[1] 贾承造. 论非常规油气对经典石油天然气地质学理论的突破及意义[J]. 石油勘探与开发,2017,44(1):1-11.

Jia Chengzao. Breakthrough and significance of unconventional oil and gas to classical petroleum geological theory[J]. Petroleum Exploration and Development, 2017, 44(1): 1-11.
[2] 邹才能,杨智,张国生,等. 非常规油气地质学建立及实践[J]. 地质学报,2019,93(1):12-23.

Zou Caineng, Yang Zhi, Zhang Guosheng, et al. Establishment and practice of unconventional oil and gas geology[J]. Acta Geologica Sinica, 2019, 93(1): 12-23.
[3] 戴金星,陈践发,钟宁宁,等. 中国大气田及其气源[M]. 北京:科学出版社,2003:9-194.

Dai Jinxing, Chen Jianfa, Zhong Ningning, et al. China's large gas fields and their gas sources[M]. Beijing: Science Press, 2003: 9-194.
[4] 邹才能,杨智,崔景伟,等. 页岩油形成机制、地质特征及发展对策[J]. 石油勘探与开发,2013,40(1):14-26.

Zou Caineng, Yang Zhi, Cui Jingwei, et al. Formation mechanism, geological characteristics and development strategy of nonmarine shale oil in China[J]. Petroleum Exploration and Development, 2013, 40(1): 14-26.
[5] 袁野,赵靖舟,耳闯,等. 鄂尔多斯盆地中生界及上古生界页岩孔隙类型及特征研究[J]. 西安石油大学学报(自然科学版),2014,29(2):14-19.

Yuan Ye, Zhao Jingzhou, Chuang Er, et al. Study on types and features of the pore in Mesozoic and Upper Palaeozoic shales in Ordos Basin[J]. Journal of Xi’an Shiyou University (Natural Science Edition), 2014, 29(2): 14-19.
[6] Cao T T, Song Z G, Wang S B, et al. A comparative study of the specific surface area and pore structure of different shales and their kerogens[J]. Science China Earth Sciences, 2015, 58(4): 510-522.
[7] 熊波,李贤庆,马安来,等. 全岩显微组分定量统计及其在烃源岩评价中的应用[J]. 江汉石油学院学报,2001,23(3):16-20.

Xiong Bo, Li Xianqing, Ma Anlai, et al. Quantitative statistics of whole rock macerals and its application in evaluating source rocks[J]. Journal of Jianghan Petroleum Institute, 2001, 23(3): 16-20.
[8] 马风华,潘进礼,马瑞赟,等. 六盘山盆地马东山组低熟泥页岩有机质类型划分[J]. 天然气地球科学,2019,30(9):1370-1377.

Ma Fenghua, Pan Jinli, Ma Ruiyun, et al. Division of immature mud-shale organic type of Madongshan Formation in Liupanshan Basin[J]. Natural Gas Geoscience, 2019, 30(9): 1370-1377.
[9] 刘忠宝,高波,张钰莹,等. 上扬子地区下寒武统页岩沉积相类型及分布特征[J]. 石油勘探与开发,2017,44(1):21-31.

Liu Zhongbao, Gao Bo, Zhang Yuying, et al. Types and distribution of the shale sedimentary facies of the Lower Cambrian in Upper Yangtze area, South China[J]. Petroleum Exploration and Development, 2017, 44(1): 21-31.
[10] 牟传龙,周恳恳,梁薇,等. 中上扬子地区早古生代烃源岩沉积环境与油气勘探[J]. 地质学报,2011,85(4):526-532.

Mu Chuanlong, Zhou Kenken, Liang Wei, et al. Early Paleozoic sedimentary environment of hydrocarbon source rocks in the Middle-Upper Yangtze region and petroleum and gas exploration[J]. Acta Geologica Sinica, 2011, 85(4): 526-532.
[11] 郭彤楼,张汉荣. 四川盆地焦石坝页岩气田形成与富集高产模式[J]. 石油勘探与开发,2014,41(1):28-36.

Guo Tonglou, Zhang Hanrong. Formation and enrichment mode of Jiaoshiba shale gas field, Sichuan Basin[J]. Petroleum Exploration and Development, 2014, 41(1): 28-36.
[12] 马新华. 四川盆地南部页岩气富集规律与规模有效开发探索[J]. 天然气工业,2018,38(10):1-10.

Ma Xinhua. Enrichment laws and scale effective development of shale gas in the southern Sichuan Basin[J]. Natural Gas Industry, 2018, 38(10): 1-10.
[13] 郭英海,李壮福,李大华,等. 四川地区早志留世岩相古地理[J]. 古地理学报,2004,6(1):20-29.

