| [1] |
蔡进功, 曾翔, 韦海伦, 宋明水, 王学军, 刘庆. 2019. 从水体到沉积物: 探寻有机质的沉积过程及其意义. 古地理学报, 21(1): 49-67.
doi: 10.7605/gdlxb.2019.01.003
|
|
[Cai J G, Zeng X, Wei H L, Song M S, Wang X J, Liu Q. 2019. From water body to sediments: exploring the depositional processes of organic matter and their implications. Journal of Palaeogeography(Chinese Edition), 21(1): 49-67]
|
| [2] |
蔡全升, 陈孝红, 张保民, 刘安, 韩京, 张国涛, 李炎桂. 2020. 鄂西宜昌地区五峰—龙马溪组黑色岩系硅质来源及其油气地质意义. 地质学报, 94(3): 931-946.
|
|
[Cai Q S, Chen X H, Zhang B M, Liu A, Han J, Zhang G T, Li Y G. 2020. Origin of siliceous minerals in the black shale of the Wufeng and Longmaxi Formations in the Yichang area,western Hubei Province: geological significance for shale gas. Acta Geologica Sinica, 94(3): 931-946]
|
| [3] |
操应长, 杨田, 王艳忠, 张少敏, 王思佳, 张青青, 王心怿. 2017. 深水碎屑流与浊流混合事件层类型及成因机制. 地学前缘, 24(3): 234-248.
doi: 10.13745/j.esf.yx.2016-11-25
|
|
[Cao Y C, Yang T, Wang Y Z, Zhang S M, Wang S J, Zhang Q Q, Wang X Y. 2017. Types and genesis of deep-water hybrid event beds comprising debris flow and turbidity current. Earth Science Frontiers, 24(3): 234-248]
|
| [4] |
陈旭, 戎嘉余, 樊隽轩, 詹仁斌, 张元动, 李荣玉, 王怿, Mitchell C E, Harper D A T. 2000. 奥陶—志留系界线地层生物带的全球对比. 古生物学报, 39(1): 100-114.
|
|
[Chen X, Rong J Y, Fan J X, Zhan R B, Zhang Y D, Li R Y, Wang Y, Mitchell C E, Harper D A T. 2000. A global correlation of biozones across the Ordovician-Silurian boundary. Acta Palaeontologica Sinica, 39(1): 100-114]
|
| [5] |
陈宇航, 姚根顺, 邵大力, 鲁银涛, 吕福亮, 曹全斌, 唐鹏程, 李仕芳. 2021. 坦桑尼亚滨海盆地陆坡峡谷沉积特征及其控制因素. 古地理学报, 23(6): 1158-1173.
|
|
[Chen Y H, Yao G S, Shao D L, Lu Y T, Lü F L, Cao Q B, Tang P C, Li S F. 2021. Sedimentary characteristics and its controlling factors of continental slope canyons in Tanzania Coastal Basin. Journal of Palaeogeography(Chinese Edition), 23(6): 1158-1173]
|
| [6] |
陈增裕, 刘睿, 谭秀成, 井翠, 聂舟, 衡德, 江定川, 文冉, 陈雷, 唐余锋, 唐奎. 2023. 四川盆地南缘长宁地区五峰组—龙马溪组页岩内多源石英对页岩气富集的意义. 古地理学报, 25(4): 920-930.
doi: 10.7605/gdlxb.2023.04.068
|
|
[Chen Z Y, Liu R, Tan X C, Jing C, Nie Z, Heng D, Jiang D C, Wen R, Chen L, Tang Y F, Tang K. 2023. Implications of multi-source quartz on shale-gas enrichment in the Wufeng-Longmaxi shale of Changning area in southern margin of Sichuan Basin,China. Journal of Palaeogeography(Chinese Edition), 25(4): 920-930]
|
| [7] |
杜伟, 胡宗全, 刘光祥, 朱彤, 聂海宽, 颜彩娜, 王冠平. 2020. 四川盆地及周缘上奥陶统五峰组岩相特征. 石油实验地质, 42(3): 398-404.
|
|
[Du W, Hu Z Q, Liu G X, Zhu T, Nie H K, Yan C N, Wang G P. 2020. Lithofacies of Upper Ordovician Wufeng Formation in Sichuan Basin and its periphery. Petroleum Geology and Experiment, 42(3): 398-404]
|
| [8] |
高振中, 何幼斌, 李罗照, 卿崇文, 肖明国, 程四洪, 张文成, 刘伟伟. 2008. 中国南方上奥陶统五峰组观音桥段成因讨论: 是“浅水介壳相”还是深水异地沉积? 古地理学报, 10(5): 487-494.
