[1] 操应长,远光辉,王艳忠,等. 准噶尔盆地北三台地区清水河组低渗透储层成因机制[J]. 石油学报,2012,33(5):758-771.

Cao Yingchang, Yuan Guanghui, Wang Yanzhong, et al. Genetic mechanisms of low permeability reservoirs of Qingshuihe Formation in Beisantai area, Junggar Basin[J]. Acta Petrolei Sinica, 2012, 33(5): 758-771.
[2] 邹才能,张国生,杨智,等. 非常规油气概念、特征、潜力及技术:兼论非常规油气地质学[J]. 石油勘探与开发,2013,40(4):385-399,454.

Zou Caineng, Zhang Guosheng, Yang Zhi, et al. Geological concepts, characteristics, resource potential and key techniques of unconventional hydrocarbon: On unconventional petroleum geology[J]. Petroleum Exploration and Development, 2013, 40(4): 385-399, 454.
[3] Higgs K E, Zwingmann H, Reyes A G, et al. Diagenesis, porosity evolution, and petroleum emplacement in tight gas reservoirs, Taranaki Basin, New Zealand[J]. Journal of Sedimentary Research, 2007, 77(12): 1003-1025.
[4] 廖飞燕,马庆林,郭浩,等. 福山凹陷流沙港组低渗储层孔隙特征及成因[J]. 地质学刊,2017,41(4):644-650.

Liao Feiyan, Ma Qinglin, Guo Hao, et al. Pore characteristics and genetic mechanism of low permeability reservoirs of the Liushagang Formation in Fushan Sag[J]. Journal of Geology, 2017, 41(4): 644-650.
[5] Gan H J, Wang H, Shi Y, et al. Geochemical characteristics and genetic origin of crude oil in the Fushan Sag, Beibuwan Basin, South China Sea[J]. Marine and Petroleum Geology, 2020, 112: 104114.
[6] 宋子齐,谭成仟,吴少波. 福山凹陷下第三系碎屑岩储层定量评价解释标准及权系数[J]. 断块油气田,1999,6(5):9-13.

Song Ziqi, Tan Chengqian, Wu Shaobo. The quantitative evaluation standard and weight coefficient of Eogene clastic rock reservoir in Fushan Depression[J]. Fault-Block Oil & Gas Field, 1999, 6(5): 9-13.
[7] 刘杰,孙美静,岳绍飞,等. 福山凹陷花场—白莲地区流沙港组成岩作用及储层物性影响因素[J]. 油气地质与采收率,2013,20(2):21-24,29.

Liu Jie, Sun Meijing, Yue Shaofei, et al. Analysis of diagenesis and major controlling factors on reservoir quality of the Liushagang Formation in Huachang-Bailian area, Fushan Depression, Beibuwan Basin[J]. Petroleum Geology and Reco-very Efficiency, 2013, 20(2): 21-24, 29.
[8] 岳绍飞,刘杰,马丽娜,等. 福山凹陷流沙港组三段储层四性关系及有效厚度下限标准[J]. 油气地质与采收率,2013,20(4):42-45.

Yue Shaofei, Liu Jie, Ma Li’na, et al. Study on reservoir four-property relations and effective thickness lower limit in third member of Liushagang Formation, Fushan Sag[J]. Petroleum Geology and Recovery Efficiency, 2013, 20(4): 42-45.
[9] 田伟志. 成岩作用对生储盖层的影响与成岩史模拟:以北部湾盆地福山凹陷为例[J]. 录井工程,2021,32(2):115-121.

Tian Weizhi. Influence of diagenesis on source, reservoir, cap rocks and diagenetic history simulation: A case study of Fushan Depression in Beibuwan Basin[J]. Mud Logging Engineering, 2021, 32(2): 115-121.
[10] 廖飞燕,马庆林,孙新销,等. 北部湾盆地福山凹陷古近系流沙港组岩性油气藏勘探[J]. 中国石油勘探,2015,20(2):43-50.

Liao Feiyan, Ma Qinglin, Sun Xinxiao, et al. Study of lithologic reservoir of Paleogene Liushagang Formation in Fushan Depression of Beibu Bay Basin[J]. China Petroleum Exploration, 2015, 20(2): 43-50.
[11] 史基安,王琪. 影响碎屑岩天然气储层物性的主要控制因素[J]. 沉积学报,1995,13(2):128-139.

Shi Ji'an, Wang Qi. A disscussion on main controlling factors on the properties of Clastic gas reservoirs[J]. Acta Sedimentologica Sinica, 1995, 13(2): 128-139.
[12] 马永生,蔡勋育,赵培荣,等. 深层超深层碳酸盐岩优质储层发育机理和“三元控储”模式:以四川普光气田为例[J]. 地质学报,2010,84(8):1087-1094.

