[1] Mohrig D, Heller P L, Paola C, et al. Interpreting avulsion process from ancient alluvial sequences: Guadalope-Matarranya system (northern Spain) and Wasatch Formation (western Colorado)[J]. Geological Society of America Bulletin, 2000, 112(12): 1787-1803.
[2] Allen J R L. Studies in fluviatile sedimentation: An exploratory quantitative model for the architecture of avulsion-controlled alluvial suites[J]. Sedimentary Geology, 1978, 21(2): 129-147.
[3] Bridge J S, Leeder M R. A simulation model of alluvial stratigraphy[J]. Sedimentology, 1979, 26(5): 617-644.
[4] Leeder M R. A quantitative stratigraphic model for alluvium, with special reference to channel deposit density and interconnectedness[M]//Miall A D. Fluvial sedimentology. Canadian Society of Petroleum Geologists Memoir 5, 1978: 587-596.
[5] Heller P L, Paola C. Downstream changes in alluvial architecture: An exploration of controls on channel-stacking patterns[J]. Journal of Sedimentary Research, 1996, 66(2): 297-306.
[6] Bryant M, Falk P, Paola C. Experimental study of avulsion frequency and rate of deposition[J]. Geology, 1995, 23(4): 365-368.
[7] Edmonds D A, Hoyal D C J D, Sheets B A, et al. Predicting delta avulsions: Implications for coastal wetland restoration[J]. Geology, 2009, 37(8): 759-762.
[8] Hoyal D C J D, Sheets B A. Morphodynamic evolution of experimental cohesive deltas[J]. Journal of Geophysical Research: Earth Surface, 2009, 114(F2): F02009.
[9] 于兴河. 碎屑岩系油气储层沉积学[M]. 2版. 北京:石油工业出版社,2008:284-288.

Yu Xinghe. Clastic hydrocarbon reservoir sedimentology [M]. 2nd ed. Beijing: Petroleum Industry Press, 2008: 284-288.
[10] 李胜利,于兴河,姜涛,等. 河流辫—曲转换特点与废弃河道模式[J]. 沉积学报,2017,35(1):1-9.

Li Shengli, Yu Xinghe, Jiang Tao, et al. Meander-braided transition features and abandoned channel patterns in fluvial environment[J]. Acta Sedimentologica Sinica, 2017, 35(1): 1-9.
[11] 马世忠,王再山,王渝明. 决口水道沉积模式及其砂体内剩余油形成与富集[J]. 大庆石油地质与开发,2000,19(6):9-11,14.

Ma Shizhong, Wang Zaishan, Wang Yuming. Residual oil formation and enrichment within crevasse channel sedimentary pattern and its sandbody[J]. Petroleum Geology & Oilfield Development in Daqing, 2000, 19(6): 9-11, 14.
[12] 吴胜和,徐振华,刘钊. 河控浅水三角洲沉积构型[J]. 古地理学报,2019,21(2):202-215.

Wu Shenghe, Xu Zhenhua, Liu Zhao. Depositional architecture of fluvial-dominated shoal water delta[J]. Journal of Palaeogeography, 2019, 21(2): 202-215.
[13] 张昌民,尹太举,朱永进,等. 浅水三角洲沉积模式[J]. 沉积学报,2010,28(5):933-944.

Zhang Changmin, Yin Taiju, Zhu Yongjin, et al. Shallow-water deltas and models[J]. Acta Sedimentologica Sinica, 2010, 28(5): 933-944.
[14] Miall A. Fluvial depositional systems[M]. Cham: Springer, 2014: 70-72.
[15] Allen J R L. A review of the origin and characteristics of recent alluvial sediments[J]. Sedimentology, 1965, 5(2): 89-191.
[16] Makaske B. Anastomosing rivers: A review of their classification, origin and sedimentary products[J]. Earth-Science Reviews, 2001, 53(3/4): 149-196.
[17] Slingerland R, Smith N D. River avulsions and their deposits[J]. Annual Review of Earth and Planetary Sciences, 2004, 32: 257-285.
[18] Kleinhans M G, Ferguson R I, Lane S N, et al. Splitting rivers at their seams: Bifurcations and avulsion[J]. Earth Surface Processes and Landforms, 2013, 38(1): 47-61.
[19] 陈清华,曾明,章凤奇,等. 河流相储层单一河道的识别及其对油田开发的意义[J]. 油气地质与采收率,2004,11(3):13-15.