Guo Yinghai, Li Zhuangfu, Li Dahua, et al. Lithofacies palaeogeography of the Early Silurian in Sichuan area[J]. Journal of Palaeogeography, 2004, 6(1): 20-29.
[14] 王曦蒙,刘洛夫,汪洋,等. 川南地区龙马溪组页岩岩相对页岩孔隙空间的控制[J]. 石油学报,2019,40(10):1192-1201.

Wang Ximeng, Liu Luofu, Wang Yang, et al. Control of lithofacies on pore space of shale from Longmaxi Formation, southern Sichuan Basin[J]. Acta Petrolei Sinica, 2019, 40(10): 1192-1201.
[15] Ge X Y, Mou C L, Yu Q, et al. The geochemistry of the sedimentary rocks from the Huadi No. 1 well in the Wufeng-Longmaxi formations (Upper Ordovician-Lower Silurian), South China, with implications for paleoweathering, provenance, tectonic setting and paleoclimate[J]. Marine and Petroleum Geology, 2019, 103: 646-660.
[16] 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. Distribution of black shale in the Wufeng-Longmaxi Formations(Ordovician-Silurian), South China: Major controlling factors and implications[J]. Earth Science: Journal of China University of Geosciences, 2007, 32(6): 819-827.
[17] 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 Longmaxi Formations of the Sichuan Basin, China[J]. Marine and Petroleum Geology, 2018, 92: 880-894.
[18] 吴蓝宇,陆永潮,蒋恕,等. 上扬子区奥陶系五峰组—志留系龙马溪组沉积期火山活动对页岩有机质富集程度的影响[J]. 石油勘探与开发,2018,45(5):806-816.

Wu Lanyu, Lu Yongchao, Jiang Shu, et al. Effects of volcanic activities in Ordovician Wufeng-Silurian Longmaxi period on organic-rich shale in the Upper Yangtze area, South China[J]. Petroleum Exploration and Development, 2018, 45(5): 806-816.
[19] 蒲泊伶,董大忠,王凤琴,等. 沉积相带对川南龙马溪组页岩气富集的影响[J]. 中国地质,2020,47(1):111-120.

Pu Boling, Dong Dazhong, Wang Fengqin, et al. The effect of sedimentary facies on Longmaxi shale gas in southern Sichuan Basin[J]. Geology in China, 2020, 47(1): 111-120.
[20] Wang S F, Dong D Z, Wang Y M, et al. Sedimentary geochemical proxies for paleoenvironment interpretation of organic-rich shale: A case study of the Lower Silurian Longmaxi Formation, southern Sichuan Basin, China[J]. Journal of Natural Gas Science and Engineering, 2016, 28: 691-699.
[21] 吴清民. 川南威远地区下志留统龙马溪组页岩气地质特征研究[D]. 成都:西南石油大学,2018.

Wu Qingmin. Study on the geological characteristics of Lower Silurian Longmaxi shale gas formation in Weiyuan area of South Sichuan Basin[D]. Chengdu: Southwest Petroleum University, 2018.
[22] Saif T, Lin Q Y, Butcher A R, et al. Multi-scale multi-dimensional microstructure imaging of oil shale pyrolysis using X-ray micro-tomography, automated ultra-high resolution SEM, MAPS Mineralogy and FIB-SEM[J]. Applied Energy, 2017, 202: 628-647.
[23] 焦淑静,张慧,薛东川,等. 泥页岩有机显微组分的扫描电镜形貌特征及识别方法[J]. 电子显微学报,2018,37(2):137-144.

Jiao Shujing, Zhang Hui, Xue Dongchuan, et al. Morphological structure and identify method of organic macerals of shale with SEM[J]. Journal of Chinese Electron Microscopy Society, 2018, 37(2): 137-144.
[24] Pickel W, Kus J, Flores D, et al. Classification of liptinite–ICCP System 1994[J]. International Journal of Coal Geology, 2017, 169: 40-61.
[25] Khan I, Zhong N N, Luo Q Y, et al. Maceral composition and origin of organic matter input in Neoproterozoic-Lower Cambrian organic-rich shales of Salt Range Formation, upper Indus Basin, Pakistan[J]. International Journal of Coal Geology, 2020, 217: 103319.
[26] 王高. 焦煤显微组分分类方法研究[D]. 马鞍山:安徽工业大学,2017.

