[1] 席胜利,莫午零,刘新社,等. 鄂尔多斯盆地西缘奥陶系乌拉力克组页岩气勘探潜力:以忠平1井为例[J]. 天然气地球科学,2021,32(8):1235-1246.

Xi Shengli, Mo Wuling, Liu Xinshe, et al. Shale gas exploration potential of Ordovician Wulalike Formation in the western margin of Ordos Basin: Case study of well Zhongping 1[J]. Natural Gas Geoscience, 2021, 32(8): 1235-1246.
[2] 付锁堂,付金华,席胜利,等. 鄂尔多斯盆地奥陶系海相页岩气地质特征及勘探前景[J]. 中国石油勘探,2021,26(2):33-44.

Fu Suotang, Fu Jinhua, Xi Shengli, et al. Geological characteristics of Ordovician marine shale gas in the Ordos Basin and its prospects[J]. China Petroleum Exploration, 2021, 26(2): 33-44.
[3] 席胜利,刘新社,黄正良,等. 鄂尔多斯盆地中奥陶统乌拉力克组页岩油气富集条件及勘探方向[J]. 天然气工业,2023,43(3):12-22.

Xi Shengli, Liu Xinshe, Huang Zhengliang, et al. Enrichment characteristics and exploration direction of shale oil and gas in Wulalike Formation of Middle Ordovician in the Ordos Basin[J]. Natural Gas Industry, 2023, 43(3): 12-22.
[4] 张凤奇,李宜浓,罗菊兰,等. 鄂尔多斯盆地西部奥陶系乌拉力克组页岩微观孔隙结构特征[J]. 岩性油气藏,2022,34(5):50-62.

Zhang Fengqi, Li Yinong, Luo Julan, et al. Microscopic pore structure characteristics of shale of Ordovician Wulalike Formation in western Ordos Basin[J]. Lithologic Reservoirs, 2022, 34(5): 50-62.
[5] 黄军平,黄正良,刘立航,等. 鄂尔多斯盆地乌拉力克组页岩储层孔径表征及其主控因素[J]. 中南大学学报(自然科学版),2022,53(9):3418-3433.

Huang Junping, Huang Zhengliang, Liu Lihang, et al. Pore size characterization and their mainly controlling factors in Wulalike Formation shale, Ordos Basin[J]. Journal of Central South University (Science and Technology), 2022, 53(9): 3418-3433.
[6] 于洲,黄正良,李维岭,等. 鄂尔多斯盆地中奥陶统乌拉力克组海相页岩岩相类型及优质储层发育特征[J]. 天然气工业,2023,43(3):23-33.

Yu Zhou, Huang Zhengliang, Li Weiling, et al. Lithofacies types and high-quality reservoir development characteristics of marine shale in the Middle Ordovician Wulalike Formation, Ordos Basin[J]. Natural Gas Industry, 2023, 43(3): 23-33.
[7] 焦方正,邹才能,杨智. 陆相源内石油聚集地质理论认识及勘探开发实践[J]. 石油勘探与开发,2020,47(6):1067-1078.

Jiao Fangzheng, Zou Caineng, Yang Zhi. Geological theory and exploration & development practice of hydrocarbon accumulation inside continental source kitchens[J]. Petroleum Exploration and Development, 2020, 47(6): 1067-1078.
[8] 金之钧,张谦,朱如凯,等. 中国陆相页岩油分类及其意义[J]. 石油与天然气地质,2023,44(4):801-819.

Jin Zhijun, Zhang Qian, Zhu Rukai, et al. Classification of lacustrine shale oil reservoirs in China and its significance[J]. Oil & Gas Geology, 2023, 44(4): 801-819.
[9] 程明,罗晓容,雷裕红,等. 鄂尔多斯盆地张家滩页岩粉砂质夹层/纹层分布、分形特征和估算方法研究[J]. 天然气地球科学,2015,26(5):845-854.

Cheng Ming, Luo Xiaorong, Lei Yuhong, et al. The distribution, fractal characteristic and thickness estimation of silty laminae and beds in the Zhangjiatan shale, Ordos Basin[J]. Natural Gas Geoscience, 2015, 26(5): 845-854.
[10] 柳波,石佳欣,付晓飞,等. 陆相泥页岩层系岩相特征与页岩油富集条件:以松辽盆地古龙凹陷白垩系青山口组一段富有机质泥页岩为例[J]. 石油勘探与开发,2018,45(5):828-838.

Liu Bo, Shi Jiaxin, Fu Xiaofei, et al. Petrological characteristics and shale oil enrichment of lacustrine fine-grained sedimentary system: A case study of organic-rich shale in first member of Cretaceous Qingshankou Formation in Gulong Sag, Songliao Basin, NE China[J]. Petroleum Exploration and Development, 2018, 45(5): 828-838.
[11] 李士祥,郭芪恒,周新平,等. 鄂尔多斯盆地延长组7段3亚段页岩型页岩油储层特征及勘探方向[J]. 石油学报,2022,43(11):1509-1519.

