[1] Weimer P, Slatt R M. Introduction to the petroleum geology of deepwater setting[M]. AAPG Studies in Geology 57, 2007: 171-276.
[2] 孙国桐. 深水重力流沉积研究进展[J]. 地质科技情报,2015,34(3):30-36.

Sun Guotong. A review of deep-water gravity-flow deposition research[J]. Geological Science and Technology Information, 2015, 34(3): 30-36.
[3] 李建平,廖计华,方勇. 基于露头和岩心的深水重力流沉积新认识及其油气地质意义[J]. 油气地质与采收率,2020,27(6):30-37.

Li Jianping, Liao Jihua, Fang Yong. New understanding of deep-water gravity flow deposition and its significance in petroleum geology based on outcrops and cores[J]. Petroleum Geology and Recovery Efficiency, 2020, 27(6): 30-37.
[4] Janocko M, Nemec W, Henriksen S, et al. The diversity of deep-water sinuous channel belts and slope valley-fill complexesp[J]. Marine and Petroleum Geology, 2013, 41: 7-34.
[5] Deptuck M E, Sylvester Z. Submarine fans and their channels, levees, and lobes[M]//Micallef A, Krastel S, Savini A. Submarine geomorphology. Cham: Springer, 2018: 273-299.
[6] 李华,何幼斌. 深水重力流水道沉积研究进展[J]. 古地理学报,2020,22(1):161-174.

Li Hua, He Youbin. Research progress on deepwater gravity flow channel deposit[J]. Journal of Palaeogeography, 2020, 22(1): 161-174.
[7] 傅焓埔,刘群,胡修棉. 水下沉积物重力流与海底扇相模式研究进展[J]. 地球科学进展,2020,35(2):124-136.

Fu Hanpu, Liu Qun, Hu Xiumian. Review on subaqueous sediment gravity flow and submarine fan[J]. Advances in Earth Science, 2020, 35(2): 124-136.
[8] Normark W R. Growth patterns of deep-sea fans[J]. AAPG Bulletin, 1970, 54(11): 2170-2195.
[9] Galloway W E, Hobday D K. Terrigenous clastic depositional systems: Applications to fossil fuel and groundwater resources[M]. 2nd ed. Berlin, Heidelberg: Springer, 1996: 489.
[10] Posamentier H W, Kolla V. Seismic geomorphology and stratigraphy of depositional elements in deep-water settings[J]. Journal of Sedimentary Research, 2003, 73(3): 367-388.
[11] Posamentier H W, Kolla V,刘化清. 深水浊流沉积综述[J]. 沉积学报,2019,37(5):879-903.

Posamentier H W, Kolla V, Liu Huaqing. An overview of deep-water turbidite deposition[J]. Acta Sedimentologica Sinca, 2019, 37(5): 879-903.
[12] Oluboyo A P, Gawthorpe R L, Bakke K, et al. Salt tectonic controls on deep-water turbidite depositional systems: Miocene, southwestern Lower Congo Basin, offshore Angola[J]. Basin Research, 2014, 26(4): 597-620.
[13] Tillmans F, Gawthorpe R L, Jackson C A L, et al. Syn-rift sediment gravity flow deposition on a Late Jurassic fault-terraced slope, northern North Sea[J]. Basin Research, 2021, 33(3): 1844-1879.
[14] Howlett D M, Gawthorpe R L, Ge Z Y, et al. Turbidites, topography and tectonics: Evolution of submarine channel-lobe systems in the salt-influenced Kwanza Basin, offshore Angola[J]. Basin Research, 2021, 33(2): 1076-1110.
[15] Lowe D R, Graham S A, Malkowski M A, et al. The role of avulsion and splay development in deep-water channel systems: Sedimentology, architecture, and evolution of the deep-water Pliocene Godavari “A” channel complex, India[J]. Marine and Petroleum Geology, 2019, 105: 81-99.
[16] 周立宏,孙志华,汤戈,等. 孟加拉湾若开盆地D区块上新统异重流特征与沉积模式[J]. 石油勘探与开发,2020,42(7):297-308.

Zhou Lihong, Sun Zhihua, Tang Ge, et al. Pliocene hyperpycnal flow and its sedimentary pattern in D block of Rakhine Basin in bay of Bengal[J]. Petroleum Exploration and Development, 2020, 42(7): 297-308.
[17] Pickering K T, Carter A, Andò S, et al. Deciphering relationships between the Nicobar and Bengal submarine fans, Indian Ocean[J]. Earth and Planetary Science Letters, 2020, 544: 116329.
[18] 周立宏,孙志华,王振升,等. 印缅俯冲增生楔气烟囱分带性及油气成藏规律[J]. 地学前缘,2017,24(4):352-369.