Chen Qinghua, Zeng Ming, Zhang Fengqi, et al. Identification of single channel in fluvial reservoir and its significance to the oilfield development[J]. Petroleum Geology and Recovery Efficiency, 2004, 11(3): 13-15.
[20] 吕晓光,赵翰卿,付志国,等. 河流相储层平面连续性精细描述[J]. 石油学报,1997,18(2):66-71.

Xiaoguang Lü, Zhao Hanqing, Fu Zhiguo, et al. A detailed description of area continuity of fluvial reservoir[J]. Acta Petrolei Sinica, 1997, 18(2): 66-71.
[21] 刘波,赵翰卿,王良书,等. 古河流废弃河道微相的精细描述[J]. 沉积学报,2001,19(3):394-398.

Liu Bo, Zhao Hanqing, Wang Liangshu, et al. The detailed description of ancient fluvial abandoned channel micro-facies[J]. Acta Sedimentologica Sinica, 2001, 19(3): 394-398.
[22] 徐丛亮,陈沈良,陈俊卿. 新情势下黄河口出汊流路三角洲体系的演化模式[J]. 海岸工程,2018,37(4):35-43.

Xu Congliang, Chen Shenliang, Chen Junqing. Evolution mode of channel bifurcation delta system at the Yellow River estuary under the new situation[J]. Coastal Engineering, 2018, 37(4): 35-43.
[23] 郑珊,吴保生,周云金,等. 黄河口清水沟河道的冲淤过程与模拟[J]. 水科学进展,2018,29(3):322-330.

Zheng Shan, Wu Baosheng, Zhou Yunjin, et al. Erosion and aggradation processes and calculation method for the Qingshuigou channel on the Yellow River Delta[J]. Advances in Water Science, 2018, 29(3): 322-330.
[24] Mackey S D, Bridge J S. Three-dimensional model of alluvial stratigraphy: Theory and applications[J]. Journal of Sedimentary Research, 1995, 65(1b): 7-31.
[25] Field J. Channel avulsion on alluvial fans in southern Arizona[J]. Geomorphology, 2001, 37(1/2): 93-104.
[26] Yang H Y, Lin B L, Zhou J J. Avulsions in a simulated large lowland braided river[J]. Water Resources Management, 2018, 32(7): 2301-2314.
[27] Smith N D, Cross T A, Dufficy J P, et al. Anatomy of an avulsion[J]. Sedimentology, 1989, 36(1): 1-23.
[28] Smith N D, Perez-Arlucea M. Fine-grained splay deposition in the avulsion belt of the lower Saskatchewan River, Canada[J]. Journal of Sedimentary Research, 1994, 64(2b): 159-168.
[29] Kraus M J, Wells T M. Recognizing avulsion deposits in the ancient stratigraphical record[M]//Smith N D, Rogers J. Fluvial sedimentology VI. Algiers: The International Association of Sedimentologists, 1999: 251-268.
[30] Nienhuis J H, Törnqvist T E, Esposito C R. Crevasse splays versus avulsions: A recipe for land building with levee breaches[J]. Geophysical Research Letters, 2018, 45(9): 4058-4067.
[31] Makaske B, Maathuis B H P, Padovani C R, et al. Upstream and downstream controls of recent avulsions on the Taquari megafan, Pantanal, south-western Brazil[J]. Earth Surface Processes and Landforms, 2012, 37(12): 1313-1326.
[32] 陈志清. 历史时期黄河下游的淤积、决口改道及其与人类活动的关系[J]. 地理科学进展,2001,20(1):44-50.

