Influences of hydrodynamics on dissolved inorganic carbon in deep subtropical reservoir: Insights from hydrodynamic model and carbon isotope analysis.
暂无分享,去创建一个
Y. Yi | Wanfa Wang | J. Zhong | Wenhong Shi | Shengde Yu | Li Liang | Si-Liang Li
[1] Y. Yi,et al. Unraveling the factors influencing CO2 emissions from hydroelectric reservoirs in karst and non-karst regions: A comparative analysis. , 2023, Water research.
[2] L. Ran,et al. River ecosystem metabolism and carbon biogeochemistry in a changing world , 2023, Nature.
[3] Le Yang,et al. Carbon dioxide flux in the drained drawdown areas of Three Gorges Reservoir , 2022, Frontiers in Environmental Science.
[4] P. Van Cappellen,et al. Carbonate mineral dissolution and photosynthesis-induced precipitation regulate inorganic carbon cycling along the karst river-reservoir continuum, SW China , 2022, Journal of Hydrology.
[5] R. Marcé,et al. Hydrology influences carbon flux through metabolic pathways in the hypolimnion of a Mediterranean reservoir , 2022, Aquatic Sciences.
[6] M. Arias,et al. Coupled CH4 production and oxidation support CO2 supersaturation in a tropical flood pulse lake (Tonle Sap Lake, Cambodia) , 2022, Proceedings of the National Academy of Sciences.
[7] Shengjun Wu,et al. Dynamic of riverine pCO2, biogeochemical characteristics, and carbon sources inferred from δ13C in a subtropical river system. , 2022, The Science of the total environment.
[8] A. Bouwman,et al. Exploring Spatially Explicit Changes in Carbon Budgets of Global River Basins during the 20th Century , 2021, Environmental science & technology.
[9] Junbing Pu,et al. Transport and transformation of dissolved inorganic carbon in a subtropical groundwater‑fed reservoir, south China. , 2021, Water research.
[10] J. Probst,et al. Chemical weathering and CO2 consumption in a multi-lithological karstic critical zone: Long term hydrochemical trends and isotopic survey , 2021, Chemical Geology.
[11] Yong Liu,et al. Thermal mixing of Lake Erhai (Southwest China) induced by bottom heat transfer: Evidence based on observations and CE-QUAL-W2 model simulations , 2021, Journal of Hydrology.
[12] J. Vaze,et al. Jointly Calibrating Hydrologic Model Parameters and State Adjustments , 2021, Water Resources Research.
[13] M. Franca,et al. Unaccounted CO2 leaks downstream of a large tropical hydroelectric reservoir , 2021, Proceedings of the National Academy of Sciences.
[14] G. Han,et al. Controlling factors of seasonal and spatial variation of riverine CO2 partial pressure and its implication for riverine carbon flux. , 2021, The Science of the total environment.
[15] K. Lindenschmidt,et al. The impacts of changing climate and streamflow on nutrient speciation in a large Prairie reservoir. , 2021, Journal of environmental management.
[16] R. Noori,et al. Complex dynamics of water quality mixing in a warm mono-mictic reservoir. , 2021, The Science of the total environment.
[17] Y. Yi,et al. The impacts of reservoirs on the sources and transport of riverine organic carbon in the karst area: A multi-tracer study. , 2021, Water research.
[18] T. Shintani,et al. Thermal stratification responses of a monomictic reservoir under different seasons and operation schemes. , 2020, The Science of the total environment.
[19] Xiao-dong Li,et al. Water column stability driving the succession of phytoplankton functional groups in karst hydroelectric reservoirs , 2020 .
[20] Jonathan B. Martin,et al. Varying thermal structure controls the dynamics of CO2 emissions from a subtropical reservoir, south China. , 2020, Water research.
[21] J. Ni,et al. River dam impacts on biogeochemical cycling , 2020, Nature Reviews Earth & Environment.
[22] K. Lindenschmidt,et al. CE-QUAL-W2 model of dam outflow elevation impact on temperature, dissolved oxygen and nutrients in a reservoir , 2019, Scientific Data.
[23] S. Maberly,et al. Climatic and anthropogenic regulation of carbon transport and transformation in a karst river-reservoir system. , 2019, The Science of the total environment.
[24] Shouye Yang,et al. Progressive Evolution of the Changjiang (Yangtze River) Sediment Weathering Intensity Since the Three Gorges Dam Operation , 2019, Journal of Geophysical Research: Earth Surface.
[25] M. Thieme,et al. Mapping the world’s free-flowing rivers , 2019, Nature.
[26] Chung-Te Chang,et al. Dynamic responses of DOC and DIC transport to different flow regimes in a subtropical small mountainous river , 2018, Hydrology and earth system sciences.
