[1] 蔡雄飞,廖群安,王富明,等. 2016. 新疆卡拉麦里碰撞带南缘志留—泥盆纪沉积学研究新进展[J]. 华东地质,37(2):113-119.

Cai Xiongfei, Liao Qun'an, Wang Fuming, et al. 2016. New research progress on Silurian and Devonian sedimentation in the southern margin of the Kalamaili collision belt, Xinjiang[J]. East China Geology, 37(2): 113-119.
[2] 陈嘉诺,孙高远,温永祥,等. 2024. 长江三角洲QDQ2钻孔晚更新世以来沉积物粒度特征及其古环境意义[J]. 华东地质,45(4):466-477.

Chen Jianuo, Sun Gaoyuan, Wen Yongxiang, et al. 2024. Grain sizes characteristics of sediments from QDQ2 borehole in the Yangtze River Delta since the Late Pleistocene and their paleoenvironmental significance[J]. East China Geology, 45(4): 466-477.
[3] 陈文彬,付修根,谭富文,等. 2015. 藏北羌塘盆地上三叠统典型剖面烃源岩地球化学特征研究[J]. 中国地质,42(4):1151-1160.

Chen Wenbin, Fu Xiugen, Tan Fuwen, et al. 2015. Geochemical characteristics of Upper Triassic source rocks from typical sections in Qiangtang Basin, northern Tibet[J]. Geology in China, 42(4): 1151-1160.
[4] 程乐利. 2018. 羌塘盆地上三叠统巴贡组储层特征及形成机理研究[D]. 成都:成都理工大学:1-98.

Cheng Leli. 2018. The study on reservoir characteristics and formation mechanism of the Upper Triassic Bagong Formation in the Qiangtang Basin[D]. Chengdu: Chengdu University of Technology: 1-98.
[5] 程乐利,印森林,万友利,等. 2020. 羌塘盆地北羌塘坳陷上三叠统巴贡组致密储层成岩作用与孔隙演化[J]. 石油实验地质,42(1):60-68.

Cheng Leli, Yin Senlin, Wan Youli, et al. 2020. Dia-genesis and pore evolution of tight sandstone reservoirs in Upper Triassic Bagong Formation, North Qiangtang Depression, Qiangtang Basin[J]. Petroleum Geology & Experiment, 42(1): 60-68.
[6] 付修根,王剑,汪正江,等. 2007. 藏北羌塘盆地上三叠统那底岗日组与下伏地层沉积间断的确立及意义[J]. 地质论评,53(3):329-336.

Fu Xiugen, Wang Jian, Wang Zhengjiang, et al. 2007. Identification of sedimentary gap between the Late Triassic Nadi Kangri Formation and its underlying strata in the Qiangtang Basin northern Xizang (Tibet) and its geological significance[J]. Geological Review, 53(3): 329-336.
[7] 高丽坤,林春明,姚玉来,等. 2010. 苏北盆地高邮凹陷古近系戴南组沉积相及沉积演化[J]. 沉积学报,28(4):706-716.

Gao Likun, Lin Chunming, Yao Yulai, et al. 2010. Sedimentary facies and evolution of Paleogene Dainan Formation in Gaoyou Sag, Subei Basin[J]. Acta Sedimentologica Sinica, 28(4): 706-716.
[8] 国家能源局. 2011. SY/T 6285-2011 油气储层评价方法 [S]. 北京:石油工业出版社:1- 2.

National Energy Administration. 2011. SY/T 6285-2011 Evaluating methods of oil and gas reservoir [S]. Beijing: Petroleum Industry Press: 1- 2.
[9] 国家能源局. 2019. SY/T 5735-2019 烃源岩地球化学评价方法 [S]. 北京:石油工业出版社:1-5. [National Energy Administration. 2019. SY/T 5735-2019 Geochemica method for source rock evaluation[S]. Beijing: Petroleum Industry Press: 1-5.]
[10] 厚刚福,孙靖,王力宝,等. 2019. 不同古地貌单元水下分流河道沉积特征及其意义:以准噶尔盆地夏盐地区三工河组二段为例[J]. 沉积学报,37(4):825-833.

Hou Gangfu, Sun Jing, Wang Libao, et al. 2019. Sedimentary characteristics and significance of under-water distributary channel in different paleogeomorphic units: A case study of the Second member of the Sangonghe Formation in Xiayan district, Junggar Basin[J]. Acta Sedimentologica Sinica, 37(4): 825-833.
[11] 胡俊杰,李琦,张慧,等. 2014. 北羌塘坳陷沃若山剖面上三叠统土门格拉组碎屑岩储集特征与主控因素[J]. 东华理工大学学报(自然科学版),37(4):403-408.

