Citation: | Li Honghui, Li Wei, Yue Dali, Xu Zhenhua, Tan Ling, Wu Guangzhen, Wang Wurong, 2025. Impact of Discharge Variability on Sedimentary Characteristics in Shallow-Water Deltas. Earth Science, 50(6): 2428-2443. doi: 10.3799/dqkx.2025.014 |
Burpee, A. P., Slingerland, R. L., Edmonds, D. A., et al., 2015. Grain⁃Size Controls on the Morphology and Internal Geometry of River⁃Dominated Deltas. Journal of Sedimentary Research, 85(6): 699-714. https://doi.org/10.2110/jsr.2015.39
|
Caldwell, R. L., Edmonds, D. A., 2014. The Effects of Sediment Properties on Deltaic Processes and Morphologies: A Numerical Modeling Study. Journal of Geophysical Research: Earth Surface, 119(5): 961-982. https://doi.org/10.1002/2013JF002965
|
Cheng, C., Fu, W. X., Hu, Z. L., et al., 2015. Changes of Major Lakes in Central Asia over the Past 30 Years Revealed by Remote Sensing Technology. Remote Sensing for Land & Resources, 27(1): 146-152 (in Chinese with English abstract).
|
Deltares, 2014. Delft3D⁃Flow: Simulation of Multi⁃Dimensional Hydrodynaminc Flows and Transport Phenomena, Including Sediments⁃User Manual. Delft, Netherlands.
|
Donaldson, A. C., 1974. Pennsylvanian Sedimentation of Central Appalachians. In: Briggs, G., ed., Carboniferous of the Southeastern United States. Geological Society of America, U. S. A., 47-78.
|
Donselaar, M. E., Cuevas Gozalo, M. C., Moyano, S., 2013. Avulsion Processes at the Terminus of Low⁃Gradient Semi⁃Arid Fluvial Systems: Lessons from the Río Colorado, Altiplano Endorheic Basin, Bolivia. Sedimentary Geology, 283: 1-14. https://doi.org/10.1016/j.sedgeo.2012.10.007
|
Du, W., Qiu, C. G., Jia, S., et al., 2022. Quantitative Characterization of River⁃Dominated Deltaic Morphology Based on Analysis of Dominant Controlling Factors. Petroleum Geology and Recovery Efficiency, 29(5): 1-14 (in Chinese with English abstract).
|
Edmonds, D., Slingerland, R., Best, J., et al., 2010. Response of River⁃Dominated Delta Channel Networks to Permanent Changes in River Discharge. Geophysical Research Letters, 37(12): 107. https://doi.org/10.1029/2010gl043269
|
Edmonds, D. A., Caldwell, R. L., Brondizio, E. S., et al., 2020. Coastal Flooding will Disproportionately Impact People on River Deltas. Nature Communications, 11: 4741. https://doi.org/10.1038/s41467⁃020⁃18531⁃4
|
Feng, W. J., Wu, S. H., Zhang, K., et al., 2017. Depositional Process and Sedimentary Model of Meandering⁃River Shallow Delta: Insights from Numerical Simulation and Modern Deposition. Acta Geologica Sinica, 91(9): 2047-2064(in Chinese with English abstract).
|
Galloway, W. E., 1975. Process Framework for Describing the Morphologic and Stratigraphic Evolution of Deltaic Depositional Systems. Deltas: Models for Exploration. Houston Geological Society, Houston, Texas, US, 87-98.
|
Hansford, M. R., Björklund, P. P., 2020. River Discharge Variability as the Link between Climate and Fluvial Fan Formation. Geology, 48(10): 952-956. https://doi.org/10.1130/g47471.1
|
Heitmuller, F. T., Hudson, P. F., Kesel, R. H., 2017. Overbank Sedimentation from the Historic A. D. 2011 Flood along the Lower Mississippi River, USA. Geology, 45(2): 107-110. https://doi.org/10.1130/g38546.1
|
Hu, G. M., Deng, R. F., Tang, Y. J., et al., 2023. Influence of Palaeogeomorphology and Paleoclimate on Coarse Clastic Deposition in Fan Delta: Comparison Experiment of Deposition Physical Simulation Based on Upper Wuerhe Formation in Zhongguai Area of Junggar Basin. Journal of Yangtze University (Natural Science Edition), 20(3): 12-22(in Chinese with English abstract).
|
Huang, J., She, J. W., 2020. Vulnerability Assessment and Influencing Factors Analysis of Urban Flood Disaster in Yangtze River Delta City Cluster. Journal of Hohai University (Philosophy and Social Sciences), 22(6): 39-45 (in Chinese with English abstract).
