Spatio-temporal distribution characteristics and contributing factors of Ea and Ep in Ebinur Lake Basin during 2000-2014
Adilai WUFU, Yusufu MAIMAITI, Yusufujiang RUSULI, Reyilai KADEER, JIANG Hong
1. Institute of Geographical Science and Tourism/Laboratory of Information Integration and Eco-Security, Xinjiang Normal University, 830054, Urumqi, China; 2. Xinjiang Key Laboratory of Lake Environment and Resources in Arid Zone, 830054, Urumqi, China
Abstract:[Background] Water evaporation plays an important role in the hydrological process as it is a major part of the ecological water balance. The evapotranspiration (ET) is the loss of water from the soil both by evaporation and by transpiration from the plants growing thereon. Actual evaporation (Ea) concerns the water evaporation from natural surfaces to the atmosphere. Potential evaporation (Ep) is the amount of water that would be evaporated and transpired if there are sufficient water available. This demand incorporates the energy available for evaporation and the ability of the lower atmosphere to transport evaporated moisture away from the land surface. Therefore, the evaporation can substantially influence on a regional scale the amount and spatial distribution of water resources. In-depth understanding the spatio-temporal distribution and evolution process of evaporation provides scientific basis for basin water resources planning, evaluating the condition of drought, study on ecological water demand, etc. [Methods] The spatio-temporal distribution characteristics and evolution trend of Ea and Ep were studied by linear trend analysis and relative variation ratio using MOD16 product and observation data of meteorological station during 2000-2014 in Ebinur Lake Basin. [Results] 1) Inter-annual variation of Ea and Ep was not obvious during recent 15 years, the mean annual Ea and Ep were 315.76 and 1 555.27 mm respectively, and the great discrepancy between mean annual Ea and Ep showed that the whole study area was in the condition of water shortage and drought. 2) The spatial distribution of Ea was opposite to that of Ep. The northwestern mountain area, Jinghe-Bole Oasis area, western branch of northern Tianshan Mountain and Mayili Mountain area had sufficient water supply, while the most eastern area of Ebinur Lake Basin, all around of Jinghe-Bole oasis suffered from drought and water shortage. 3) Analysis of influencing factors demonstrated that temperature was the most important factor to affecting the spatio-temporal distribution of Ea and Ep in the study area. 4) The evolution trend of Ea was decreasing in the fifteen years, and the area with decreasing trend was accounted for 50% of the total. The evolution trend of Ep was increasing in the fifteen years, and the area with increasing trend was accounted for 48.39% of the total. The evolution trend of decreasing Ea and increasing Ep indicated that the condition of drought was aggravated during 2000-2014 in Ebinur Lake Basin. [Conclusions] According to the spatio-temporal variation and evolution trend of Ea and Ep in Ebinur Lake Basin during 2000-2014, the land surface in Ebinur Lake Basin was drought, and the condition was aggravated year by year.
阿迪来·乌甫1, 玉苏甫·买买提1, 玉素甫江·如素力1,2, 热伊莱·卡得尔1, 姜红1. 2000-2014年艾比湖流域地表Ea与Ep时空分布特征及成因[J]. 中国水土保持科学, 2017, 15(4): 60-67.
Adilai WUFU, Yusufu MAIMAITI, Yusufujiang RUSULI, Reyilai KADEER, JIANG Hong. Spatio-temporal distribution characteristics and contributing factors of Ea and Ep in Ebinur Lake Basin during 2000-2014. SSWC, 2017, 15(4): 60-67.
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