Li Shixiang, Guo Qiheng, Zhou Xinping, et al. Reservoir characteristics and exploration direction of pure shale-type shale oil in the 3rd sub-member, 7th member of Yanchang Formation in Ordos Basin[J]. Acta Petrolei Sinica, 2022, 43(11): 1509-1519.
[12] 张顺,陈世悦,鄢继华,等. 东营凹陷西部沙三下亚段—沙四上亚段泥页岩岩相及储层特征[J]. 天然气地球科学,2015,26(2):320-332.

Zhang Shun, Chen Shiyue, Yan Jihua, et al. Characteristics of shale lithofacies and reservoir space in the 3rd and 4th members of Shahejie Formation, the west of Dongying Sag[J]. Natural Gas Geoscience, 2015, 26(2): 320-332.
[13] 王勇,王学军,宋国奇,等. 渤海湾盆地济阳坳陷泥页岩岩相与页岩油富集关系[J]. 石油勘探与开发,2016,43(5):696-704.

Wang Yong, Wang Xuejun, Song Guoqi, et al. Genetic connection between mud shale lithofacies and shale oil enrichment in Jiyang Depression, Bohai Bay Basin[J]. Petroleum Exploration and Development, 2016, 43(5): 696-704.
[14] 孙龙德,刘合,何文渊,等. 大庆古龙页岩油重大科学问题与研究路径探析[J]. 石油勘探与开发,2021,48(3):453-463.

Sun Longde, Liu He, He Wenyuan, et al. An analysis of major scientific problems and research paths of Gulong shale oil in Daqing Oilfield, NE China[J]. Petroleum Exploration and Development, 2021, 48(3): 453-463.
[15] Lei Y H, Luo X R, Wang X Z, et al. Characteristics of silty laminae in Zhangjiatan Shale of southeastern Ordos Basin, China: Implications for shale gas formation[J]. AAPG Bulletin, 2015, 99(4): 661-687.
[16] 俞雨溪,罗晓容,雷裕红,等. 陆相页岩孔隙结构特征研究:以鄂尔多斯盆地延长组页岩为例[J]. 天然气地球科学,2016,27(4):716-726.

Yu Yuxi, Luo Xiaorong, Lei Yuhong, et al. Characterization of lacustrine shale pore structure: An example from the Upper-Triassic Yanchang Formation, Ordos Basin[J]. Natural Gas Geoscience, 2016, 27(4): 716-726.
[17] Xin B X, Zhao X Z, Hao F, et al. Laminae characteristics of lacustrine shales from the Paleogene Kongdian Formation in the Cangdong Sag, Bohai Bay Basin, China: Why do laminated shales have better reservoir physical properties?[J]. International Journal of Coal Geology, 2022, 260: 104056.
[18] 于洲,周进高,李程善,等. 鄂尔多斯盆地西缘奥陶纪克里摩里期—乌拉力克期构造—岩相古地理特征[J]. 天然气地球科学,2021,32(6):816-825.

Yu Zhou, Zhou Jingao, Li Chengshan, et al. Tectonic-lithofacies paleogeographic characteristics of Ordovician Kelimoli and Wulalike stages in the western edge of Ordos Basin[J]. Natural Gas Geoscience, 2021, 32(6): 816-825.
[19] 韩品龙,张月巧,冯乔,等. 鄂尔多斯盆地祁连海域奥陶纪岩相古地理特征及演化[J]. 现代地质,2009,23(5):822-827.

Han Pinlong, Zhang Yueqiao, Feng Qiao, et al. Petrofacies palaeogeography and evolution of Ordovician of Qilian sea area in Ordos Basin[J]. Geoscience, 2009, 23(5): 822-827.
[20] 马占荣,白海峰,刘宝宪,等. 鄂尔多斯西部地区中—晚奥陶世克里摩里期—乌拉力克期岩相古地理[J]. 古地理学报,2013,15(6):751-764.

Ma Zhanrong, Bai Haifeng, Liu Bao-xian, et al. Lithofacies palaeogeography of the Middle-Late Ordovician Kelimoli and Wulalike Ages in western Ordos area[J]. Journal of Palaeogeography, 2013, 15(6): 751-764.
[21] Li W J, Chen J T, Hakim A J, et al. Middle Ordovician mass-transport deposits from western Inner Mongolia, China: Mechanisms and implications for basin evolution[J]. Sedimentology, 2022, 69(3): 1301-1338.
[22] 俞雨溪,王宗秀,张凯逊,等. 流体注入法定量表征页岩孔隙结构测试方法研究进展[J]. 地质力学学报,2020,26(2):201-210.

