Interconnected River–Lake Project Decreased CO2 and CH4 Emission from Urban Rivers
暂无分享,去创建一个
Xing Li | Siyue Li | Chunlin Wang | Yuhan Xv
[1] Qiang Li,et al. Effect of reservoir characteristics and chemicals on filtration property of water-based drilling fluid in unconventional reservoir and mechanism disclosure , 2023, Environmental Science and Pollution Research.
[2] Xing-zhong Yuan,et al. Watershed land use change indirectly dominated the spatial variations of CH4 and N2O emissions from two small suburban rivers , 2023, Journal of Hydrology.
[3] Bastian Steudel,et al. Testing for terrestrial and freshwater microalgae productivity under elevated CO2 conditions and nutrient limitation , 2023, BMC Plant Biology.
[4] C. Humborg,et al. Methane emissions offset atmospheric carbon dioxide uptake in coastal macroalgae, mixed vegetation and sediment ecosystems , 2023, Nature Communications.
[5] Y. Xu,et al. Land use and hydrological factors control concentrations and diffusive fluxes of riverine dissolved carbon dioxide and methane in low-order streams. , 2023, Water research.
[6] Ji‐Hyung Park,et al. Optical and molecular indices of dissolved organic matter for estimating biodegradability and resulting carbon dioxide production in inland waters: A review. , 2022, Water research.
[7] Lei Zhou,et al. Urbanization in developing countries overrides catchment productivity in fueling inland water CO2 emissions , 2022, Global change biology.
[8] C. Ren,et al. Modeling spatiotemporal carbon emissions for two mega-urban regions in China using urban form and panel data analysis. , 2022, The Science of the total environment.
[9] Xing-zhong Yuan,et al. Methane and nitrous oxide concentrations and fluxes from heavily polluted urban streams: Comprehensive influence of pollution and restoration. , 2022, Environmental pollution.
[10] Yanfei An,et al. Frequent algal blooms dramatically increase methane while decrease carbon dioxide in a shallow lake bay. , 2022, Environmental pollution.
[11] C. Lavergne,et al. Methane and carbon dioxide cycles in lakes of the King George Island, maritime Antarctica. , 2022, The Science of the total environment.
[12] Yuan Niu,et al. Effect of river–lake connectivity on ecological stoichiometry of lake and carbon storage status in Eastern Plain, China , 2022, Environmental Geochemistry and Health.
[13] Yuanfang Cheng,et al. Hydrate as a by-product in CO2 leakage during the long-term sub-seabed sequestration and its role in preventing further leakage , 2022, Environmental Science and Pollution Research.
[14] Longlong Xia,et al. Global methane and nitrous oxide emissions from inland waters and estuaries , 2022, Global change biology.
[15] Qingchao Li,et al. Factors affecting the lower limit of the safe mud weight window for drilling operation in hydrate-bearing sediments in the Northern South China Sea , 2022, Geomechanics and Geophysics for Geo-Energy and Geo-Resources.
[16] Y. Xu,et al. Hot spot of CH4 production and diffusive flux in rivers with high urbanization. , 2021, Water research.
[17] E. Jeppesen,et al. Biodegradable dissolved organic carbon shapes bacterial community structures and co-occurrence patterns in large eutrophic Lake Taihu. , 2021, Journal of environmental sciences.
[18] Xixi Lu,et al. Eutrophication decreased CO2 but increased CH4 emissions from lake: A case study of a shallow Lake Ulansuhai. , 2021, Water research.
[19] Yan Ding,et al. Ebullition Controls on CH4 Emissions in an Urban, Eutrophic River: A Potential Time-Scale Bias in Determining the Aquatic CH4 Flux. , 2021, Environmental science & technology.
[20] X. Lee,et al. A highly agricultural river network in Jurong Reservoir watershed as significant CO2 and CH4 sources. , 2021, The Science of the total environment.
[21] W. McDowell,et al. Global carbon dioxide efflux from rivers enhanced by high nocturnal emissions , 2021, Nature Geoscience.
[22] Shaoda Liu,et al. Intense methane ebullition from urban inland waters and its significant contribution to greenhouse gas emissions. , 2020, Water research.
[23] Xin-yan Li,et al. Urban rivers are hotspots of riverine greenhouse gas (N2O, CH4, CO2) emissions in the mixed-landscape chaohu lake basin. , 2020, Water research.
