[1] 朱红涛,徐长贵,朱筱敏,等. 陆相盆地源—汇系统要素耦合研究进展[J]. 地球科学,2017,42(11):1851-1870.

Zhu Hongtao, Xu Changgui, Zhu Xiaomin, et al. Advances of the source-to-sink units and coupling model research in continental basin[J]. Earth Science, 2017, 42(11): 1851-1870.
[2] Allen P. Striking a chord[J]. Nature, 2005, 434(7036): 961.
[3] Allen P A. From landscapes into geological history[J]. Nature, 2008, 451(7176): 274-276.
[4] Allen P A. Time scales of tectonic landscapes and their sediment routing systems[J]. Geological Society, London, Special Publications, 2008, 296(1): 7-28.
[5] 李忠,高剑. 构造活动区特征源汇体系及古地理重建:以塔里木块体北缘记录“泛非”事件的碎屑锆石分析为例[J]. 古地理学报,2016,18(3):424-440.

Li Zhong, Gao Jian. Characteristic source-sink systems and palaeogeographic reconstruction in active tectonic regions: A case research on detrital zircons recording the Pan-African event in northern Tarim block[J]. Journal of Palaeogeography, 2016, 18(3): 424-440.
[6] 李忠,高剑,郭春涛,等. 塔里木块体北部泥盆—石炭纪陆缘构造演化:盆地充填序列与物源体系约束[J]. 地学前缘,2015,22(1):35-52.

Li Zhong, Gao Jian, Guo Chuntao, et al. Devonian-Carboniferous tectonic evolution of continental margins in northern Tarim Block, Northwest China: Constrained by basin-fill sequences and provenance systems[J]. Earth Science Frontiers, 2015, 22(1): 35-52.
[7] 徐长贵,杜晓峰. 陆相断陷盆地源—汇理论工业化应用初探:以渤海海域为例[J]. 中国海上油气,2017,29(4):9-18.

Xu Changgui, Du Xiaofeng. Industrial application of source-to-sink theory in continental rift basin: A case study of Bohai sea area[J]. China Offshore Oil and Gas, 2017, 29(4): 9-18.
[8] 徐长贵,杜晓峰,徐伟,等. 沉积盆地“源—汇”系统研究新进展[J]. 石油与天然气地质,2017,38(1):1-11.

Xu Changgui, Du Xiaofeng, Xu Wei, et al. New advances of the “source-to-sink” system research in sedimentary basin[J]. Oil & Gas Geology, 2017, 38(1): 1-11.
[9] 徐长贵,加东辉,宛良伟. 渤海走滑断裂对古近系源—汇体系的控制作用[J]. 地球科学,2017,42(11):1871-1882.

Xu Changgui, Jia Donghui, Wan Liangwei. Control of the strike-slip fault to the source-to-sink system of the Paleogene in Bohai sea area[J]. Earth Science, 2017, 42(11): 1871-1882.
[10] 李铁刚,曹奇原,李安春,等. 从源到汇:大陆边缘的沉积作用[J]. 地球科学进展,2003,18(5):713-721.

Li Tiegang, Cao Qiyuan, Li Anchun, et al. Source to sink: Sedimentation in the continental margins[J]. Advance in Earth Sciences, 2003, 18(5): 713-721.
[11] 庞雄,陈长民,彭大钧,等. 南海珠江深水扇系统的层序地层学研究[J]. 地学前缘,2007,14(1):220-229.

Pang Xiong, Chen Changmin, Peng Dajun, et al. Sequence stratigraphy of Pearl River deep-water fan system in the South China Sea[J]. Earth Science Frontiers, 2007, 14(1): 220-229.
[12] 庞雄,陈长民,彭大钧,等. 南海珠江深水扇系统及油气[M]. 北京:科学出版社,2007:26-55.

Pang Xiong, Chen Changmin, Peng Dajun, et al. The Pearl River deep-water fan system & petroleum in South China Sea[M]. Beijing: Science Press, 2007: 26-55.
[13] 庞雄,申俊,袁立忠,等. 南海珠江深水扇系统及其油气勘探前景[J]. 石油学报,2006,27(3):11-15,21.

Pang Xiong, Shen Jun, Yuan Lizhong, et al. Petroleum prospect in deep-water fan system of the Pearl River in the South China Sea[J]. Acta Petrolei Sinica, 2006, 27(3): 11-15, 21.
[14] 谢玉洪,李绪深,范彩伟,等. 琼东南盆地上中新统黄流组轴向水道源汇体系与天然气成藏特征[J]. 石油勘探与开发,2016,43(4):521-528,549.

Xie Yuhong, Li Xushen, Fan Caiwei, et al. The axial channel provenance system and natural gas accumulation of the Upper Miocene Huangliu Formation in Qiongdongnan Basin, South China Sea[J]. Petroleum Exploration and Development, 2016, 43(4): 521-528, 549.
[15] 王绪诚,杜家元,张琴,等. 惠西南地区古近系转换带型源—汇系统研究及其勘探意义[J]. 中国海上油气,2020,32(5):44-53.

Wang Xucheng, Du Jiayuan, Zhang Qin, et al. Study of source-sink system of transfer zone type of Palaeogene in southwestern area of the Huizhou Sag and its exploration significance[J]. China Offshore Oil and Gas, 2020, 32(5): 44-53.
[16] 杜家元,张向涛,刘培,等. 珠江口盆地珠一坳陷古近系“源—汇”系统分类及石油地质意义[J]. 地球科学,2021,46(10):3690-3706.