Yu Yuxi, Wang Zongxiu, Zhang Kaixun, et al. Advances in quantitative characterization of shale pore structure by using fluid injection methods[J]. Journal of Geomechanics, 2020, 26(2): 201-210.
[23] Guidry K, Luffel D, Curtis J. Development of laboratory and petrophysical techniques for evaluating shale reservoirs[R]. Chicago, IL: Gas Research Institute, 1996.
[24] API Recommended practices for core analysis[M]. Washington, D.C.: American Petroleum Institute, 1998.
[25] Bustin R M, Bustin A M M, Cui X, et al. Impact of shale properties on pore structure and storage characteristics[C]//Proceedings of SPE Shale Gas Production Conference. Fort Worth, Texas, USA: SPE, 2008.
[26] Clarkson C R, Freeman M, He L, et al. Characterization of tight gas reservoir pore structure using USANS/SANS and gas adsorption analysis[J]. Fuel, 2012, 95: 371-385.
[27] Stanmore B R, He Y H, White E T, et al. Porosity and water retention in coarse coking coal[J]. Fuel, 1997, 76(3): 215-222.
[28] Comisky J T, Santiago M, McCollom B, et al. Sample size effects on the application of mercury injection capillary pressure for determining the storage capacity of tight gas and oil shales[C]//Proceedings of Canadian Unconventional Resources Conference. Calgary, Alberta, Canada: SPE, 2011: 149432.
[29] Li Y H, Lu G Q, Rudolph V. Compressibility and fractal dimension of fine coal particles in relation to pore structure characterisation using mercury porosimetry[J]. Particle & Particle Systems Characterization, 1999, 16(1): 25-31.
[30] 韩贝贝,秦勇,张政,等. 基于压汞试验的煤可压缩性研究及压缩量校正[J]. 煤炭科学技术,2015,43(3):68-72.

Han Beibei, Qin Yong, Zhang Zheng, et al. Study on coal compressibility and correction of compression amount based on compressibility of mercury injection test[J]. Coal Science and Technology, 2015, 43(3): 68-72.
[31] 俞雨溪. 陆相页岩储集空间特征及其对流体赋存状态的影响:以鄂尔多斯盆地延长组张家滩页岩为例[D]. 北京:中国科学院大学,2017.

Yu Yuxi. The characteristics of pore space in lacustrine shale and its impact on fluid storage: An example from Zhangjiatan shale of the Yanchang Formation, Ordos Basin[D]. Beijing: University of Chinese Academy of Sciences, 2017.
[32] Ingram R L. Terminology for the thickness of stratification and parting units in sedimentary rocks[J]. GSA Bulletin, 1954, 65(9): 937-938.
[33] Loucks R G, Reed R M, Ruppel S C, et al. Morphology, genesis, and distribution of nanometer scale pores in siliceous mudstones of the Mississippian Barnett shale[J]. Journal of Sedimentary Research, 2009, 79(12): 848-861.
[34] 华柑霖,吴松涛,邱振,等. 页岩纹层结构分类与储集性能差异:以四川盆地龙马溪组页岩为例[J]. 沉积学报,2021,39(2):281-296.

Hua Ganlin, Wu Songtao, Qiu Zhen, et al. Lamination texture and its effect on reservoir properties: A case study of Longmaxi shale, Sichuan Basin[J]. Acta Sedimentologica Sinica, 2021, 39(2): 281-296.
[35] 窦伟,孙丕臣,欧阳哲远,等. 纹层发育程度对页岩储层的影响:以渤海湾盆地东营凹陷沙四上—沙三下亚段页岩为例[J]. 东北石油大学学报,2023,47(4):14-28,106.

Dou Wei, Sun Pichen, Ouyang Zheyuan, et al. Influence of lamination development on shale reservoirs: A case study of shales from the upper Es4 and Lower Es3 submember in the Dongying Sag of the Bohai Bay Basin[J]. Journal of Northeast Petroleum University, 2023, 47(4): 14-28, 106.
[36] 胡文瑄,姚素平,陆现彩,等. 典型陆相页岩油层系成岩过程中有机质演化对储集性的影响[J]. 石油与天然气地质,2019,40(5):947-956,1047.

Hu Wenxuan, Yao Suping, Lu Xiancai, et al. Effects of organic matter evolution on oil reservoir property during diagenesis of typical continental shale sequences[J]. Oil & Gas Geology, 2019, 40(5): 947-956, 1047.
[37] 曾联波,吕文雅,徐翔,等. 典型致密砂岩与页岩层理缝的发育特征、形成机理及油气意义[J]. 石油学报,2022,43(2):180-191.

Zeng Lianbo, Wenya Lü, Xu Xiang, et al. Development characteristics, formation mechanism and hydrocarbon significance of bedding fractures in typical tight sandstone and shale[J]. Acta Petrolei Sinica, 2022, 43(2): 180-191.
[38] 史璨,林伯韬. 页岩储层压裂裂缝扩展规律及影响因素研究探讨[J]. 石油科学通报,2021,6(1):92-113.

Shi Can, Lin Botao. Principles and influencing factors for shale formations[J]. Petroleum Science Bulletin, 2021, 6(1): 92-113.
[39] 李艳丽. 页岩气储量计算方法探讨[J]. 天然气地球科学,2009,20(3):466-470.

Li Yanli. Calculation methods of shale gas reserves[J]. Natural Gas Geoscience, 2009, 20(3): 466-470.
[40] 王飞宇,关晶,冯伟平,等. 过成熟海相页岩孔隙度演化特征和游离气量[J]. 石油勘探与开发,2013,40(6):764-768.

Wang Feiyu, Guan Jing, Feng Weiping, et al. Evolution of overmature marine shale porosity and implication to the free gas volume[J]. Petroleum Exploration and Development, 2013, 40(6): 764-768.