Hu Junjie, Li Qi, Zhang Hui, et al. 2014. Characteristics and controlling factors of Upper Triassic Tumengela Formation clastic rocks reservoir in Woruo Mountains, North Qiangtang Basin[J]. Journal of East China Institute of Technology (Natural Science), 37(4): 403-408.
[12] 李才,翟庆国,董永胜,等. 2007. 青藏高原龙木错—双湖板块缝合带与羌塘古特提斯洋演化记录[J]. 地质通报,26(1):13-21.

Li Cai, Zhai Qingguo, Dong Yongsheng, et al. 2007. Lungmu Co-Shanghu plate suture in the Qinghai-Tibet Plateau and records of the evolution of the Paleo-Tethys Ocean in the Qiangtang area, Tibet, China[J]. Geological Bulletin of China, 26(1): 13-21.
[13] 李天义,何生,杨智. 2008. 海相优质烃源岩形成环境及其控制因素分析[J]. 地质科技情报,27(6):63-70.

Li Tianyi, He Sheng, Yang Zhi. 2008. The marine source rock formation conditions and control factors[J]. Geological Science and Technology Information, 27(6): 63-70.
[14] 林春明,张霞,赵雪培,等. 2021. 沉积岩石学的室内研究方法综述[J]. 古地理学报,23(2):223-244.

Lin Chunming, Zhang Xia, Zhao Xuepei, et al. 2021. Review of laboratory research methods for sedimentary petrology[J]. Journal of Palaeogeography, 23(2): 223-244.
[15] 刘中戎,杨平,张国常,等. 2022. 北羌塘坳陷上三叠统沉积模式及对油气勘探的启示[J]. 沉积与特提斯地质,42(3):465-480.

Liu Zhongrong, Yang Ping, Zhang Guochang, et al. 2022. Sedimentary model and its implications for oil and gas exploration of Upper Triassic in northern Qiangtang Depression[J]. Sedimentary Geo-logy and Tethyan Geology, 42(3): 465-480.
[16] 丘东洲,乃东专,李晓清,等. 2007. 羌塘盆地与特提斯域油气盆地类比及其含油气远景[J]. 沉积与特提斯地质,27(3):1-13.

Qiu Dongzhou, Nai Dongzhuan, Li Xiaoqing, et al. 2007. Analog and hydrocarbon potential of the Qiangtang Basin and other petroleum basins in the Asian Tethys[J]. Sedimentary Geology and Tethyan Geology, 27(3): 1-13.
[17] 沈安江,熊绍云,胡安平,等. 2024. 羌塘盆地中生代岩相古地理研究新进展[J]. 海相油气地质,29(1):30-44.

Shen Anjiang, Xiong Shaoyun, Hu Anping, et al. 2024. New progress in the study of Mesozoic lithofacies and paleogeography in Qiangtang Basin[J]. Marine Origin Petroleum Geology, 29(1): 30-44.
[18] 谭富文,王剑,王小龙,等. 2002. 西藏羌塘盆地:中国油气资源战略选区的首选目标[J]. 沉积与特提斯地质,22(1):16-21.

Tan Fuwen, Wang Jian, Wang Xiaolong, et al. 2002. The Qiangtang Basin in Xizang as the target area for the oil and gas resources in China[J]. Sedimentary Geology and Tethyan Geology, 22(1): 16-21.
[19] 王剑,丁俊,王成善,等. 2009. 青藏高原油气资源战略选区调查与评价[M]. 北京:地质出版社:164- 424.

Wang Jian, Ding Jun, Wang Chengshan, et al. 2009. Investigation and evaluation of the strategic selection of oil and gas resources on the Qinghai—Tibet Plateau[M]. Beijing: Geological Publishing House: 164-424.
[20] 王剑,付修根. 2018. 论羌塘盆地沉积演化[J]. 中国地质,45(2):237-259.

Wang Jian, Fu Xiugen. 2018. Sedimentary evolution of the Qiangtang Basin[J]. Geology in China, 45(2): 237-259.
[21] 王剑,付修根,沈利军,等. 2020. 论羌塘盆地油气勘探前景[J]. 地质论评,66(5):1091-1113.

Wang Jian, Fu Xiugen, Shen Lijun, et al. 2020. Prospect of the potential of oil and gas resources in Qiangtang Basin, Xizang (Tibet)[J]. Geological Review, 66(5): 1091-1113.
[22] 王剑,谭富文,李亚林,等. 2004. 青藏高原重点沉积盆地油气资源潜力分析[M]. 北京:地质出版社:32- 52.