|
Li, C. S., Zhang, W. X., Lei, Y., et al., 2021. Characteristics and Controlling Factors of Oil Accumulation in Chang 9 Member in Longdong Area, Ordos Basin. Earth Science, 46(10): 3560-3574(in Chinese with English abstract).
|
Li, W., Colombera, L., Yue, D. L., et al., 2023. Controls on the Morphology of Braided Rivers and Braid Bars: An Empirical Characterization of Numerical Models. Sedimentology, 70(1): 259-279. https://doi.org/10.1111/sed.13040
|
Li, W., Yue, D. L., Wang, W. R., et al., 2023. Depositional Models of Braided Rivers: Characteristics of Sedimentary Evolution and Architecture. Journal of Palaeogeography, 25(5): 1032-1048(in Chinese with English abstract).
|
Li, X. B., Liu, H. Q., Deng, X. Q., et al., 2021. The Concept of Fluvial Fans in an Arid Environment: A New Explanation of the Origin of" Sand⁃Filled Basins" in the Yanchang Formation, Ordos Basin. Acta Sedimentologica Sinica, 39(5): 1208-1221(in Chinese with English abstract).
|
Nardin, W., Edmonds, D. A., Fagherazzi, S., 2016. Influence of Vegetation on Spatial Patterns of Sediment Deposition in Deltaic Islands during Flood. Advances in Water Resources, 93: 236-248. https://doi.org/10.1016/j.advwatres.2016.01.001
|
Olariu, C., Bhattacharya, J. P., Leybourne, M. I., et al., 2012. Interplay between River Discharge and Topography of the Basin Floor in a Hyperpycnal Lacustrine Delta. Sedimentology, 59(2): 704-728. https://doi.org/10.1111/j.1365⁃3091.2011.01272.x
|
Postma, G., 1990. An Analysis of the Variation in Delta Architecture. Terra Nova, 2(2): 124-130. https://doi.org/10.1111/j.1365⁃3121.1990.tb00052.x
|
Simpson, G., Castelltort, S., 2012. Model Shows That Rivers Transmit High⁃Frequency Climate Cycles to the Sedimentary Record. Geology, 40(12): 1131-1134. https://doi.org/10.1130/G33451.1
|
Sun, H. Y., Wang, C. Y., Niu, Z., et al., 1998. Analysis of the Vegetation Cover Change and the Relationship between NDVI and Environmental Factors by Using NOAA Time Series Data. Journal of Remote Sensing, 2(3): 204-210(in Chinese with English abstract).
|
Sun, J., Xue, J. J., Hou, G. F., et al., 2020. Shallow⁃Water Delta Reservoir Characterization and Exploration Prospect in the Sangonghe Formation of Mobei Block. Special Oil & Gas Reservoirs, 27(3): 34-39(in Chinese with English abstract).
|
Tan, C. P., Yu, X. H., Liu, B. B., et al., 2018. Sedimentary Structures Formed under Upper⁃Flow⁃Regime in Seasonal River System: A Case Study of Bantanzi River, Daihai Lake, Inner Mongolia. Journal of Palaeogeography, 20(6): 929-940(in Chinese with English abstract).
|
Visconti, F., Camporeale, C., Ridolfi, L., 2010. Role of Discharge Variability on Pseudomeandering Channel Morphodynamics: Results from Laboratory Experiments. Journal of Geophysical Research: Earth Surface, 115(F4). https://doi.org/10.1029/2010jf001742
|
Wang, B., Ding, Q. H., 2008. Global Monsoon: Dominant Mode of Annual Variation in the Tropics. Dynamics of Atmospheres and Oceans, 44(3-4): 165-183. https://doi.org/10.1016/j.dynatmoce.2007.05.002
|
Wu, S. H., Xu, Z. H., Liu, Z., 2019. Depositional Architecture of Fluvial⁃Dominated Shoal Water Delta. Journal of Palaeogeography, 21(2): 202-215 (in Chinese with English abstract).
|
Xu, Z. F., Wang, X. W., 2021. Flood Risk Analysis of Local Heavy Storms in the Embanked Tidal River Plain: A Case Study behind the Zhongshan⁃Shunde Joint Levee in the Lower Pearl River Delta. Water Resources and Hydropower Engineering, 52(8): 51-65(in Chinese with English abstract).
|
Xu, Z. H., Wu, S. H., Liu, M. C., et al., 2021. Effects of Water Discharge on River⁃Dominated Delta Growth. Petroleum Science, 18(6): 1630-1649. https://doi.org/10.1016/j.petsci.2021.09.027
|
Yang, Y. M., Wang, X. J., Chen, S. L., et al., 2022. Sedimentary System Evolution and Sandbody Development Characteristics of Jurassic Shaximiao Formation in the Central Sichuan Basin. Natural Gas Industry, 42(1): 12-24(in Chinese with English abstract).