[27] Jonathan B. Martin,et al. Large and active CO2 uptake by coupled carbonate weathering , 2018, Earth-Science Reviews.
[28] Cong-Qiang Liu,et al. Carbon biogeochemical cycle is enhanced by damming in a karst river. , 2018, The Science of the total environment.
[29] W. Laurance,et al. How Green is 'Green' Energy? , 2017, Trends in ecology & evolution.
[30] C. Verpoorter,et al. Organic carbon burial in global lakes and reservoirs , 2017, Nature Communications.
[31] T. Vogel,et al. A review of CO2 and associated carbon dynamics in headwater streams: A global perspective , 2017 .
[32] P. Régnier,et al. Global perturbation of organic carbon cycling by river damming , 2017, Nature Communications.
[33] C. Groves,et al. Dissolved inorganic carbon sourcing using δ13CDIC from a karst influenced river system , 2016 .
[34] Jing Zhang,et al. Spatial and temporal variation of dissolved organic matter in the Changjiang: Fluvial transport and flux estimation , 2015 .
[35] M. Leuenberger,et al. An inter-regional assessment of concentrations and δ13C values of methane and dissolved inorganic carbon in small European lakes , 2015, Aquatic Sciences.
[36] M. Gueddari,et al. Two-dimensional modelling of hydrodynamics and water quality of a stratified dam reservoir in the southern side of the Mediterranean Sea , 2014, Environmental Earth Sciences.
[37] P. Ciais,et al. Global carbon dioxide emissions from inland waters , 2013, Nature.
[38] David Labat,et al. High sensitivity of the continental-weathering carbon dioxide sink to future climate change , 2012 .
[39] P. Raymond,et al. Significant efflux of carbon dioxide from streams and rivers in the United States , 2011 .
[40] S. Doney,et al. Riverine coupling of biogeochemical cycles between land, oceans, and atmosphere , 2011 .
[41] P. Claus,et al. Stable carbon isotope discrimination and microbiology of methane formation in tropical anoxic lake sediments , 2010 .
[42] Hui Yu,et al. Chemical and thermal stratification in lakes , 2010, Limnology.
[43] John M. Melack,et al. Lakes and reservoirs as regulators of carbon cycling and climate , 2009 .
[44] Congqiang Liu,et al. Sulfuric acid as an agent of carbonate weathering constrained by δ13CDIC: Examples from Southwest China , 2008 .
[45] S. Elçi,et al. Effects of thermal stratification and mixing on reservoir water quality , 2008, Limnology.
[46] M. Shapley,et al. Seasonal water-column dynamics of dissolved inorganic carbon stable isotopic compositions (δ13CDIC) in small hardwater lakes in Minnesota and Montana , 2006 .
[47] David Bastviken,et al. Degradation of dissolved organic matter in oxic and anoxic lake water , 2004 .
[48] R. Wanninkhof,et al. � 2003, by the American Society of Limnology and Oceanography, Inc. Gas transfer velocities measured at low wind speed over a lake , 2022 .
[49] J. Cole,et al. Gas exchange in rivers and estuaries: Choosing a gas transfer velocity , 2001 .
[50] N. Caraco,et al. Carbon in catchments: connecting terrestrial carbon losses with aquatic metabolism , 2001 .
[51] K. Telmer,et al. Carbon fluxes, pCO2 and substrate weathering in a large northern river basin, Canada: carbon isotope perspectives , 1999 .
[52] Per O.J. Hall,et al. Effect of oxygen on degradation rate of refractory and labile organic matter in continental margin sediments , 1998 .
[53] R. Krishnamurthy,et al. Seasonal variations of dissolved inorganic carbon and δ13C of surface waters : application of a modified gas evolution technique , 1998 .
[54] M. Meybeck. Carbon, nitrogen, and phosphorus transport by world rivers , 1982 .
[55] Sherwood B. Idso,et al. On the concept of lake stability1 , 1973 .
[56] Lo Guang-qi,et al. Optimization and adjustment of the pivot layout of Hongjiadu Hydropower Station , 2001 .
[57] Daniel L. Tufford,et al. Spatial and temporal hydrodynamic and water quality modeling analysis of a large reservoir on the South Carolina (USA) coastal plain , 1999 .
[58] D. L. Parkhurst,et al. User's guide to PHREEQC (Version 2)-a computer program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations , 1999 .
[59] J. Holden,et al. The storage and aging of continental runoff in large reservoir systems of the world , 1997 .
[60] W. Schmidt. Über die Temperatur- und Stabilitätsverhältnisse von Seen , 2022 .