Extreme streamflow and sediment load changes in the Yellow River Basin: Impacts of climate change and human activities
暂无分享,去创建一个
B. Fu | L. Ran | Xixi Lu | G. Gao | Dongfeng Li | Shihua Yin
[1] Yuanfang Chai,et al. Mechanisms Controlling Water‐Level Variations in the Middle Yangtze River Following the Operation of the Three Gorges Dam , 2022, Water Resources Research.
[2] Mengzhen Xu,et al. Temporal and spatial hydrological variations of the Yellow River in the past 60 years , 2022, Journal of Hydrology.
[3] I. Overeem,et al. Earth’s sediment cycle during the Anthropocene , 2022, Nature Reviews Earth & Environment.
[4] C. Miao,et al. Xiaolangdi Dam: A Valve for Streamflow Extremes on the Lower Yellow River , 2022, Journal of Hydrology.
[5] B. Fu,et al. Spatiotemporal Variations of Sediment Discharge and In‐Reach Sediment Budget in the Yellow River From the Headwater to the Delta , 2021, Water Resources Research.
[6] I. Overeem,et al. Exceptional increases in fluvial sediment fluxes in a warmer and wetter High Mountain Asia , 2021, Science.
[7] Xixi Lu,et al. Constraining Dynamic Sediment‐Discharge Relationships in Cold Environments: The Sediment‐Availability‐Transport (SAT) Model , 2021, Water Resources Research.
[8] E. Nadal‐Romero,et al. Intraseasonal‐to‐Interannual Analysis of Discharge and Suspended Sediment Concentration Time‐Series of the Upper Changjiang (Yangtze River) , 2021, Water Resources Research.
[9] M. Peel,et al. Watersheds may not recover from drought , 2021, Science.
[10] Y. Tsang,et al. Shifting magnitude and timing of streamflow extremes and the relationship with rainfall across the Hawaiian Islands , 2021 .
[11] N. Bi,et al. Impact of Artificial Floods on the Quantity and Grain Size of River‐Borne Sediment: A Case Study of a Dam Regulation Scheme in the Yellow River Catchment , 2021, Water Resources Research.
[12] Hong Xuan Do,et al. Globally observed trends in mean and extreme river flow attributed to climate change , 2021, Science.
[13] Zan Xu,et al. Water and sediment yield response to extreme rainfall events in a complex large river basin: A case study of the Yellow River Basin, China , 2021 .
[14] J. Olden,et al. Spatial Patterns and Drivers of Nonperennial Flow Regimes in the Contiguous United States , 2020, Geophysical Research Letters.
[15] C. Renshaw,et al. Spatially coherent regional changes in seasonal extreme streamflow events in the United States and Canada since 1950 , 2020, Science Advances.
[16] F. Sun,et al. Variability of annual sediment load and runoff in the Yellow River for the last 100 years (1919-2018). , 2020, The Science of the total environment.
[17] Kelin Wang,et al. The Contributions of the Largest Erosive Events to Sediment Yields in Karst Catchments , 2020, Water Resources Research.
[18] S. Ye,et al. Dominant mechanism for annual maximum flood and sediment events generation in the Yellow River basin , 2020 .
[19] C. Miao,et al. Changes in maximum daily runoff depth and suspended sediment yield on the Loess Plateau, China , 2020 .
[20] B. Fu,et al. Sediment transport under increasing anthropogenic stress: Regime shifts within the Yellow River, China , 2019, Ambio.
[21] B. Fu,et al. Formulating an Elasticity Approach to Quantify the Effects of Climate Variability and Ecological Restoration on Sediment Discharge Change in the Loess Plateau, China , 2019, Water Resources Research.
[22] Xiaolin Yan,et al. The impact of climate variability and land use/cover change on the water balance in the Middle Yellow River Basin, China , 2019, Journal of Hydrology.
[23] Yan-xu Liu,et al. Yellow River water rebalanced by human regulation , 2019, Scientific Reports.
[24] Lukas Gudmundsson,et al. Observed Trends in Global Indicators of Mean and Extreme Streamflow , 2019, Geophysical Research Letters.
[25] Y. Tsang,et al. Long‐term streamflow trends in Hawai'i and implications for native stream fauna , 2019, Hydrological Processes.
[26] E. Martin,et al. A 50-year analysis of hydrological trends and processes in a Mediterranean catchment , 2018, Hydrology and Earth System Sciences.
[27] N. Krakauer,et al. Global change in streamflow extremes under climate change over the 21st century , 2017 .
[28] Lukas Gudmundsson,et al. The Global Streamflow Indices and Metadata Archive (GSIM) – Part 2: Quality Control, Time-series Indices and Homogeneity Assessment , 2017 .
