45] |
TADA R. Lithostratigraphy and Compositional Variation of Neogene hemipelagic Sediments in the JAPAN Sea[J]. Proc ODP,Sci Res,1992,127:1229−1260.
|
[46] |
MURRAY R. W. Chemical Criteria to identify the Depositional Environment of Chert:General Principles and Applications[J]. Sedimentary Geology,1994,90(3/4):213−232.
|
[47] |
CALVERT S. E,PEDERSEN T. F. Chapter Fourteen Elemental Proxies for Palaeoclimatic and Palaeoceanographic Variability in Marine Sediments:Interpretation and Application[J]. Developments in Marine Geology,2007,1,4,567−644.
|
[48] |
RACHOLD V. H. J. B. Inorganic geochemistry of Albian sediments from the Lower Saxony Basin NW Germany:palaeoenvironmental Constraints and ORBITAL Cycles[J]. Palaeogeog Palaeoclimatol Palaeoecol,2001,174,1,121–143.
|
[49] |
邓 伟,杨 涛,樊生龙,等. 敦煌盆地五墩凹陷中间沟组下段泥页岩地球化学特征及沉积模式[J]. 煤田地质与勘探,2022,50(12):114−130.
DENG Wei,YANG Tao,FAN Shenglong,et al. Geochemical characteristics and sedimentary model of shales in Lower member of Zhongjiangou Formation in WUDUN Sag,Dunhuang Basin[J]. Coal Geology & Exploration,2022,50(12):114−130.
|
[50] |
QIU Zhen,ZOU Caineng,MILLS BENJAMIN J. W. ,et al. A nutrient control on expanded anoxia and global cooling during the Late Ordovician mass extinction[J]. Communications Earth & Environment,2022,3:82.
|