Ma Yongsheng, Cai Xunyu, Zhao Peirong, et al. Formation mechanism of deep-buried carbonate reservoir and its model of three-element controlling reservoir: A case study from the Puguang oilfield in Sichuan[J]. Acta Geologica Sinica, 2010, 84(8): 1087-1094.
[13] 张荣虎,姚根顺,寿建峰,等. 沉积、成岩、构造一体化孔隙度预测模型[J]. 石油勘探与开发,2011,38(2):145-151.

Zhang Ronghu, Yao Genshun, Shou Jianfeng, et al. An integration porosity forecast model of deposition, diagenesis and structure[J]. Petroleum Exploration and Development, 2011, 38(2): 145-151.
[14] 邹才能,陶士振,薛叔浩. “相控论”的内涵及其勘探意义[J]. 石油勘探与开发,2005,32(6):7-12.

Zou Caineng, Tao Shizhen, Xue Shuhao. Connotation of "Facies Control Theory" and its significance for exploration[J]. Petroleum Exploration and Development, 2005, 32(6): 7-12.
[15] 王珂,张荣虎,余朝丰,等. 塔里木盆地库车坳陷北部构造带侏罗系阿合组储层特征及控制因素[J]. 天然气地球科学,2020,31(5):623-635.

Wang Ke, Zhang Ronghu, Yu Chaofeng, et al. Characteristics and controlling factors of Jurassic Ahe reservoir of the northern tectonic belt, Kuqa Depression, Tarim Basin[J]. Natural Gas Geoscience, 2020, 31(5): 623-635.
[16] 赖锦,王贵文,罗官幸,等. 基于岩石物理相约束的致密砂岩气储层渗透率解释建模[J]. 地球物理学进展,2014,29(3):1173-1182.

Lai Jin, Wang Guiwen, Luo Guanxing, et al. A fine logging interpretation model of permeability confined by petrophysical facies of tight gas sandstone reservoirs[J]. Progress in Geophysics, 2014, 29(3): 1173-1182.
[17] 李军亮. 渤海湾盆地东营凹陷深层砂砾岩储层成岩演化特征[J]. 石油实验地质,2008,30(3):252-255.

Li Junliang. Diagenesis evolution characteristics of deep buried glutenite reservoir bed in the Dongying Sag, the Bohai Bay Basin[J]. Petroleum Geology & Experiment, 2008, 30(3): 252-255.
[18] 傅宁,王柯,贾庆军. “源热共控”北部湾盆地福山凹陷油气的形成[J]. 石油学报,2019,40(增刊2):38-45.

Fu Ning, Wang Ke, Jia Qingjun. Formation of oil and gas in the Fushan Sag of Beibuwan Basin under the co-control of source and heat[J]. Acta Petrolei Sinica, 2019, 40(Suppl.2): 38-45.
[19] 张智武,刘志峰,张功成,等. 北部湾盆地裂陷期构造及演化特征[J]. 石油天然气学报,2013,35(1):6-10.

Zhang Zhiwu, Liu Zhifeng, Zhang Gongcheng, et al. The chasmic stage and structural evolution features of Beibuwan Basin[J]. Journal of Oil and Gas Technology, 2013, 35(1): 6-10.
[20] 熊绍云,黄羚,程刚,等. 福山凹陷流沙港期源区构造环境、母岩类型及演化[J]. 沉积学报,2022,40(6):1745-1761.

Xiong Shaoyun, Huang Ling, Cheng Gang, et al. Tectonic environment, parent rock type and evolution of source area in Liushagang period, Fushan Sag, Hainan[J]. Acta Sedimentologica Sinica, 2022, 40(6): 1745-1761.
[21] 王观宏,黄传炎,刘恩涛,等. 福山凹陷南部缓坡流沙港组坡折带特征及对沉积、油气成藏的控制[J]. 中南大学学报(自然科学版),2014,45(5):1531-1541.

Wang Guanhong, Huang Chuanyan, Liu Entao, et al. Characteristics of slope-breaks and its control on sedimentation and hydrocarbon accumulation of Liushagang Formation in gentle slope of south Fushan Sag[J]. Journal of Central South University (Science and Technology), 2014, 45(5): 1531-1541.
[22] 朱洁琼,李晓寒,尹恒,等. 北部湾盆地福山凹陷流沙港组页岩特征及页岩油气资源潜力[J]. 中国海上油气,2022,34(6):65-79.