Wang Jian, Tan Fuwen, Li Yalin, et al. 2004. Analysis of hydrocarbon potential in key sedimentary basins of Qinghai—Tibet Plateau[M]. Beijing: Geological Publishing House: 32-52.
[23] 王剑,王忠伟,付修根,等. 2022. 青藏高原羌塘盆地首口油气科探井(QK-1)新发现[J]. 科学通报,67(3):321-328.

Wang Jian, Wang Zhongwei, Fu Xiugen, et al. 2022. New discoveries on the first petroleum scientific drilling (QK-1) of the Qiangtang Basin, Tibetan Plateau[J]. Chinese Science Bulletin, 67(3): 321-328.
[24] 王忠伟. 2019. 北羌塘西南缘上三叠统—中下侏罗统沉积特征及古气候演化研究[D]. 武汉:中国地质大学:1-115.

Wang Zhongwei. 2019. Sedimentary characteristics and paleoclimate evolution of the Upper Triassic to Middle-Lower Jurassic in the southwest of the North Qiangtang Basin, Tibet[D]. Wuhan: China University of Geosciences: 1-115.
[25] 吴珍汉,高锐,卢占武,等. 2014. 羌塘盆地结构构造与油气勘探方向[J]. 地质学报,88(6):1130-1144.

Wu Zhenhan, Gao Rui, Lu Zhanwu, et al. 2014. Structures of the Qiangtang Basin and its significance to oil-gas exploration[J]. Acta Geologica Sinica, 88(6): 1130-1144.
[26] 熊盛青,周道卿,曹宝宝,等. 2020. 羌塘盆地中央隆起带的重磁场证据及其构造意义[J]. 地球物理学报,63(9):3491-3504.

Xiong Shengqing, Zhou Daoqing, Cao Baobao, et al. 2020. Characteristics of the central uplift zone in Qiangtang Basin and its tectonic implications: Evidences from airborne gravity and magnetic data[J]. Chinese Journal of Geophysics, 63(9): 3491-3504.
[27] 占王忠,彭清华,陈文彬. 2019. 羌塘盆地东部冬曲地区上三叠统巴贡组沉积环境分析[J]. 海相油气地质,24(1):27-34.

Zhan Wangzhong, Peng Qinghua, Chen Wenbin. 2019. Analysis of depositional environment of the Upper Triassic Bagong Formation in Dongqu area of the eastern Qiangtang Basin[J]. Marine Origin Petroleum Geology, 24(1): 27-34.
[28] 占王忠,谭富文. 2020. 羌塘盆地晚三叠世岩相古地理特征与烃源岩[J]. 沉积学报,38(4):876-885.

Zhan Wangzhong, Tan Fuwen. 2020. Lithofacies palaeogeography and source rock of the Late Triassic in the Qiangtang Basin[J]. Acta Sedimentologica Sinica, 38(4): 876-885.
[29] 张水昌,张宝民,边立曾,等. 2005. 中国海相烃源岩发育控制因素[J]. 地学前缘,12(3):39-48.

Zhang Shuichang, Zhang Baomin, Bian Lizeng, et al. 2005. Development constraints of marine source rocks in China[J]. Earth Science Frontiers, 12(3): 39-48.
[30] 张妍,石永红,宋传中,等. 2017. 大别山东南缘侏罗系磨山组沉积环境及地质意义[J]. 岩石学报,33(2):639-652.

Zhang Yan, Shi Yonghong, Song Chuanzhong, et al. 2017. Sedimentary environments and its geological significance of Jurassic Moshan Formation in the northeastern margin of Dabie Mountain[J]. Acta Petrologica Sinica, 33(2): 639-652.
[31] 赵鲁阳,吕大炜,刘海燕,等. 2015. 安徽巢北地区五通组沉积环境分析[J]. 沉积学报,33(3):470-479.

Zhao Luyang, Dawei Lü, Liu Haiyan, et al. 2015. The analysis on the depositional environment of Wutong Formation in northern Chaohu area, Anhui[J]. Acta Sedimentologica Sinica, 33(3): 470-479.
[32] 周道卿,曹宝宝,赵睿,等. 2021. 羌塘盆地高精度航空重磁调查对盆地基底性质与构造格局的启示[J]. 地质学报,95(11):3178-3191.

Zhou Daoqing, Cao Baobao, Zhao Rui, et al. 2021. High-precision airborne gravity and magnetic survey analysis of the Qiangtang Basin: Implications for basin basement properties and tectonic framework[J]. Acta Geologica Sinica, 95(11): 3178-3191.
[33] 朱同兴,董瀚,李才,等. 2005. 青藏高原北羌塘地区晚三叠世地层展布和沉积型式[J]. 沉积与特提斯地质,25(3):18-23.

