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Augmenting freshwater availability in mountain headwater streams:Assessing the sustainability under baseline and future climate change scenarios

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摘要 Mountain headwater streams are important freshwater sources,but they are mostly intermittent and highly susceptible to climate change.This paper examines the sustainability of augmented freshwater availability in mountain headwater streams for water supply under baseline and future climate change scenarios using an integrated modeling approach.The climate change data in the 2040s(2030e2059),under Representative Concentration Pathway 4.5 and 8.5 scenarios,were downscaled for the impact assessment.In the region,climate change raises the average precipitation by 5e7%and the temperature by 13e15%in the 2040s.SWATeMODFLOW model,integrating Soil and Water Assessment Tool(SWAT2012)and finite-difference Modular Groundwater Flow(MODFLOW)models in a single package,was used to assess the water balance.Results show that extracting a minimum of 16.2 m^(3)/day from the sand storage and 30 m^(3)/day from the aquifer was possible without affecting the groundwater table and water yield.The average annual catchment recharge was 6%of the precipitation under the baseline simulation.Climate change is projected to reduce the average water yield and groundwater recharge by 26%and 19%,respectively.However,the water supply-demand is significantly small compared to the exploitable rate of water in the area.This study was based on limited data,and therefore the findings need to be interpreted with caution,though the model output was validated using satellite products.Construction of a series of sand dams is suggested to maximize the benefit under the potential climate change and water supply-demand increase.
出处 《International Soil and Water Conservation Research》 SCIE CSCD 2022年第2期293-307,共15页 国际水土保持研究(英文)
基金 the Korea Ministry of Environment(MOE)as a Demand Responsive Water Supply Service Program(146515).
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  • 1Shrestha S, Babel M S, Gupta A D, Kazama F. Evaluation of annualized agricultural nonpoint source model for a watershed in the siwalik hills of Nepal. Environmental Modelling & Software, 2006, 21(7): 961-975.
  • 2Wischmeir W H, Smith D D. Predicting rainfall erosion losses. Agricultural Flandbook, 1978.
  • 3Knisel W G. CREAMS, A field scale model for chemical, runoff and erosion from agricultural management systems. Conservation Report, 1980.
  • 4Beasley D B, Huggins L F, Monke E J. ANSWERS: A model for watershed planning. Transactions of the ASAE. American Society of Agricultural Engineers, 1980, 23(4): 938-944.
  • 5Williams J R. SPNM, a model for predicting sediment, phosphorus, and nitrogen yields from agricultural basins. Water Resources Bulletin, 1980, 16: 843-848.
  • 6Williams J R, Dyke P T, Jones C A. EPIC-A model for assessing the effects of erosion and soil productivity. In: Proceedings of the Third International Conference on State-of-the Art in Ecological Modeling. 1982, 156-158.
  • 7Williams J R, Nicks A D, Arnold J G. SWRRB: simulator for water resources in rural basins. ASCE Hydraulics Journal, 1985, 111(6): 970-986.
  • 8Leonard R A, Knisel W G, Still D A. GLEAMS: groundwater loading effects of agricultural management systems. Transactions of the ASAE. American Society of Agricultural Engineers, 1987, 30(5): 1403-1418.
  • 9Lim K J, Engel B A. Extension and enhancement of national agricultural pesticide risk analysis (NAPRA) WWW Decision Support System to Include Nutrients. Computers and Electronics in Agriculture, 2003, 38(3): 227-236.
  • 10Lane L J, Nearing M A. USDA - Water erosion prediction project: Hillslope profile model documentation. NSERL Report, 1989.

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