Zhu Jieqiong, Li Xiaohan, Yin Heng, et al. Shale characteristics and shale oil and gas resource potential of Liushagang Formationin Fushan Sag, Beibu Gulf Basin[J]. China Offshore Oil and Gas, 2022, 34(6): 65-79.
[23] 秦秋寒,雷栋,宋效文,等. 北部湾盆地福山凹陷流沙港组致密油成藏条件及主控因素[J]. 地质科技通报,2021,40(4):1-10.

Qin Qiuhan, Lei Dong, Song Xiaowen, et al. Geological conditions and the main controlling factors for the tight oil accumulation in Liushagang Formation of Fushan Depression, Beibuwan Basin[J]. Bulletin of Geological Science and Technology, 2021, 40(4): 1-10.
[24] 熊绍云,黄羚,程刚,等. 北部湾盆地福山凹陷花东—白莲北部地区流三段砂岩储层致密成因[J]. 地质学报,2013,87(10):1624-1633.

Xiong Shaoyun, Huang Ling, Cheng Gang, et al. Origin mechanism of tightness from the third members of Liu-shagang Formation sandstone reservoir in the northern Huadong-Bailian area, Fushan Sag, northern Bay Basin[J]. Acta Geologica Sinica, 2013, 87(10): 1624-1633.
[25] Taylor T R, Giles M R, Hathon L A, et al. Sandstone diagenesis and reservoir quality prediction: Models, myths, and reality[J]. AAPG Bulletin, 2010, 94(8): 1093-1132.
[26] Cook J E, Goodwin L B, Boutt D F. Systematic diagenetic changes in the grain-scale morphology and permeability of a quartz-cemented quartz arenite[J]. AAPG Bulletin, 2011, 95(6): 1067-1088.
[27] 付文耀,刘春武,刘丽丽,等. 鄂尔多斯盆地胡尖山油田延长组长61储层特征及控制因素分析[J]. 石油天然气学报,2011,33(7):45-49.

Fu Wenyao, Liu Chunwu, Liu Lili, et al. The reservoir characteristics and controlling factors of Chang61 Formation in Hujianshan oilfield of Ordos Basin[J]. Journal of Oil and Gas Technology, 2011, 33(7): 45-49.
[28] 贾承造,庞雄奇. 深层油气地质理论研究进展与主要发展方向[J]. 石油学报,2015,36(12):1457-1469.

Jia Chengzao, Pang Xiongqi. Research processes and main development directions of deep hydrocarbon geological theories[J]. Acta Petrolei Sinica, 2015, 36(12): 1457-1469.
[29] Ceriani A, Di Giulio A, Goldstein R H, et al. Diagenesis associated with cooling during burial: An example from Lower Cretaceous reservoir sandstones (Sirt Basin, Libya)[J]. AAPG Bulletin, 2002, 86(9): 1573-1591.
[30] 邹才能,陶士振,周慧,等. 成岩相的形成、分类与定量评价方法[J]. 石油勘探与开发,2008,35(5):526-540.

Zou Caineng, Tao Shizhen, Zhou Hui, et al. Genesis, classification and evaluation method of diagenetic facies[J]. Petroleum Exploration and Development, 2008, 35(5): 526-540.
[31] 张响响,邹才能,朱如凯,等. 川中地区上三叠统须家河组储层成岩相[J]. 石油学报,2011,32(2):257-264.

Zhang Xiang-xiang, Zou Caineng, Zhu Rukai, et al. Reservoir diagenetic facies of the Upper Triassic Xujiahe Formation in the central Sichuan Basin[J]. Acta Petrolei Sinica, 2011, 32(2): 257-264.
[32] Lai J, Wang G W, Chai Y, et al. Deep burial diagenesis and reservoir quality evolution of high-temperature, high-pressure sandstones: Examples from Lower Cretaceous Bashijiqike Formation in Keshen area, Kuqa Depression, Tarim Basin of China[J]. AAPG Bulletin, 2017, 101(6): 829-862.
[33] 赖锦,王贵文,王书南,等. 碎屑岩储层成岩相研究现状及进展[J]. 地球科学进展,2013,28(1):39-50.

Lai Jin, Wang Guiwen, Wang Shunan, et al. Research status and advances in the diagenetic facies of clastic reservoirs[J]. Advances in Earth Science, 2013, 28(1): 39-50.
[34] 代金友,张一伟,王志章,等. 彩南油田九井区人工裂缝系统研究[J]. 西南石油学院学报,2003,25(3):16-18.