Chen Zhiqing. The deposition, breach, and diversion in the lower Yellow River and their relationships with human activities during the historical period[J]. Progress in Geography, 2001, 20(1): 44-50.
[33] 钱宁. 1855年铜瓦厢决口以后黄河下游历史演变过程中的若干问题[J]. 人民黄河,1986(5):66-72.

Qian Ning. Problems concerning evolution of the lower Yellow River subsequent to dykebreach in 1855 at Tongwaxiang[J]. Yellow River, 1986(5): 66-72.
[34] McCarthy T S, Ellery W N, Stanistreet I G. Avulsion mechanisms on the Okavango fan, Botswana: The control of a fluvial system by vegetation[J]. Sedimentology, 1992, 39(5): 779-795.
[35] Slingerland R, Smith N D. Necessary conditions for a meandering-river avulsion[J]. Geology, 1998, 26(5): 435-438.
[36] Jones L S, Schumm S A. Causes of avulsion: An overview[M]//Smith N D, Rogers J. Fluvial sedimentology VI. Algiers: The International Association of Sedimentologists, 1999: 171-178.
[37] Catuneanu O. 层序地层学原理[M]. 吴因业,译. 北京:石油工业出版社,2009:77-85.

Catuneanu O. Principles of sequence stratigraphy[M]. Wu Yinye, trans. Beijing: Petroleum Industry Press, 2009: 77-85.
[38] Stouthamer E, Berendsen H J A. Avulsion: The relative roles of autogenic and allogenic processes[J]. Sedimentary Geology, 2007, 198(3/4): 309-325.
[39] Stouthamer E, Cohen K M, Gouw M J P. Avulsion and its implications for fluvial-deltaic architecture: Insights from the Holocene Rhine-Meuse delta[M]//Davidson S K, Leleu S, North C P. From river to rock record: The preservation of fluvial sediments and their subsequent interpretation. SEPM Society for Sedimentary Geology, 2011: 215-232.
[40] Rajchl M, Uličný D. Depositional record of an avulsive fluvial system controlled by peat compaction (Neogene, Most Basin, Czech Republic) [J]. Sedimentology, 2005, 52(3): 601-625.
[41] Aslan A, Autin W J, Blum M D. Causes of river avulsion: Insights from the Late Holocene avulsion history of the Mississippi River, U.S.A.[J]. Journal of Sedimentary Research, 2005, 75(4): 650-664.
[42] Morozova G S, Smith N D. Holocene avulsion styles and sedimentation patterns of the Saskatchewan River, Cumberland Marshes, Canada[J]. Sedimentary Geology, 2000, 130(1/2): 81-105.
[43] Stouthamer E. Sedimentary products of avulsions in the Holocene Rhine-Meuse delta, the Netherlands[J]. Sedimentary Geology, 2001, 145(1/2): 73-92.
[44] Jones H L, Hajek E A. Characterizing avulsion stratigraphy in ancient alluvial deposits[J]. Sedimentary Geology, 2007, 202(1/2): 124-137.
[45] 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.
[46] Bridge J S. Large-scale facies sequences in alluvial overbank environments[J]. Journal of Sedimentary Research, 1984, 54(2): 583-588.
[47] Flood Y S, Hampson G J. Facies and architectural analysis to interpret avulsion style and variability: Upper Cretaceous Blackhawk Formation, Wasatch Plateau, central Utah, U.S.A.[J]. Journal of Sedimentary Research, 2014, 84(9): 743-762.
[48] Gibling M R, Bashforth A R, Falcon-Lang H J, et al. Log jams and flood sediment buildup caused channel abandonment and avulsion in the Pennsylvanian of Atlantic Canada[J]. Journal of Sedimentary Research, 2010, 80(3): 268-287.
[49] Donselaar M E, Gozalo M C C, Moyano S. Avulsion processes at the terminus of low-gradient semi-arid fluvial systems: Lessons from the Río Colorado, Altiplano endorheic basin, Bolivia[J]. Sedimentary Geology, 2013, 283: 1-14.
[50] 李嘉光. 干旱湖盆曲流河末端细粒沉积体系及沉积模式[J]. 地球科学,2018,43(增刊1):264-276.