|
|
[Gao Z Z, He Y B, Li L Z, Qing C W, Xiao M G, Cheng S H, Zhang W C, Liu W W. 2008. Genesis of the Guanyinqiao Member of Upper Ordovician Wufeng Formation in southern China:“Shallow water shelly facies”or deep-water allogenic deposition? Journal of Palaeogeography(Chinese Edition), 10(5): 487-494]
|
| [9] |
金杰华, 操应长, 王健, 杨田, 周磊. 2019. 深水砂质碎屑流沉积: 概念、沉积过程与沉积特征. 地质论评, 65(3): 689-702.
|
|
[Jin J H, Cao Y C, Wang J, Yang T, Zhou L. 2019. Deep-water sandy debris flow deposits: concepts,sedimentary processes and characteristics. Geological Review, 65(3): 689-702]
|
| [10] |
李奋其, 郑荣才, 张士贞, 李俊, 刘函, 秦雅东. 2024. 西藏那曲地区中晚侏罗世拉贡塘组深水碎屑流沉积特征和沉积模式. 中国地质, 51(6): 2028-2041.
|
|
[Li F Q, Zheng R C, Zhang S Z, Li J, Liu H, Qin Y D. 2024. Depositional characteristics and model of the deep-water debris flow of the Mid-Late Jurassic Lagongtang Formation in the Nagqu area, Tibet. Geology in China, 51(6): 2028-2041]
|
| [11] |
梁萍萍, 郭伟, 王南, 赵文韬, 王红岩, 马譞, 李越. 2022. 川南威远—泸州页岩气井区奥陶系顶部观音桥组岩相和沉积环境. 地质科学, 57(1): 115-126.
|
|
[Liang P P, Guo W, Wang N, Zhao W T, Wang H Y, Ma X, Li Y. 2022. Lithofacies and sedimentary environments of the uppermost Ordovician Kuanyinchiao Formation from the wells in Weiyuan-Luzhou,southern Sichuan. Chinese Journal of Geology, 57(1): 115-126]
|
| [12] |
卢龙飞, 刘伟新, 俞凌杰, 张文涛, 申宝剑, 腾格尔. 2020. 生物蛋白石早期成岩相变特征及对硅质页岩孔隙发育与孔径分布的影响. 石油实验地质, 42(3): 363-370.
|
|
[Lu L F, Liu W X, Yu L J, Zhang W T, Shen B J, Tenger. 2020. Early diagenesis characteristics of biogenic opal and its influence on porosity and pore network evolution of siliceous shale. Petroleum Geology and Experiment, 42(3): 363-370]
|
| [13] |
潘松圻, 邹才能, 李勇, 荆振华, 刘恩涛, 袁铭, 张国生, 杨智, 吴松涛, 邱振, 刘翰林. 2021. 重大生物事件与化石能源形成演化: 兼论地球系统框架下能源学发展. 石油勘探与开发, 48(3): 498-509.
doi: 10.11698/PED.2021.03.06
|
|
[Pan S Q, Zou C N, Li Y, Jin Z H, Liu E T, Yuan M, Zhang G S, Yang Z, Wu S T, Qiu Z, Liu H L. 2021. Major biological events and fossil energy formation: on the development of energy science under the earth system framework. Petroleum Exploration and Development, 48(3): 498-509]
|
| [14] |
秦亚超. 2010. 生物硅早期成岩作用研究进展. 地质论评, 56(1): 89-98.
|
|
[Qin Y C. 2010. Research progress in early diagenesis of biogenic silica. Geological Review, 56(1): 89-98]
|
| [15] |
戎嘉余. 1979. 中国的赫南特贝动物群(Hirnantia fauna)并论奥陶系与志留系的分界. 地层学杂志, 3(1): 1-28.
|
|
[Rong J Y. 1979. Hirnantia fauna in China and discussing the boundary between Ordovician and Silurian periods. Acta Stratigraphica Sinica, 3(1): 1-28]
|
| [16] |
戎嘉余, 陈旭, 王怿, 詹仁斌, 刘建波, 黄冰, 唐鹏, 吴荣昌, 王光旭. 2011. 奥陶—志留纪之交黔中古陆的变迁: 证据与启示. 中国科学: 地球科学, 41(10): 1407-1415.
|
|
[Rong J Y, Chen X, Wang Y, Zhan R B, Liu J B, Huang B, Tang P, Wu R C, Wang G X. 2011. Northward expansion of Central Guizhou Oldland through the Ordovician and Silurian transition: evidence and implications. Sci Sin Terrae, 41(10): 1407-1415]
doi: 10.1360/zd-2011-41-10-1407
URL
|
| [17] |
沈均均, 杨丽亚, 王玉满, 计玉冰, 李辉, 王鹏万, 蔡全升, 孟江辉. 2023. 鄂西地区上奥陶统五峰组观音桥段成因及其页岩气地质意义. 中国石油大学学报(自然科学版), 47(2): 13-23.
