Change in Hydrological Regimes and Extremes from the Impact of Climate Change in the Largest Tributary of the Tonle Sap Lake Basin

被引:4
作者
Sok, Ty [1 ]
Ich, Ilan [1 ]
Tes, Davin [1 ]
Chan, Ratboren [1 ]
Try, Sophal [1 ,2 ]
Song, Layheang [1 ]
Ket, Pinnara [1 ]
Khem, Sothea [3 ]
Oeurng, Chantha [1 ]
机构
[1] Inst Technol Cambodia, Fac Hydrol & Water Resources Engn, Russian 6 Federat Blvd,POB 86, Phnom Penh, Cambodia
[2] Kyoto Univ, Disaster Prevent Res Inst, Innovat Disaster Prevent Technol & Policy Res Lab, Uji 6110011, Japan
[3] Reg Flood & Drought Management Ctr, Mekong River Commiss Secretariat MRCS, POB 623, Phnom Penh, Cambodia
关键词
hydrological alternation; hydrological extreme; climate change; Tonle Sap Lake basin; SWAT model; RIVER-BASIN; WATER-RESOURCES; BIAS CORRECTION; UNCERTAINTY; MODELS; SWAT; SIMULATIONS; STREAMFLOW; SCENARIOS; RUNOFF;
D O I
10.3390/w14091426
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The Tonle Sap Lake (TSL) Basins of the Lower Mekong are one of the world's most productive ecosystems and have recently been disturbed by climate change. The SWAT (Soil & Water Assessment Tool) hydrological model is utilized to investigate the effect of future climate scenarios. This study focused on two climate scenarios (RCP2.6 and RCP8.5) with three GCMs (GFDL-CM3, GISS-E2-R-CC, and IPSL-CM5A-MR) and their impact on the hydrological process and extremes in the Sen River Basin, the largest tributary of the TSL basin. The annual precipitation, surface runoff, lateral flow, groundwater flow, and total water yield are projected to decrease in both the near-future (2020-2040) and mid-future period (2050-2070), while actual evapotranspiration is projected to increase by 3.3% and 5.3%. Monthly precipitation is projected to increase by 11.2% during the rainy season and decrease by 7.5% during the dry season. Two climate models (GISS and IPSL model) lead to decreases in 1-day, 3-day, 7-day, 30-day, and 90-day maximum flows and minimum flows flow. Thus, the prediction results depend on the climate model used.
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页数:21
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共 70 条
  • [1] Andréasson J, 2004, AMBIO, V33, P228, DOI 10.1579/0044-7447-33.4.228
  • [2] Ang Raksmey, 2018, Water Science, V32, P89, DOI 10.1016/j.wsj.2017.12.002
  • [3] [Anonymous], 2010, 2010 STAT BAS REP, DOI DOI 10.52107/MRC.AJHYRF
  • [4] The impacts of climate change on river flow regimes at the global scale
    Arnell, Nigel W.
    Gosling, Simon N.
    [J]. JOURNAL OF HYDROLOGY, 2013, 486 : 351 - 364
  • [5] Climate change and global water resources
    Arnell, NW
    [J]. GLOBAL ENVIRONMENTAL CHANGE-HUMAN AND POLICY DIMENSIONS, 1999, 9 : S31 - S49
  • [6] Effects of IPCCSRES emissions scenarios on river runoff: a global perspective
    Arnell, NW
    [J]. HYDROLOGY AND EARTH SYSTEM SCIENCES, 2003, 7 (05) : 619 - 641
  • [7] Arnold JG, 2012, T ASABE, V55, P1491
  • [8] Evaluation and application of a SWAT model to assess the climate change impact on the hydrology of the Himalayan River Basin
    Bhatta, Binod
    Shrestha, Sangam
    Shrestha, Pallav K.
    Talchabhadel, Rocky
    [J]. CATENA, 2019, 181
  • [9] The State and Fate of Himalayan Glaciers
    Bolch, T.
    Kulkarni, A.
    Kaab, A.
    Huggel, C.
    Paul, F.
    Cogley, J. G.
    Frey, H.
    Kargel, J. S.
    Fujita, K.
    Scheel, M.
    Bajracharya, S.
    Stoffel, M.
    [J]. SCIENCE, 2012, 336 (6079) : 310 - 314
  • [10] Comparison and evaluation of multiple GCMs, statistical downscaling and hydrological models in the study of climate change impacts on runoff
    Chen, Hua
    Xu, Chong-Yu
    Guo, Shenglian
    [J]. JOURNAL OF HYDROLOGY, 2012, 434 : 36 - 45