|
Zeng, C., Yin, T. J., Song, Y. K., 2017. Experimental on Numerical Simulation of the Impact of Lake Level Plane Fluctuation on Shallow Water Delta. Earth Science, 42(11): 2095-2104 (in Chinese with English abstract).
|
Zhang, L., Bao, Z. D., Dou, L. X., et al., 2018. Sedimentary Characteristics and Pattern of Distributary Channels in Shallow Water Deltaic Red Bed Succession: A Case from the Late Cretaceous Yaojia Formation, Southern Songliao Basin, NE China. Journal of Petroleum Science and Engineering, 171: 1171-1190. doi: 10.1016/j.petrol.2018.08.006
|
Zhu, X. M., Liu, Y., Fang, Q., et al., 2012. Formation and Sedimentary Model of Shallow Delta in Large⁃Scale Lake. Example from Cretaceous Quantou Formation in Sanzhao Sag, Songliao Basin. Earth Science Frontiers, 19(1): 89-99(in Chinese with English abstract).
|
Zhu, X. M., Zeng, H. L., Li, S. L., et al., 2017. Sedimentary Characteristics and Seismic Geomorphologic Responses of a Shallow⁃Water Delta in the Qingshankou Formation from the Songliao Basin, China. Marine and Petroleum Geology, 79: 131-148. https://doi.org/10.1016/j.marpetgeo.2016.09.01
|
成晨, 傅文学, 胡召玲, 等, 2015. 基于遥感技术的近30年中亚地区主要湖泊变化. 国土资源遥感, 27(1): 146-152.
|
杜威, 邱春光, 贾屾, 等, 2022. 基于主控因素分析的河控三角洲形态定量表征. 油气地质与采收率, 29(5): 1-14.
|
冯文杰, 吴胜和, 张可, 等, 2017. 曲流河浅水三角洲沉积过程与沉积模式探讨: 沉积过程数值模拟与现代沉积分析的启示. 地质学报, 91(9): 2047-2064.
|
胡光明, 邓儒风, 唐友军, 等, 2023. 古地貌与古气候对扇三角洲中粗碎屑沉积的影响研究: 基于准噶尔盆地中拐地区上乌尔禾组的沉积物理模拟对比实验. 长江大学学报(自然科学版), 20(3): 12-22.
|
黄晶, 佘靖雯, 2020. 长江三角洲城市群洪涝灾害脆弱性评估及影响因素分析. 河海大学学报(哲学社会科学版), 22(6): 39-45.
|
李程善, 张文选, 雷宇, 等, 2021. 鄂尔多斯盆地陇东地区长9油层组砂体成因与油气差异分布. 地球科学, 46(10): 3560-3574. doi: 10.3799/dqkx.2021.007
|
李伟, 岳大力, 王武荣, 等, 2023. 辫状河沉积构型研究进展: 沉积演化与构型特征. 古地理学报, 25(5): 1032-1048.
|
李相博, 刘化清, 邓秀芹, 等, 2021. 干旱环境河流扇概念与鄂尔多斯盆地延长组"满盆砂" 成因新解. 沉积学报, 39(5): 1208-1221.
|
孙红雨, 王长耀, 牛铮, 等, 1998. 中国地表植被覆盖变化及其与气候因子关系: 基于NOAA时间序列数据分析. 遥感学报, 2(3): 204-210.
|
孙靖, 薛晶晶, 厚刚福, 等, 2020. 莫北区块三工河组浅水三角洲储层特征及勘探前景. 特种油气藏, 27(3): 34-39.
|
谭程鹏, 于兴河, 刘蓓蓓, 等, 2018. 季节性河流体系高流态沉积构造特征: 以内蒙古岱海湖半滩子河为例. 古地理学报, 20(6): 929-940.
|
吴胜和, 徐振华, 刘钊, 2019. 河控浅水三角洲沉积构型. 古地理学报, 21(2): 202-215.
|
徐张帆, 王先伟, 2021. 平原联围感潮河网暴雨洪涝灾害风险分析: 以珠江三角洲中顺大围为例. 水利水电技术(中英文), 52(8): 51-65.
|
杨跃明, 王小娟, 陈双玲, 等, 2022. 四川盆地中部地区侏罗系沙溪庙组沉积体系演化及砂体发育特征. 天然气工业, 42(1): 12-24.
|
曾灿, 尹太举, 宋亚开, 2017. 湖平面升降对浅水三角洲影响的沉积数值模拟实验. 地球科学, 42(11): 2095-2104. doi: 10.3799/dqkx.2017.134
|
朱筱敏, 刘媛, 方庆, 等, 2012. 大型坳陷湖盆浅水三角洲形成条件和沉积模式: 以松辽盆地三肇凹陷扶余油层为例. 地学前缘, 19(1): 89-99.
|