[29] Yimin Wang,et al. Efficiency Evaluation of Hydropower Station Operation: A Case Study of Longyangxia Station in the Yellow River, China , 2017 .
[30] Shuai Wang,et al. Hydrogeomorphic Ecosystem Responses to Natural and Anthropogenic Changes in the Loess Plateau of China , 2017 .
[31] A. Aghakouchak,et al. Multivariate Copula Analysis Toolbox (MvCAT): Describing dependence and underlying uncertainty using a Bayesian framework , 2017 .
[32] G. Grant,et al. Linking environmental flows to sediment dynamics , 2017 .
[33] Patrick Willems,et al. Temporal and spatial variability of extreme river flow quantiles in the Upper Vistula River basin, Poland , 2017 .
[34] H. Shao,et al. Dynamic sediment discharge in the Hekou-Longmen region of Yellow River and soil and water conservation implications. , 2017, The Science of the total environment.
[35] Nikita Tananaev,et al. Trends in annual and extreme flows in the Lena River basin, Northern Eurasia , 2016 .
[36] B. Fu,et al. Developing policy for the Yellow River sediment sustainable control , 2016 .
[37] A. St‐Hilaire,et al. Estimation of suspended sediment concentration in the Saint John River using rating curves and a machine learning approach , 2016 .
[38] R. Nicholls,et al. The impacts of climate change across the globe: A multi-sectoral assessment , 2016, Climatic Change.
[39] Q. Duan,et al. Bi-objective analysis of water–sediment regulation for channel scouring and delta maintenance: A study of the lower Yellow River , 2015 .
[40] Z. Kundzewicz,et al. Extreme hydrological events and security , 2015 .
[41] J. Syvitski,et al. Global suspended sediment and water discharge dynamics between 1960 and 2010: Continental trends and intra-basin sensitivity , 2014 .
[42] Stefan Hochrainer-Stigler,et al. Increasing stress on disaster-risk finance due to large floods , 2014 .
[43] L. Ran,et al. Sediment loads response to climate change: A preliminary study of eight large Chinese rivers , 2013 .
[44] Alain Pietroniro,et al. Rationale for Monitoring Discharge on the Ground , 2012 .
[45] Albert J. Kettner,et al. Socio-economic Impacts on Flooding: A 4000-Year History of the Yellow River, China , 2012, AMBIO.
[46] G. Sheridan,et al. Post-fire changes in sediment rating curves in a wet Eucalyptus forest in SE Australia , 2011 .
[47] P. Hairsine,et al. River sediment load and concentration responses to changes in hydrology and catchment management in the Loess Plateau region of China , 2008 .
[48] B. Renard,et al. Use of a Gaussian copula for multivariate extreme value analysis: Some case studies in hydrology , 2007 .
[49] Olli Varis,et al. Sediment-related impacts due to upstream reservoir trapping, the Lower Mekong River , 2007 .
[50] D. Walling. Human impact on land : ocean sediment transfer by the world's rivers , 2006 .
[51] A. V. Vecchia,et al. Global pattern of trends in streamflow and water availability in a changing climate , 2005, Nature.
[52] K. Oost,et al. Modeling Response of Soil Erosion and Runoff to Changes in Precipitation and Cover , 2005 .
[53] J. Syvitski,et al. Impact of Humans on the Flux of Terrestrial Sediment to the Global Coastal Ocean , 2005, Science.
[54] Sheng Yue,et al. A comparison of the power of the t test, Mann-Kendall and bootstrap tests for trend detection / Une comparaison de la puissance des tests t de Student, de Mann-Kendall et du bootstrap pour la détection de tendance , 2004 .
[55] B. Bobée,et al. Multivariate hydrological frequency analysis using copulas , 2004 .
[56] C. De Michele,et al. A Generalized Pareto intensity‐duration model of storm rainfall exploiting 2‐Copulas , 2003 .
[57] M. Allen,et al. Constraints on future changes in climate and the hydrologic cycle , 2002, Nature.
[58] V. Smakhtin. Low flow hydrology: a review , 2001 .
[59] James P. M. Syvitski,et al. Estimating fluvial sediment transport: The rating parameters , 2000 .
[60] G. Kondolf. PROFILE: Hungry Water: Effects of Dams and Gravel Mining on River Channels , 1997, Environmental management.
[61] P. Sen. Estimates of the Regression Coefficient Based on Kendall's Tau , 1968 .
[62] H. B. Mann. Nonparametric Tests Against Trend , 1945 .
[63] J. Best,et al. Anthropogenic stresses on the world’s big rivers , 2018, Nature Geoscience.
[64] A. N. PETTrrr. A Non-parametric Approach to the Change-point Problem , 1979 .