Zhou Lihong, Sun Zhihua, Wang Zhensheng, et al. Zonation and hydrocarbon accumulation rules of gas chimney in the Indo-Burmese Wedge[J]. Earth Science Frontiers, 2017, 24(4): 352-369.
[19] Curray J R, Emmel F J, Moore D G. The Bengal Fan: Morphology, geometry, stratigraphy, history and processes[J]. Marine and Petroleum Geology, 2002, 19(10): 1191-1223.
[20] Yang S Y, Kim J W. Pliocene basin-floor fan sedimentation in the bay of Bengal (offshore northwest Myanmar)[J]. Marine and Petroleum Geology, 2014, 49: 45-58.
[21] 马贵明,马宏霞,邵大力,等. 孟加拉湾若开盆地深水沉积体系结构单元类型及演化模式[J]. 海相油气地质,2016,21(1):41-51.

Ma Guiming, Ma Hongxia, Shao Dali, et al. Structural units and evolution model of deepwater depositional system in Rakhine Basin, bay of Bengal[J]. Marine Origin Petroleum Geology, 2016, 21(1): 41-51.
[22] Ma H X, Fan G Z, Shao D L, et al. Deep-water depositional architecture and sedimentary evolution in the Rakhine Basin, northeast Bay of Bengal[J]. Petroleum Science, 2020, 17(3): 598-614.
[23] Mayall M, Jones E, Casey M. Turbidite channel reservoirs-Key elements in facies prediction and effective development[J]. Marine and Petroleum Geology, 2006, 23(8): 821-841.
[24] McHargue T, Pyrcz M J, Sullivan M D, et al. Architecture of turbidite channel systems on the continental slope: Patterns and predictions[J]. Marine and Petroleum Geology, 2011, 28(3): 728-743.
[25] Li P, Kneller B C, Hansen L, et al. The classical turbidite outcrop at San Clemente, California revisited: An example of sandy submarine channels with asymmetric facies architecture[J]. Sedimentary Geology, 2016, 346: 1-16.
[26] Maier K L, Fildani A, Paull C K, et al. Deep-sea channel evolution and stratigraphic architecture from inception to abandonment from high-resolution Autonomous Underwater Vehicle surveys offshore central California[J]. Sedimentology, 2013, 60(4): 935-960.
[27] Peakall J, Amos K J, Keevil G M, et al. Flow processes and sedimentation in submarine channel bends[J]. Marine and Petroleum Geology, 2007, 24(6/7/8/9): 470-486.
[28] Wynn R B, Cronin B T, Peakall J. Sinuous deep-water channels: Genesis, geometry and architecture[J]. Marine and Petroleum Geology, 2007, 24(6/7/8/9): 341-387.
[29] Janocko M, Cartigny M J B, Nemec W, et al. Turbidity current hydraulics and sediment deposition in erodible sinuous channels: Laboratory experiments and numerical simulations[J]. Marine and Petroleum Geology, 2013, 41: 222-249.
[30] Prélat A, Hodgson D M, Flint S S. Evolution, architecture and hierarchy of distributary deep-water deposits: A high-resolution outcrop investigation from the Permian Karoo Basin, South Africa[J]. Sedimentology, 2009, 56(7): 2132-2154.
[31] Doughty-Jones G, Mayall M, Lonergan L. Stratigraphy, facies, and evolution of deep-water lobe complexes within a salt-controlled intraslope minibasin[J]. AAPG Bulletin, 2017, 101(11): 1879-1904.
[32] Peakall J, Sumner E J. Submarine channel flow processes and deposits: A process-product perspective[J]. Geomorphology, 2015, 244: 95-120.
[33] Abreu V, Sullivan M, Pirmez C, et al. Lateral accretion packages (LAPs): An important reservoir element in deep water sinuous channels[J]. Marine and Petroleum Geology, 2003, 20(6/7/8): 631-648.
[34] 卓海腾,王英民,徐强,等. 南海北部莺歌海盆地东方区上新统侧积复合体沉积特征及成因[J]. 古地理学报,2013,15(6):787-794.

Zhuo Haiteng, Wang Yingmin, Xu Qiang, et al. Sedimentary characteristics and genesis of lateral accretion packages in the Pliocene of Dongfang area of Yinggehai Basin in northern South China Sea[J]. Journal of Palaeogeography, 2013, 15(6): 787-794.
[35] Kolla V, Posamentier H W, Wood L J. Deep-water and fluvial sinuous channels: Characteristics, similarities and dissimilarities, and modes of formation[J]. Marine and Petroleum Geology, 2007, 24(6/7/8/9): 388-405.