Distributed Energy Balance Flux Modelling of Mass Balances in the Artesonraju Glacier and Discharge in the Basin of Artesoncocha, Cordillera Blanca, Peru

被引:2
作者
Gacha, Maria Fernanda Lozano [1 ]
Koch, Manfred [1 ]
机构
[1] Univ Kassel, Dept Geohydraul & Engn Hydrol, D-34125 Kassel, Germany
关键词
tropical glaciers; Artesonraju; surface energy fluxes; glacier mass balance; discharge; EQUILIBRIUM-LINE; SHALLAP GLACIER; SURFACE-ENERGY; ENSO INFLUENCE; BOLIVIA; CLIMATE; ALBEDO; ZONGO; HEAT;
D O I
10.3390/cli9090143
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
A distributed energy balance model (DEBAM) is applied to estimate the mass balance of the Artesonraju glacier in the Cordillera Blanca (CB), Peru, and to simulate the ensuing discharge into its respective basin, Artesoncocha. The energy balance model calibrations show that, by using seasonal albedos, reasonable results for mass balances and discharge can be obtained, as witnessed by annually aggregated Nash Sutcliffe coefficients (E) of 0.60-0.87 for discharge and of 0.58-0.71 for mass measurements carried out in the period 2004-2007. Mass losses between -1.42 and -0.45 m.w.e. are calculated for that period. The elevation line altitudes (ELAs), which lie between 5009 and 5050 m.a.s.l., are also well simulated, compared to those measured by the Unidad Glaciologica de Recursos Hidricos del Peru (UGRH). It is demonstrated that the net radiation which drives the energy balance and melting processes is mainly affected by the amount of reflected shortwave radiation from the different surfaces. Moreover, the longwave radiation sinks between 63 and 73% of solar radiative energy in the dry season. Further sensitivity studies indicate that the assumed threshold temperature T0 is crucial in mass balance simulations, as it determines the extension of areas with different albedos. An optimal T0 between 2.6 and 3.8 degrees C is deduced from these simulations.
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