Li Jiaguang. Sedimentary model of fine-grained dryland meandering river terminus systems in a semi-arid or arid endorheic basin[J]. Earth Science, 2018, 43(Suppl.1): 264-276.
[51] van Toorenenburg K A, Donselaar M E, Weltje G J. The life cycle of crevasse splays as a key mechanism in the aggradation of alluvial ridges and river avulsion[J]. Earth Surface Processes and Landforms, 2018, 43(11): 2409-2420.
[52] van Toorenenburg K A, Donselaar M E, Noordijk N A, et al. On the origin of crevasse-splay amalgamation in the Huesca fluvial fan (Ebro Basin, Spain): Implications for connectivity in low net-to-gross fluvial deposits[J]. Sedimentary Geology, 2016, 343: 156-164.
[53] 冯潇飞,赵晓明,谭程鹏,等. 深海弯曲水道内部一种特殊的沉积单元:凹岸坝[J]. 沉积学报,2020,38(2):440-450.

Feng Xiaofei, Zhao Xiaoming, Tan Chengpeng, et al. A distinctive sedimentary element within the sinuous submarine channel: Outer bank bar[J]. Acta Sedimentologica Sinica, 2020, 38(2): 440-450.
[54] 林承焰,程盼,任丽华,等. 奥里诺科重油带MPE-3区块Oficina组辫状河三角洲沉积相定量刻画[J]. 沉积学报,2019,37(3):610-622.

Lin Chengyan, Cheng Pan, Ren Lihua, et al. Quantitative description of the braided river delta sedimentary facies of the Oficina Formation in MPE-3 block of the Orinoco heavy oil belt[J]. Acta Sedimentologica Sinica, 2019, 37(3): 610-622.
[55] 岳大力,胡光义,李伟,等. 井震结合的曲流河储层构型表征方法及其应用:以秦皇岛32-6油田为例[J]. 中国海上油气,2018,30(1):99-109.

Yue Dali, Hu Guangyi, Li Wei, et al. Meandering fluvial reservoir architecture characterization method and application by combining well logging and seismic data: A case study of QHD32-6 oilfield[J]. China Offshore Oil and Gas, 2018, 30(1): 99-109.
[56] 蔡全升,胡明毅,胡忠贵,等. 退积型浅水三角洲沉积演化特征及砂体展布规律:以松辽盆地北部临江地区下白垩统泉头组四段为例[J]. 石油与天然气地质,2016,37(6):903-914.

Cai Quansheng, Hu Mingyi, Hu Zhonggui, et al. Sedimentary evolution and distribution of sand bodies of retrogradational shallow-water delta: A case study from 4th member of the Cretaceous Quantou Formation in the Lingjiang area, Songliao Basin[J]. Oil & Gas Geology, 2016, 37(6): 903-914.
[57] Li W, Yue D L, Wang W F, et al. Fusing multiple frequency-decomposed seismic attributes with machine learning for thickness prediction and sedimentary facies interpretation in fluvial reservoirs[J]. Journal of Petroleum Science and Engineering, 2019, 177: 1087-1102.
[58] 张建坤,杨国涛,吴吉忠,等. 黄骅坳陷北部马头营凸起馆陶组砂体成因及展布特征[J]. 吉林大学学报(地球科学版),2017,47(1):48-60.

Zhang Jiankun, Yang Guotao, Wu Jizhong, et al. Genesis and distribution characteristics of sandstone bodies in the Guantao Formation of Matouying uplift, the northern Huanghua Depression[J]. Journal of Jilin University (Earth Science Edition), 2017, 47(1): 48-60.
[59] 高崇龙,纪友亮,任影,等. 准噶尔盆地莫索湾地区白垩系清水河组沉积演化与有利砂体展布[J]. 古地理学报,2015,17(6):813-828.