[24] K. Butterbach‐Bahl,et al. An urban polluted river as a significant hotspot for water-atmosphere exchange of CH4 and N2O. , 2020, Environmental pollution.
[25] Siyue Li,et al. Carbon and nutrients as indictors of daily fluctuations of pCO2 and CO2 flux in a river draining a rapidly urbanizing area , 2020 .
[26] C. Peng,et al. The significant contribution of lake depth in regulating global lake diffusive methane emissions. , 2020, Water research.
[27] Weijin Yan,et al. Dominance of nitrous oxide production by nitrification and denitrification in the shallow Chaohu Lake, Eastern China: Insight from isotopic characteristics of dissolved nitrous oxide. , 2019, Environmental pollution.
[28] X. Lee,et al. Eutrophic Lake Taihu as a significant CO2 source during 2000-2015. , 2019, Water research.
[29] V. Gholami,et al. Investigation of the Relationship between Sediment Graph and Hydrograph of Flood Events (Case Study: Gharachay River Tributaries, Arak, Iran) , 2019, Water Resources.
[30] L. Hou,et al. Control of the hydraulic load on nitrous oxide emissions from cascade reservoirs. , 2019, Environmental science & technology.
[31] D. Lai,et al. Large Fine‐Scale Spatiotemporal Variations of CH4 Diffusive Fluxes From Shrimp Aquaculture Ponds Affected by Organic Matter Supply and Aeration in Southeast China , 2019, Journal of Geophysical Research: Biogeosciences.
[32] G. Weyhenmeyer,et al. Environmental conditions for phytoplankton influenced carbon dynamics in boreal lakes , 2019, Aquatic Sciences.
[33] Robert J. Brederveld,et al. Towards restoring urban waters: understanding the main pressures , 2019, Current Opinion in Environmental Sustainability.
[34] D. Caniani,et al. CO2 and N2O from water resource recovery facilities: Evaluation of emissions from biological treatment, settling, disinfection, and receiving water body. , 2019, The Science of the total environment.
[35] Y. Xu,et al. Dissolved carbon transport in a river-lake continuum: A case study in a subtropical watershed, USA. , 2018, The Science of the total environment.
[36] P. Casper,et al. Eutrophication exacerbates the impact of climate warming on lake methane emission. , 2018, The Science of the total environment.
[37] K. Lei,et al. Effects of land use on the concentration and emission of nitrous oxide in nitrogen-enriched rivers. , 2018, Environmental pollution.
[38] Eun Ju Lee,et al. Longitudinal discontinuities in riverine greenhouse gas dynamics generated by dams and urban wastewater , 2018, Biogeosciences.
[39] Lingling Li,et al. Spatial–temporal patterns of methane dynamics in Lake Taihu , 2018, Hydrobiologia.
[40] J. Downing,et al. Greenhouse gas emissions from lakes and impoundments: Upscaling in the face of global change , 2018, Limnology and oceanography letters.
[41] P. Raymond,et al. Terrestrial carbon inputs to inland waters: A current synthesis of estimates and uncertainty , 2018 .
[42] C. Peng,et al. CH4 concentrations and fluxes in a subtropical metropolitan river network: Watershed urbanization impacts and environmental controls. , 2018, The Science of the total environment.
[43] J. Varvani,et al. Sediment Rating Curve Parameters Relationship with Watershed Characteristics in the Semiarid River Watersheds , 2018 .
[44] Zhongliang Wang,et al. Greenhouse gases emission from the sewage draining rivers. , 2018, The Science of the total environment.
[45] Ji‐Hyung Park,et al. CO2 Outgassing from an Urbanized River System Fueled by Wastewater Treatment Plant Effluents. , 2017, Environmental science & technology.
[46] Shiyuan Xu,et al. Carbon dioxide and methane dynamics in a human‐dominated lowland coastal river network (Shanghai, China) , 2017 .
[47] X. Lee,et al. Spatial variations of methane emission in a large shallow eutrophic lake in subtropical climate , 2017 .
[48] Li Jiufa,et al. A New Approach for the Health Assessment of River Systems Based on Interconnected Water System Networks , 2017, Journal of Resources and Ecology.
[49] B. Knoppers,et al. Spatio‐temporal variability of methane (CH4) concentrations and diffusive fluxes from a tropical coastal embayment surrounded by a large urban area (Guanabara Bay, Rio de Janeiro, Brazil) , 2016 .