Zhu Tongxing, Dong Han, Li Cai, et al. 2005. Distribution and sedimentary model of the Late Triassic strata in northern Qiangtang on the Qinghai-Xizang Plateau[J]. Sedimentary Geology and Tethyan Geology, 25(3): 18-23.
[34] 朱同兴,李宗亮. 2010. 中华人民共和国区域地质调查报告:比例尺 1:250000:江爱达日那幅[M]. 武汉:中国地质大学出版社:12-54.

Zhu Tongxing, Li Zongliang. 2010. Regional geological survey report of the People's Republic of China (1: 250, 000 scale Jiangai Darina area)[M]. Wuhan: China University of Geosciences Press: 12-54.
[35] 朱筱敏. 2020. 沉积岩石学[M]. 5版. 北京:石油工业出版社:1-479.

Zhu Xiaomin. 2020. Sedimentary petrology[M]. 5th ed. Beijing: Petroleum Industry Press: 1-479.
[36] 邹妞妞,史基安,张大权,等. 2015. 准噶尔盆地西北缘玛北地区百口泉组扇三角洲沉积模式[J]. 沉积学报,33(3):607-615.

Zou Niuniu, Shi Ji'an, Zhang Daquan, et al. 2015. Fan delta depositional model of Triassic Baikouquan Formation in Mabei area, NW Junggar Basin[J]. Acta Sedimentologica Sinica, 33(3): 607-615.
[37] Folk R L, Ward W C. 1957. Brazos River bar: A study in the significance of grain size parameters[J]. Journal of Sedimentary Research, 27(1): 3-26.
[38] Friedman G M. 1961. Distinction between dune, beach, and river sands from their textural characteristics[J]. Journal of Sedimentary Petrology, 31(4): 514-529.
[39] Fu X G, Wang J, Tan F W, et al. 2010. The Late Triassic rift-related volcanic rocks from eastern Qiangtang, northern Tibet (China): Age and tectonic implications[J]. Gondwana Research, 17(1): 135-144.
[40] Hakro A A A D, Xiao W J, Mastoi A S, et al. 2021. Grain size analysis of the Oligocene Nari Formation sandstone in the Laki Range, southern Indus Basin, Pakistan: Implications for depositional setting[J]. Geological Journal, 56(11): 5440-5451.
[41] Ma A L, Hu X M, Garzanti E, et al. 2017. Sedimentary and tectonic evolution of the southern Qiangtang Basin: Implications for the Lhasa-Qiangtang collision timing[J]. Journal of Geophysical Research: Solid Earth, 122(7): 4790-4813.
[42] Ma A L, Hu X M, Garzanti E, et al. 2023. Paleogeographic and tectonic evolution of Mesozoic Qiangtang basins (Tibet)[J]. Tectonophysics, 862: 229957.
[43] Passega R. 1964. Grain size representation by CM patterns as a geologic tool[J]. Journal of Sedimentary Petrology, 34(4): 830-847.
[44] Sahu B K. 1964. Depositional mechanisms from the size analysis of clastic sediments[J]. Journal of Sedimentary Petrology, 34(1): 73-83.
[45] Song P P, Ding L, Li Z Y, et al. 2017. An early bird from Gondwana: Paleomagnetism of Lower Permian lavas from northern Qiangtang (Tibet) and the geography of the Paleo-Tethys[J]. Earth and Planetary Science Letters, 475: 119-133.
[46] Wang J, Fu X G, Chen W X, et al. 2008. Chronology and geochemistry of the volcanic rocks in Woruo Mountain region, northern Qiangtang Depression: Implications to the Late Triassic volcanic-sedimentary events[J]. Science China Earth Sciences, 51(2): 194-205.
[47] Wang Z W, Shen L J, Wang J, et al. 2022. Organic matter enrichment of the Late Triassic Bagong Formation (Qiangtang Basin, Tibet) driven by paleoenvironment: Insights from elemental geochemistry and mineralogy[J]. Journal of Asian Earth Sciences, 236: 105329.
[48] Wang Z W, Wang J, Fu X G, et al. 2017. Organic material accumulation of Carnian mudstones in the North Qiangtang Depression, eastern Tethys: Controlled by the paleoclimate, paleoenvironment, and provenance[J]. Marine and Petroleum Geology, 88: 440-457.
[49] Wang Z W, Wang J, Fu X G, et al. 2019. Sedimentary successions and onset of the Mesozoic Qiangtang rift basin (northern Tibet), Southwest China: Insights on the Paleo- and Meso-Tethys evolution[J]. Marine and Petroleum Geology, 102: 657-679.
[50] Wang Z W, Zhan W Z, Wang J, et al. 2023. Geochemistry and zircon geochronology of the Late Triassic volcanic-sedimentary successions in northern Tibet: Implications for the provenance and tectonic evolution of the Mesozoic Qiangtang Basin[J]. Gondwana Research, 117: 321-343.