Du Jiayuan, Zhang Xiangtao, Liu Pei, et al. Classification of Paleogene source-to-sink system and its petroleum geological significance in Zhuyi Depression of Pearl River Mouth Basin[J]. Earth Science, 2021, 46(10): 3690-3706.
[17] 朱明,代一丁,朱俊章,等. 珠江口盆地惠州凹陷古近系油藏地质特征及成藏机理[J]. 中国海上油气,2017,29(1):1-11.

Zhu Ming, Dai Yiding, Zhu Junzhang, et al. Geological characteristics and accumulation mechanism of Paleocene reservoir in Huizhou Sag, Pearl River Mouth Basin[J]. China Offshore Oil and Gas, 2017, 29(1): 1-11.
[18] 施和生,舒誉,杜家元,等. 珠江口盆地古近系石油地质[M]. 北京:地质出版社,2017.

Shi Hesheng, Shu Yu, Du Jiayuan, et al. Petroleum geology of Paleogene in Pearl River Mouth Basin[M]. Beijing: Geological Publishing House, 2017.
[19] 陈长民,施和生,许仕策,等. 珠江口盆地(东部)第三系油气藏形成条件[M]. 北京:科学出版社,2003.

Chen Changmin, Shi Hesheng, Xu Shice, et al. Tertiary hydrocarbon accumulation condition in Pearl River Mouth Basin[M]. Beijing: Science Press, 2003.
[20] 葛家旺,朱筱敏,陶文芳,等. 惠州凹陷HZ25转换带构造特征与成藏条件[J]. 西南石油大学学报(自然科学版),2017,39(5):19-30.

Ge Jiawang, Zhu Xiaomin, Tao Wenfang, et al. The tectonic characteristics and analysis of hydrocarbon accumulation conditions in HZ25 transfer zone in Huizhou Sag, Pearl River Mouth Basin[J]. Journal of Southwest Petroleum University (Science & Technology Edition), 2017, 39(5): 19-30.
[21] 田立新,施和生,刘杰,等. 珠江口盆地惠州凹陷新领域勘探重大发现及意义[J]. 中国石油勘探,2020,25(4):22-30.

Tian Lixin, Shi Hesheng, Liu Jie, et al. Great discovery and significance of new frontier exploration in Huizhou Sag, Pearl River Mouth Basin[J]. China Petroleum Exploration, 2020, 25(4): 22-30.
[22] 施和生,杜家元,梅廉夫,等. 珠江口盆地惠州运动及其意义[J]. 石油勘探与开发,2020,47(2):447-461.

Shi Hesheng, Du Jiayuan, Mei Lianfu, et al. Huizhou movement and its significance in Pearl River Mouth Basin, China[J]. Petroleum Exploration and Development, 2020, 47(2): 447-461.
[23] 朱红涛,李森,刘浩冉,等. 陆相断陷湖盆迁移型层序构型及意义:以珠I坳陷古近系文昌组为例[J]. 地球科学,2016,41(3):361-372.

Zhu Hongtao, Li Sen, Liu Haoran, et al. The types and implication of migrated sequence stratigraphic architecture in continental lacustrine rift basin: An example from the Paleogene Wenchang Formation of Zhu I Depression, Pearl River Mouth Basin[J]. Earth Science, 2016, 41(3): 361-372.
[24] Vail P R, Mitchum Jr R M, Thompson III S. Seismic stratigraphy and global changes of sea level, Part 3: Relative changes of sea level from coastal onlap[C]//Payton C E. Seismic stratigraphy: Applications to hydrocarbon exploration. Tulso: American Association of Petroleum Geologists, 1977: 63-81.
[25] 厚刚福,瞿建华,朱峰,等. 古地貌对沉积体系和沉积微相的控制作用分析:以准噶尔盆地腹部白垩系清水河组为例[J]. 中国矿业大学学报,2018,47(5):1038-1045.

Hou Gangfu, Qu Jianhua, Zhu Feng, et al. Controlling effect of paleogeomorphology on sedimentary system and sedimentary microfacies: A case study of Cretaceous Qingshuihe Formation in the hinterland of Junggar Basin[J]. Journal of China University of Mining & Technology, 2018, 47(5): 1038-1045.
[26] Persano C, Bishop P, Stuart F M. Apatite (U-Th)/He age constraints on the Mesozoic and Cenozoic evolution of the Bathurst region, New South Wales: Evidence for antiquity of the continental drainage divide along a passive margin[J]. Australian Journal of Earth Sciences, 2006, 53(6): 1041-1050.
[27] 解习农,任建业,雷超. 盆地动力学研究综述及展望[J]. 地质科技情报,2012,31(5):76-84.

Xie Xinong, Ren Jianye, Lei Chao. Reviews and prospects of depositional basin dynamics[J]. Geological Science and Technology Information, 2012, 31(5): 76-84.
[28] 刘强虎,朱红涛,舒誉,等. 珠江口盆地恩平凹陷古近系恩平组物源体系及其对滩坝的控制[J]. 石油学报,2015,36(3):286-299.

Liu Qianghu, Zhu Hongtao, Shu Yu, et al. Provenance systems and their control on the beach-bar of Paleogene Enping Formation, Enping Sag, Pearl River Mouth Basin[J]. Acta Petrolei Sinica, 2015, 36(3): 286-299.