Dai Jinyou, Zhang Yiwei, Wang Zhizhang, et al. Study on artificial fracturing system of well-block 9 in Cainan oil field[J]. Journal of Southwest Petroleum Institute, 2003, 25(3): 16-18.
[35] 杨宁,王贵文,赖锦,等. 岩石物理相的控制因素及其定量表征方法研究[J]. 地质论评,2013,59(3):563-574.

Yang Ning, Wang Guiwen, Lai Jin, et al. Researches of the control factors and the quantitatively characterization method of reservoir petrophysical facies[J]. Geological Review, 2013, 59(3): 563-574.
[36] 朱剑兵,陈丽华,纪友亮,等. 鄂尔多斯盆地西缘逆冲带上古生界孔隙发育影响因素[J]. 石油学报,2006,27(3):37-41.

Zhu Jianbing, Chen Lihua, Ji Youliang, et al. Influence factors for development of the Upper Paleozoic pore in thrust belt of western Ordos Basin[J]. Acta Petrolei Sinica, 2006, 27(3): 37-41.
[37] 张晶,李勇,张自力,等. 歧口凹陷歧北斜坡沙三段成岩作用及其对储层影响分析[J]. 地质学刊,2012,36(1):8-16.

Zhang Jing, Li Yong, Zhang Zili, et al. Diagenesis and reservoir characteristics analysis at Es3 in Qibei Ramp of Qikou Sag[J]. Journal of Geology, 2012, 36(1): 8-16.
[38] Ochoa R I. Porosity characterization and diagenetic facies analysis of the mount Simon sandstone, Illinois Basin: Implications for a regional CO2 sequestration reservoir[D]. West Lafayette: Porde University, 2010.
[39] Carvalho M V F, De Ros L F, Gomes N S. Carbonate cementation patterns and diagenetic reservoir facies in the Campos Basin Cretaceous turbidites, offshore eastern Brazil[J]. Marine and Petroleum Geology, 1995, 12(7): 741-758.
[40] Gregory B N, Chan M A. Colorful diagenetic facies and fluid-related alteration features of the Jurassic Navajo Sandstone, Snow Canyon State Park, Utah[C]//2006 Annual Meeting. Geological Society of America, 2006, 38(7): 518.
[41] 冉冶,王贵文,赖锦,等. 利用测井交会图法定量表征致密油储层成岩相:以鄂尔多斯盆地华池地区长7致密油储层为例[J]. 沉积学报,2016,34(4):694-706.

Ran Ye, Wang Guiwen, Lai Jin, et al. Quantitative characterization of diagenetic facies of tight sandstone oil reservoir by using logging crossplot: A case study on Chang 7 tight sandstone oil reservoir in Huachi area, Ordos Basin[J]. Acta Sedimentologica Sinica, 2016, 34(4): 694-706.
[42] 姜振学,李峰,杨海军,等. 库车坳陷迪北地区侏罗系致密储层裂缝发育特征及控藏模式[J]. 石油学报,2015,36(增刊2):102-111.

Jiang Zhenxue, Li Feng, Yang Haijun, et al. Development characteristics of fractures in Jurassic tight reservoir in Dibei area of Kuqa Depression and its reservoir-controlling mode[J]. Acta Petrolei Sinica, 2015, 36(Suppl. 2): 102-111.
[43] Lyu W Y, Zeng L B, Zhou S B, et al. Natural fractures in tight-oil sandstones: A case study of the Upper Triassic Yanchang Formation in the southwestern Ordos Basin, China[J]. AAPG Bulletin, 2019, 103(10): 2343-2367.
[44] 赖锦,肖露,赵鑫,等. 深层—超深层优质碎屑岩储层成因与测井评价方法:以库车坳陷白垩系巴什基奇克组为例[J]. 石油学报,2023,44(4):612-625.

Lai Jin, Xiao Lu, Zhao Xin, et al. Genesis and logging evaluation of deep to ultra-deep high-quality clastic reservoirs: A case study of the Cretaceous Bashijiqike Formation in Kuqa Depression[J]. Acta Petrolei Sinica, 2023, 44(4): 612-625.
[45] Lai J, Li D, Bai T Y, et al. Reservoir quality evaluation and prediction in ultra-deep tight sandstones in the Kuqa depression, China. Journal of Structural Geology, 2023, 170, 104850.
[46] 赖锦,宋翔羽,杨薰,等. 致密砂岩气储层测井综合评价技术研究进展[J]. 石油学报,2025,46(1):220-235.

Lai Jin, Song Xiangyu, Yang Xun, et al. Research progresses of comprehensive well logging evaluation methods of tight gas sandstone reservoirs[J]. Acta Petrolei Sinica, 2025, 46(1): 220-235.]