Gao Chonglong, Ji Youliang, Ren Ying, et al. Sedimentary evolution and favorable sandbody distribution of the Cretaceous Qingshuihe Formation in Mosuowan area, Junggar Basin[J]. Journal of Palaeogeography, 2015, 17(6): 813-828.
[60] Zhao X M, Qi K, Liu L, et al. Development of a partially-avulsed submarine channel on the Niger Delta continental slope: Architecture and controlling factors[J]. Marine and Petroleum Geology, 2018, 95: 30-49.
[61] Labrecque P A, Jensen J L, Hubbard S M, et al. Sedimentology and stratigraphic architecture of a point bar deposit, Lower Cretaceous McMurray Formation, Alberta, Canada[J]. Bulletin of Canadian Petroleum Geology, 2011, 59(2): 147-171.
[62] Hajek E A, Edmonds D A. Is river avulsion style controlled by floodplain morphodynamics?[J]. Geology, 2014, 42(3): 199-202.
[63] Gibling M R. Width and thickness of fluvial channel bodies and valley fills in the geological record: A literature compilation and classification[J]. Journal of Sedimentary Research, 2006, 76(5): 731-770.
[64] Gouw M J P. Alluvial architecture of the Holocene Rhine-Meuse delta (the Netherlands)[J]. Sedimentology, 2008, 55(5): 1487-1516.
[65] Chamberlin E P, Hajek E A. Interpreting paleo-avulsion dynamics from multistory sand bodies[J]. Journal of Sedimentary Research, 2015, 85(2): 82-94.
[66] 张红薇,赵翰卿,麻成斗. 泛滥—分流平原相储层中河间砂体的精细描述[J]. 大庆石油地质与开发,1998(6):24-26.

Zhang Hongwei, Zhao Hanqing, Ma Chengdou. Fine description of interchannel sandbody in flood-distributary pain reservoir[J]. Petroleum Geology & Oilfield Development in Daqing, 1998(6): 24-26.
[67] 高白水,金振奎,李燕,等.河流决口扇沉积模式及演化规律:以信江府前村决口扇为例[J].石油学报,2015,36(5):564-572.

Gao Baishui, Jin Zhenkui, Li Yan, et al. Sedimentary model and evolutionary process of crevasse splays:A case of crevasse splays around Fuqiancun village along Xinjiang River[J]. Acta Petrolei Sinica, 2015, 36(5): 564-572 .
[68] 陈薪凯,陈程,汪虎. 渤海湾盆地秦皇岛32-X油田决口扇储层的沉积特征与区分标准[J]. 特种油气藏,2020,27(5):22-29,138.

Chen Xinkai, Chen Cheng, Wang Hu. Sedimentary characteristics and distinguishing criteria of crevasse splay reservoir in QHD 32-X oilfield, Bohai Bay Basin[J]. Special Oil & Gas Reservoirs, 2020, 27(5): 22-29, 138.
[69] 黄金柱. 济阳坳陷高青油田水下决口水道沉积模式及其砂体内剩余油形成与富集[J]. 天然气地球科学,2008,19(1):116-119.

Huang Jinzhu. Sub-sea crevasse channel depositional model and remaining oil forming and concentration in the sand body, Gaoqing oil-filed[J]. Natural Gas Geoscience, 2008, 19(1): 116-119.
[70] 周连德,田晓平,时新磊,等. 海上大井距条件下河流相窄薄储层预测:以渤中34-X油田北块1井区明化镇组下段Ⅴ油组为例[J]. 长江大学学报(自科版),2017,14(11):22-26,39.

Zhou Liande, Tian Xiaoping, Shi Xinlei, et al. The prediction of narrow-thin fluvial reservoirs under large well spacing condition in offshore oilfield—by taking V oil formation in the low segment of Minghuazhen Formation (N1mL) in block 1 of Bozhong 34-X oilfield for example[J]. Journal of Yangtze University (Natural Science Edition), 2017, 14(11): 22-26, 39.
[71] 邓庆军,张永成,裴占松,等. 萨中开发区萨二油层河间砂体细化表征方法[J]. 复杂油气藏,2018,11(2):38-41.