Wang Gao. Research on classification method of coking coal macerals[D]. Ma'anshan: Anhui University of Technology, 2017.
[27] 曾凡刚,程克明,吴朝东. 应用海相镜质组反射率研究华北地区下古生界成熟度[J]. 地质地球化学,1998,26(3):21-24.

Zeng Fangang, Cheng Keming, Wu Chaodong. Maturity of the Lower Palaeozoic in North China in terms of reflectivity of marine vitrinites[J]. Geology-Geochemistry, 1998, 26(3): 21-24.
[28] 焦淑静,张慧,薛东川. 三塘湖盆地芦草沟组页岩有机显微组分扫描电镜研究[J]. 电子显微学报,2019,38(3):257-263.

Jiao Shujing, Zhang Hui, Xue Dongchuan. SEM study on organic macerals of shale in Lucaogou Formation Santanghu Basin[J]. Journal of Chinese Electron Microscopy Society, 2019, 38(3): 257-263.
[29] 柳广弟,张厚福. 石油地质学[M]. 4版. 北京:石油工业出版社,2009:110-140.

Liu Guangdi, Zhang Houfu. Petroleum geology[M]. 4th ed. Beijing: Petroleum Industry Press, 2009: 110-140.
[30] 王亚东. 有机质类型及演化特征对页岩油、气富集规律的影响研究[D]. 荆州:长江大学,2016.

Wang Yadong. The impact of organic matter type and evolution characteristics on the enrichment regularity of shale gas and shale oil[D]. Jingzhou: Yangtze University, 2016.
[31] 黄冬. 四川盆地南部龙马溪组富有机质页岩储层特征研究[D]. 成都:西南石油大学,2018.

Huang Dong. Study on the characteristics of organic-rich shale reservoirs in Longmaxi Formation in southern Sichuan Basin[D]. Chengdu: Southwest Petroleum University, 2018.
[32] 何治亮,聂海宽,张钰莹. 四川盆地及其周缘奥陶系五峰组-志留系龙马溪组页岩气富集主控因素分析[J]. 地学前缘,2016,23(2):8-17.

He Zhiliang, Nie Haikuan, Zhang Yuying. The main factors of shale gas enrichment of Ordovician Wufeng Formation-Silurian Longmaxi Formation in the Sichuan Basin and its adjacent areas[J]. Earth Science Frontiers, 2016, 23(2): 8-17.
[33] 戴娜,钟宁宁,邓运华,等. 中生代-新生代大陆边缘盆地海相烃源岩成因类型[J]. 石油学报,2015,36(8):940-953.

Dai Na, Zhong Ningning, Deng Yunhua, et al. Genetic types of marine source rock in Meso-Cenozoic continental margin basins[J]. Acta Petrolei Sinica, 2015, 36(8): 940-953.
[34] 邱振,邹才能. 非常规油气沉积学:内涵与展望[J]. 沉积学报,2020,38(1):1-29.

Qiu Zhen, Zou Caineng. Unconventional petroleum sedimentology: Connotation and prospect[J]. Acta Sedimentologica Sinica, 2020, 38(1): 1-29.
[35] Langmann B, Zakšek K, Hort M, et al. Volcanic ash as fertiliser for the surface ocean[J]. Atmospheric Chemistry and Physics, 2010, 10(8): 3891-3899.
[36] 邱振,卢斌,陈振宏,等. 火山灰沉积与页岩有机质富集关系探讨:以五峰组—龙马溪组含气页岩为例[J]. 沉积学报,2019,37(6):1296-1308.

Qiu Zhen, Lu Bin, Chen Zhenhong, et al. Discussion of the relationship between volcanic ash layers and organic enrichment of black shale: A case study of the Wufeng-Longmaxi gas shales in the Sichuan Basin[J]. Acta Sedimentologica Sinica, 2019, 37(6): 1296-1308.
[37] 叶子亿. 四川盆地威远—大足地区龙马溪组富有机质页岩沉积微相研究[D]. 成都:西南石油大学,2017.

Ye Ziyi. Study on sedimentary microfacies of organic rich shale in Longmaxi Formation in Weiyuan-Dazu area, Sichuan Basin[D]. Chengdu: Southwest Petroleum University, 2017.
[38] 李双建,肖开华,沃玉进,等. 南方海相上奥陶统—下志留统优质烃源岩发育的控制因素[J]. 沉积学报,2008,26(5):872-880.

Li Shuangjian, Xiao Kaihua, Yujin Wo, et al. Developmental controlling factors of Upper Ordovician-Lower Silurian high quality source rocks in marine sequence, South China[J]. Acta Sedimentologica Sinica, 2008, 26(5): 872-880.