[50] K. Song,et al. Carbon dioxide and methane supersaturation in lakes of semi-humid/semi-arid region, Northeastern China , 2016 .
[51] A. Lorke,et al. Export of Dissolved Methane and Carbon Dioxide with Effluents from Municipal Wastewater Treatment Plants. , 2016, Environmental science & technology.
[52] Samuel T. Christel,et al. The ecology of methane in streams and rivers: patterns, controls, and global significance , 2016 .
[53] C. Pignol,et al. A century of human‐driven changes in the carbon dioxide concentration of lakes , 2015 .
[54] E. Jeppesen,et al. Eutrophication effects on greenhouse gas fluxes from shallow‐lake mesocosms override those of climate warming , 2015, Global change biology.
[55] Tom Andersen,et al. Greenhouse gas metabolism in Nordic boreal lakes , 2015, Biogeochemistry.
[56] D. Bastviken,et al. Methane and carbon dioxide emissions from inland waters in India – implications for large scale greenhouse gas balances , 2014, Global change biology.
[57] C. Verpoorter,et al. A global inventory of lakes based on high‐resolution satellite imagery , 2014 .
[58] David Bastviken,et al. Methane fluxes show consistent temperature dependence across microbial to ecosystem scales , 2014, Nature.
[59] A. Jõeleht,et al. A new approach for describing the relationship between electrical conductivity and major anion concentration in natural waters , 2013 .
[60] H. Laudon,et al. Terrestrial organic matter support of lake food webs: Evidence from lake metabolism and stable hydrogen isotopes of consumers , 2012 .
[61] A. Wüest,et al. Spatial heterogeneity of methane ebullition in a large tropical reservoir. , 2011, Environmental science & technology.
[62] Weijin Yan,et al. Seasonal and diurnal variations in N2O concentrations and fluxes from three eutrophic rivers in Southeast China , 2011 .
[63] M. Coveney,et al. Low carbon dioxide partial pressure in a productive subtropical lake , 2011, Aquatic Sciences.
[64] S. Larsen,et al. The pCO2 in boreal lakes: Organic carbon as a universal predictor? , 2011 .
[65] Patrick M. Crill,et al. Freshwater Methane Emissions Offset the Continental Carbon Sink , 2011, Science.
[66] J. Downing,et al. Carbon dioxide concentrations in eutrophic lakes: undersaturation implies atmospheric uptake , 2011 .
[67] Kerri Finlay,et al. Regulation of spatial and temporal variability of carbon flux in six hard‐water lakes of the northern Great Plains , 2009 .
[68] F. Kelliher,et al. Diurnal fluctuations of dissolved nitrous oxide (N2O) concentrations and estimates of N2O emissions from a spring‐fed river: implications for IPCC methodology , 2007 .
[69] P. Groffman,et al. The urban stream syndrome: current knowledge and the search for a cure , 2005, Journal of the North American Benthological Society.
[70] B. Delille,et al. Variability of the gas transfer velocity of CO2 in a macrotidal estuary (the Scheldt) , 2004 .
[71] J. Cole,et al. Gas exchange in rivers and estuaries: Choosing a gas transfer velocity , 2001 .
[72] N. Caraco,et al. Emissions of nitrous oxide (N2O) from a tidal, freshwater river, the Hudson River, New York. , 2001, Environmental science & technology.
[73] K. Havens,et al. Nutrient dynamics and the eutrophication of shallow lakes Kasumigaura (Japan), Donghu (PR China), and Okeechobee (USA). , 2001, Environmental pollution.
[74] J. Middelburg,et al. Spatial distribution and inhibition by ammonium of methane oxidation in intertidal freshwater marshes , 1997, Applied and environmental microbiology.
[75] Helmut Knapp,et al. Experimental and modeling studies on the solubility of CO2, CHC1F2, CHF3, C2H2F4 and C2H4F2 in water and aqueous NaCl solutions under low pressures , 1997 .
[76] R. Wanninkhof. Relationship between wind speed and gas exchange over the ocean , 1992 .
[77] D. Maher,et al. Seasonal exports and drivers of dissolved inorganic and organic carbon, carbon dioxide, methane and δ13C signatures in a subtropical river network. , 2017, The Science of the total environment.
[78] Li Zong-li. Discussion on Water Cycle Mechanism of Interconnected River System Network , 2011 .