Ensemble of CMIP6 derived reference and potential evapotranspiration with radiative and advective components

被引:13
作者
Bjarke, Nels [1 ]
Barsugli, Joseph [2 ,3 ]
Livneh, Ben [1 ,2 ]
机构
[1] Univ Colorado, Civil Environm & Architectural Engn Dept, Boulder, CO 80309 USA
[2] Cooperat Inst Res Environm Sci, Boulder, CO USA
[3] NOAA Phys Sci Lab, Boulder, CO USA
关键词
INTERCOMPARISON PROJECT SCENARIOMIP; VAPOR-PRESSURE DEFICIT; PRIESTLEY-TAYLOR; PENMAN-MONTEITH; CLIMATE-CHANGE; SENSITIVITY; MODEL; EVAPORATION; DROUGHT; TRANSPIRATION;
D O I
10.1038/s41597-023-02290-0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Assessing changes in future aridity requires an understanding of variations in the atmospheric demand for water. Such assessments are often driven by estimations of potential evapotranspiration (ETP) and/or reference evapotranspiration (ET0), yet no comprehensive and validated estimate of these climate metrics exists to date from the Coupled Model Intercomparison Project 6 (CMIP6). Here we describe the development and validation of a published dataset of global monthly estimates of the Penman-Monteith derived ET0, its advective and radiation components, Priestley-Taylor derived ETP, and vapor pressure deficit from 16 CMIP6 projections and four emissions scenarios. Historical validation of the ensemble of CMIP6 evaporative demand shows general agreement with observationally-derived baselines of ET0 and ETP from the Climate Research Unit (CRU) and ERA5-Land reanalysis products, with GCM biases driven primarily by regional differences in modeled humidity and advective contributions to ET0. Overall, evaporative demand is projected to increase across all emissions scenarios, with the largest increases over polar regions, and with a larger contribution from advection particularly for regions with higher baseline ET0.
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页数:12
相关论文
共 65 条
[1]   Effect of retreating sea ice on Arctic cloud cover in simulated recent global warming [J].
Abe, Manabu ;
Nozawa, Toru ;
Ogura, Tomoo ;
Takata, Kumiko .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (22) :14343-14356
[2]  
Allen R. G., 1998, FAO Irrigation and Drainage Paper
[3]   FAO-24 REFERENCE EVAPOTRANSPIRATION FACTORS [J].
ALLEN, RG ;
PRUITT, WO .
JOURNAL OF IRRIGATION AND DRAINAGE ENGINEERING, 1991, 117 (05) :758-774
[4]   OPERATIONAL ESTIMATES OF REFERENCE EVAPOTRANSPIRATION [J].
ALLEN, RG ;
JENSEN, ME ;
WRIGHT, JL ;
BURMAN, RD .
AGRONOMY JOURNAL, 1989, 81 (04) :650-662
[5]   Relative humidity of vapor pressure deficit [J].
Anderson, DB .
ECOLOGY, 1936, 17 (02) :277-282
[6]  
[Anonymous], 1998, CROP EVAPOTRANSPIRAT
[7]   High-resolution global grids of revised Priestley-Taylor and Hargreaves-Samani coefficients for assessing ASCE-standardized reference crop evapotranspiration and solar radiation` [J].
Aschonitis, Vassilis G. ;
Papamichail, Dimitris ;
Demertzi, Kleoniki ;
Colombani, Nicolo ;
Mastrocicco, Micol ;
Ghirardini, Andrea ;
Castaldelli, Giuseppe ;
Fano, Elisa-Anna .
EARTH SYSTEM SCIENCE DATA, 2017, 9 (02) :615-638
[8]   Risk Analysis of Water Demand for Agricultural Crops under Climate Change [J].
Ashofteh, Parisa-Sadat ;
Bozorg-Haddad, Omid ;
Marino, Miguel A. .
JOURNAL OF HYDROLOGIC ENGINEERING, 2015, 20 (04)
[9]   A Global Assessment of Runoff Sensitivity to Changes in Precipitation, Potential Evaporation, and Other Factors [J].
Berghuijs, Wouter R. ;
Larsen, Joshua R. ;
van Emmerik, Tim H. M. ;
Woods, Ross A. .
WATER RESOURCES RESEARCH, 2017, 53 (10) :8475-8486
[10]   SENSITIVITY ANALYSIS OF THE PENMAN-MONTEITH ACTUAL EVAPOTRANSPIRATION ESTIMATES [J].
BEVEN, K .
JOURNAL OF HYDROLOGY, 1979, 44 (3-4) :169-190