Deng Qingjun, Zhang Yongcheng, Pei Zhansong, et al. Fine characterization method for interchannel sandbody in S-II layer of Sazhong oilfield[J]. Complex Hydrocarbon Reservoirs, 2018, 11(2): 38-41.
[72] 张昌民,尹太举,喻辰,等. 基于过程的分流平原高弯河道砂体储层内部建筑结构分析:以大庆油田萨北地区为例[J]. 沉积学报,2013,31(4):653-662.

Zhang Changmin, Yin Taiju, Yu Chen, et al. Reservoir architectural analysis of meandering channel sandstone in the delta plain based on the depositional process[J]. Acta Sedimentologica Sinica, 2013, 31(4): 653-662.
[73] 吴胜和,纪友亮,岳大力,等. 碎屑沉积地质体构型分级方案探讨[J]. 高校地质学报,2013,19(1):12-22.

Wu Shenghe, Ji Youliang, Yue Dali, et al. Discussion on hierarchical scheme of architectural units in clastic deposits[J]. Geological Journal of China Universities, 2013, 19(1): 12-22.
[74] Miall A D. The geology of fluvial deposits[M]. Berlin: Springer, 1996: 75-178.
[75] 马世忠,孙雨,范广娟,等. 地下曲流河道单砂体内部薄夹层建筑结构研究方法[J]. 沉积学报,2008,26(4):632-639.

Ma Shizhong, Sun Yu, Fan Guangjuan, et al. The method for studying thin interbed architecture of burial meandering channel sandbody[J]. Acta Sedimentologica Sinica, 2008, 26(4): 632-639.
[76] 周银邦,吴胜和,计秉玉,等. 曲流河储层构型表征研究进展[J]. 地球科学进展,2011,26(7):695-702.

Zhou Yinbang, Wu Shenghe, Ji Bingyu, et al. Research progress on the characterization of fluvial reservoir architecture[J]. Advances in Earth Science, 2011, 26(7): 695-702.
[77] 岳大力,吴胜和,刘建民. 曲流河点坝地下储层构型精细解剖方法[J]. 石油学报,2007,28(4):99-103.

Yue Dali, Wu Shenghe, Liu Jianmin. An accurate method for anatomizing architecture of subsurface reservoir in point bar of meandering river[J]. Acta Petrolei Sinica, 2007, 28(4): 99-103.
[78] 岳大力,吴胜和,谭河清,等. 曲流河古河道储层构型精细解剖:以孤东油田七区西馆陶组为例[J]. 地学前缘,2008,15(1):101-109.