|
|
[Shen J J, Yang L Y, Wang Y M, Ji Y B, Li H, Wang P W, Cai Q S, Meng J H. 2023. Genesis of Guanyinqiao bed of the Upper Ordovician Wufeng Formation and its geological significance of shale gas in western Hubei. Journal of China University of Petroleum(Edition of Natural Science), 47(2): 13-23]
|
| [18] |
施振生, 王红岩, 赵圣贤, 周天琪, 赵群, 祁灵. 2023. 川南地区五峰组—龙马溪组快速海进页岩特征及有机质分布. 古地理学报, 25(4): 788-805.
doi: 10.7605/gdlxb.2023.04.065
|
|
[Shi Z S, Wang H Y, Zhao S X, Zhou T Q, Zhao Q, Qi L. 2023. Rapid transgressive shale characteristics and organic matter distribution of the Upper Ordovician-Lower Silurian Wufeng-Longmaxi Formation in southern Sichuan Basin,China. Journal of Palaeogeography(Chinese Edition), 25(4): 788-805]
|
| [19] |
时志强, 彭深远, 赵子腾. 2024. 上奥陶统五峰组海底麻坑沉积的首次识别及其地质意义. 古地理学报, 26(2): 255-268.
doi: 10.7605/gdlxb.2024.02.019
|
|
[Shi Z Q, Peng S Y, Zhao Z T. 2024. First identification and its geological significance of seafloor pockmarks sediments in the Upper Ordovician Wufeng Formation in China. Journal of Palaeogeography(Chinese Edition), 26(2): 255-268]
|
| [20] |
汪勇, 郭伟, 高金亮, 高欢, 肖红纱, 周天琪, 蔡景顺, 詹鸿铭. 2024. 四川盆地奥陶系五峰组—志留系龙马溪组黄铁矿-有机聚合体特征. 地球化学, 53(5): 695-707.
|
|
[Wang Y, Guo W, Gao J L, Gao H, Xiao H S, Zhou T Q, Cai J S, Zhan H M. 2024. Characteristics of pyrite and organic matter aggregates in the Ordovician Wufeng-Silurian Longmaxi Formation, Sichuan Basin. Geochimica, 53(5): 695-707]
|
| [21] |
王淑芳, 邹才能, 董大忠, 王玉满, 黄金亮, 郭召杰. 2014. 四川盆地富有机质页岩硅质生物成因及对页岩气开发的意义. 北京大学学报(自然科学版), 50(3): 476-486.
|
|
[Wang S F, Zou C N, Dong D Z, Wang Y M, Huang J L, Guo Z J. 2014. Biogenic silica of organic-rich shale in Sichuan basin and its significance for shale gas. Acta Scientiarum Naturalium Universitatis Pekinensis, 50(3): 476-486]
|
| [22] |
王勇. 2023. 华南奥陶纪—志留纪之交火山活动对海洋环境与有机质富集的影响. 中南大学博士学位论文.
|
|
[Wang Y. 2023. The influence of volcanic activities on the marine environment and organic matter accumulation during the Ordovician-Silurian transition in South China. Doctoral dissertation of Central South University]
|
| [23] |
王玉满, 董大忠, 黄金亮, 李新景, 王淑芳. 2016. 四川盆地及周边上奥陶统五峰组观音桥段岩相特征及对页岩气选区意义. 石油勘探与开发, 43(1): 42-50.
doi: 10.11698/PED.2016.01.05
|
|
[Wang Y M, Dong D Z, Huang J L, Li X J, Wang S F. 2016. Guanyinqiao Member lithofacies of the Upper Ordovician Wufeng Formation around the Sichuan Basin and the significance to shale gas plays,SW China. Petroleum Exploration and Development, 43(1): 42-50]
|
| [24] |
谢浩然, 梁超, 吴靖, 籍士超. 2023. 火山活动对沉积古环境及有机质富集的影响. 古地理学报, 25(4): 768-787.
doi: 10.7605/gdlxb.2023.04.066
|
|
[Xie H R, Liang C, Wu J, Ji S C. 2023. Impacts of volcanic activity on sedimentary palaeo-environment and organic matter enrichment. Journal of Palaeogeography(Chinese Edition), 25(4): 768-787]
|
| [25] |
谢尚克, 汪正江, 王剑. 2011. 黔东北地区晚奥陶世岩相古地理. 古地理学报, 13(5): 539-549.
doi: 10.7605/gdlxb.2011.05.008
|
|
[Xie S K, Wang Z J, Wang J. 2011. Lithofacies palaeogeography of the Late Ordovician in northeastern Guizhou Province. Journal of Palaeogeography(Chinese Edition), 13(5): 539-549]
|
| [26] |
徐论勋, 肖传桃, 龚文平, 何幼斌. 2004. 论扬子地区上奥陶统五峰组观音桥段的深海成因. 地质学报, 78(6): 726-732.
