Changes in Snow Surface Albedo and Radiative Forcing in the Chilean Central Andes Measured by In Situ and Remote Sensing Data

Author:

Figueroa-Villanueva Luis1,Castro Lina1ORCID,Bolaño-Ortiz Tomás R.2ORCID,Flores Raúl P.1ORCID,Pacheco-Ferrada Diego1ORCID,Cereceda-Balic Francisco34

Affiliation:

1. Departamento de Obras Civiles, Universidad Técnica Federico Santa María, Valparaíso 2340000, Chile

2. School of Natural Resources Engineering, Department of Agricultural Science, Universidad Católica del Maule, Curicó 3466706, Chile

3. Centre for Environmental Technologies (CETAM), Universidad Técnica Federico Santa María, Valparaiso 2340000, Chile

4. Departamento de Química, Universidad Técnica Federico Santa María, Valparaiso 2340000, Chile

Abstract

Snow-covered regions are the main source of reflection of incident shortwave radiation on the Earth’s surface. The deposition of light-absorbing particles on these regions increases the capacity of snow to absorb radiation and decreases surface snow albedo, which intensifies the radiative forcing, leading to accelerated snowmelt and modifications of the hydrologic cycle. In this work, the changes in surface snow albedo and radiative forcing were investigated, induced by light-absorbing particles in the Upper Aconcagua River Basin (Chilean Central Andes) using remote sensing satellite data (MODIS), in situ spectral snow albedo measurements, and the incident shortwave radiation during the austral winter months (May to August) for the 2004–2016 period. To estimate the changes in snow albedo and radiative forcing, two spectral ranges were defined: (i) an enclosed range between 841 and 876 nm, which isolates the effects of black carbon, an important light-absorbing particle derived from anthropogenic activities, and (ii) a broadband range between 300 and 2500 nm. The results indicate that percent variations in snow albedo in the enclosed range are higher than in the broadband range, regardless of the total amount of radiation received, which may be attributed to the presence of light-absorbing particles, as these particles have a greater impact on surface snow albedo at wavelengths in the enclosed band than in the broadband band.

Funder

National Research and Development Agency of Chile

ANID-ANILLO

ANID-FONDECYT REGULAR

ANID-FONDECYT

Centre for Environmental Technologies-Universidad Técnica Federico Santa María

Publisher

MDPI AG

Subject

Water Science and Technology,Aquatic Science,Geography, Planning and Development,Biochemistry

Reference70 articles.

1. Beres, N.D., Lapuerta, M., Cereceda-Balic, F., and Moosmüller, H. (2020). Snow Surface Albedo Sensitivity to Black Carbon: Radiative Transfer Modelling. Atmosphere, 11.

2. Barry, R.G., Armstrong, R., Callaghan, T., Cherry, J., Gearheard, S., Nolin, A., Russell, D., and Zöcler, C. (2007). Global Outlook for Ice & Snow, UNEP.

3. IPCC (2007). Climate Change 2007: Impacts, Adaptation and Vulnerability: Contribution of Working Group II to the Fourth Assessment Report of the Intergovernmental Panel, IPCC.

4. IPCC (2013). Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change, Cambridge University Press.

5. Snow—Atmosphere Coupling Strength. Part II: Albedo Effect Versus Hydrological Effect;Xu;J. Hydrometeorol.,2013

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