Yue Dali, Wu Shenghe, Tan Heqing, et al. An anatomy of paleochannel reservoir architecture of meandering river reservoir: A case study of Guantao Formation, the west 7th block of Gudong oilfield[J]. Earth Science Frontiers, 2008, 15(1): 101-109.
[79] Bridge J S, Tye R S. Interpreting the dimensions of ancient fluvial channel bars, channels, and channel belts from wireline-logs and cores[J]. AAPG Bulletin, 2000, 84(8): 1205-1228.
[80] Edmonds D A, Hajek E A, Downton N, et al. Avulsion flow-path selection on rivers in foreland basins[J]. Geology, 2016, 44(9): 695-698.
[81] Yalin M S. River mechanics[M]. Oxford: Pergamon Press, 1992: 219-221.
[82] Gooley J T, Johnson C L, Pettinga L. Spatial and temporal variation of fluvial architecture in a prograding clastic wedge of the Late Cretaceous western interior basin (Kaiparowits Plateau), U.S.A.[J]. Journal of Sedimentary Research, 2016, 86(3): 125-147.
[83] Hajek E A, Straub K M. Autogenic sedimentation in clastic stratigraphy[J]. Annual Review of Earth and Planetary Sciences, 2017, 45: 681-709.
[84] Moran K E, Nittrouer J A, Perillo M M, et al. Morphodynamic modeling of fluvial channel fill and avulsion time scales during Early Holocene transgression, as substantiated by the incised valley stratigraphy of the Trinity River, Texas[J]. Journal of Geophysical Research: Earth Surface, 2017, 122(1): 215-234.
[85] Grenfell S E, Grenfell M C, Rowntree K M, et al. Fluvial connectivity and climate: A comparison of channel pattern and process in two climatically contrasting fluvial sedimentary systems in South Africa[J]. Geomorphology, 2014, 205: 142-154.
[86] Stouthamer E, Berendsen H J A. Factors controlling the Holocene avulsion history of the Rhine-Meuse delta (the Netherlands)[J]. Journal of Sedimentary Research, 2000, 70(5): 1051-1064.
[87] Stouthamer E, Berendsen H J A. Avulsion frequency, avulsion duration, and interavulsion period of Holocene channel belts in the Rhine-Meuse delta, the Netherlands[J]. Journal of Sedimentary Research, 2001, 71(4): 589-598.
[88] Tooth S, Rodnight H, Duller G A T, et al. Chronology and controls of avulsion along a mixed bedrock-alluvial river[J]. GSA Bulletin, 2007, 119(3/4): 452-461.
[89] Larkin Z T, Tooth S, Ralph T J, et al. Timescales, mechanisms, and controls of incisional avulsions in floodplain wetlands: Insights from the Tshwane River, semiarid South Africa[J]. Geomorphology, 2017, 283: 158-172.
[90] 张昌民,朱锐,尹太举,等. 扇三角洲沉积学研究进展[J]. 新疆石油地质,2015,36(3):362-368.

Zhang Changmin, Zhu Rui, Yin Taiju, et al. Advances in fan deltaic sedimentology[J]. Xinjiang Petroleum Geology, 2015, 36(3): 362-368.
[91] 张昌民,朱锐,赵康,等. 从端点走向连续:河流沉积模式研究进展述评[J]. 沉积学报,2017,35(5):926-944.

Zhang Changmin, Zhu Rui, Zhao Kang, et al. From end member to continuum: Review of fluvial facies model research[J]. Acta Sedimentologica Sinica, 2017, 35(5): 926-944.
[92] 唐武,王英民,赵志刚,等. 河型转化研究进展综述[J]. 地质论评,2016,62(1):138-152.

Tang Wu, Wang Yingmin, Zhao Zhigang, et al. A review of fluvial pattern transformation[J]. Geological Review, 2016, 62(1): 138-152.
[93] 谭程鹏,于兴河,李胜利,等. 辫状河—曲流河转换模式探讨:以准噶尔盆地南缘头屯河组露头为例[J]. 沉积学报,2014,32(3):450-458.

Tan Chengpeng, Yu Xinghe, Li Shengli, et al. Discussion on the model of braided river transform to meandering river: As an example of Toutunhe Formation in southern Junggar Basin[J]. Acta Sedimentologica Sinica, 2014, 32(3): 450-458.
[94] 李胜利,于兴河,杨志浩,等. 准噶尔盆地彩南地区头屯河期河流变迁与砂体展布[J]. 新疆石油地质,2015,36(6):660-667.

Li Shengli, Yu Xinghe, Yang Zhihao, al at. Fluvial changes and sandbody distribution of Toutunhe Formation in Cainan area, Junggar Basin[J]. Xinjiang Petroleum Geology, 2015, 36(6): 660-667.
[95] 赵晨帆,于兴河,付超,等. 曲流河三角洲—辫状河三角洲控制因素及演化过程探讨[J]. 沉积学报,2019,37(4):768-784.

Zhao Chenfan, Yu Xinghe, Fu Chao, et al. Control factors and evolution progress of depositional system transition from meandering river delta to braid river delta: Case study of Shan2 member to He8 member, Ordos Basin[J]. Acta Sedimentologica Sinica, 2019, 37(4): 768-784.