|
|
[Xu L X, Xiao C T, Gong W P, He Y B. 2004. A study on the deep-sea sediment of the Guanyinqiao Memberof the Upper Ordovician Wufeng Formation in the Yangtze Area. Acta Geologica Sinica, 78(6): 726-732]
|
| [27] |
杨殿范, 魏存弟, 宁维坤, 徐少南, 蒋引珊. 2010. 嫩江蛋白石页岩的结构及其吸附性能. 吉林大学学报(地球科学版), 40(5): 1061-1065.
|
|
[Yang D F, Wei C D, Ning W K, Xu S N, Jiang Y S. 2010. Structure and adsorption properties of Nenjiang opal shale. Journal of Jilin University(Earth Science Edition), 40(5): 1061-1065]
|
| [28] |
张琳娜, 樊隽轩, 陈清. 2016. 华南上奥陶统观音桥层的空间分布和古地理重建. 科学通报, 61(18): 2053-2063.
|
|
[Zhang L N, Fan J X, Chen Q. 2016. Geographic distribution and palaeogeographic reconstruction of the Upper Ordovician Kuanyinchiao Bed in South China. Chinese Science Bulletin, 61(18): 2053-2063]
|
| [29] |
赵明胜, 王约. 2018. 上扬子海南缘晚奥陶世赫南特期沉积相特征及海平面变化. 地球学报, 39(2): 189-200.
|
|
[Zhao M S, Wang Y. 2018. Sedimentary facies features and sea-level fluctuation during the Upper Ordovician Hirnantian Period on the southern margin of the Upper Yangtze Sea. Acta Geoscientica Sinica, 39(2): 189-200]
|
| [30] |
周晓峰, 郭伟, 李熙喆, 张晓伟, 梁萍萍, 于均民. 2022a. 四川盆地五峰组—龙马溪组有机质类型与有机孔配置的放射虫硅质页岩岩石学证据. 中国石油大学学报(自然科学版), 46(5): 12-22.
|
|
[Zhou X F, Guo W, Li X Z, Zhang X W, Liang P P, Yu J M. 2022a. Mutual relation between organic matter types and pores with petrological evidence of radiolarian siliceous shale in Wufeng-Longmaxi Formation,Sichuan Basin. Journal of China University of Petroleum(Edition of Natural Science), 46(5): 12-22]
|
| [31] |
周晓峰, 李熙喆, 郭伟, 张晓伟, 梁萍萍, 于均民. 2022b. 四川盆地五峰组—龙马溪组页岩储层中碳酸盐矿物特征、形成机制及对储层物性影响. 天然气地球科学, 33(5): 775-788.
|
|
[Zhou X F, Li X Z, Guo W, Zhang X W, Liang P P, Yu J M. 2022b. Characteristics,formation mechanism and influence on physical properties of carbonate minerals in shale reservoir of Wufeng-Longmaxi formations,Sichuan Basin. Natural Gas Geoscience, 33(5): 775-788]
|
| [32] |
Bond D, Grasby S E. 2017. On the causes of mass extinctions. Palaeogeography, Palaeoclimatology, Palaeoecology,478: 3-29.
|
| [33] |
Buggisch W, Joachimski M, Lehnert O, Bergström S M, Repetski J E, Webers G F. 2010. Did intense volcanism trigger the first Late Ordovician icehouse? Geology,38: 327-330.
|
| [34] |
Finney S C. 2005. Global series and stages for the Ordovician system: a progress report. Geologica Acta, 3(4): 309-316.
|
| [35] |
Pope M C, Steffen J B. 2003. Widespread,prolonged Late Middle to Late Ordovician upwelling in North America: a proxy record of glaciation? Geology, 31(1): 63-66.
doi: 10.1130/0091-7613(2003)031<0063:WPLMTL>2.0.CO;2
URL
|
| [36] |
Shanmugam G. 1996. High-density turbidity currents: are they sandy debris flows? Journal of Sedimentary Research, 66(1): 2-10.
doi: 10.1306/D426828E-2B26-11D7-8648000102C1865D
URL
|
| [37] |
Sheehan P M. 2001. The Late Ordovician mass extinction. Annual Reviews of Earth and Planetary Science,29: 331-364.
|
| [38] |
Zhou X F, Guo W, Li X Z, Liang P P, Yu J M, Zhang C L. 2024. Deciphering nano-resolution petrological characteristics of the siliceous shale at the bottom of the Longmaxi Formation in the Zigong area,Sichuan Basin,China: deep-water microbialites. Minerals, 14(10): 1020.
doi: 10.3390/min14101020
URL
|