Seasonal evolution of the albedo of multiyear Arctic sea ice

Donald K. Perovich, Thomas C. Grenfell, Bonnie Light, P. V. Hobbs

Journal of Geophysical Research Atmospheres · 2002 · 614 citations · 30 references

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TL;DR

The study measured spectral and wavelength‑integrated albedo of multiyear Arctic sea ice during the SHEBA field experiment to investigate ice‑albedo feedback. Albedo was sampled every 2.5 m along a 200‑m transect from April to October, providing high‑resolution spatial and temporal coverage. Albedo declined from 0.8–0.9 in April to 0.4 by late July, exhibiting five distinct seasonal phases, strong spatial variability, and good agreement with aircraft measurements and a simplified seasonal model.

Abstract

As part of ice albedo feedback studies during the Surface Heat Budget of the Arctic Ocean (SHEBA) field experiment, we measured spectral and wavelength‐integrated albedo on multiyear sea ice. Measurements were made every 2.5 m along a 200‐m survey line from April through October. Initially, this line was completely snow covered, but as the melt season progressed, it became a mixture of bare ice and melt ponds. Observed changes in albedo were a combination of a gradual evolution due to seasonal transitions and abrupt shifts resulting from synoptic weather events. There were five distinct phases in the evolution of albedo: dry snow, melting snow, pond formation, pond evolution, and fall freeze‐up. In April the surface albedo was high (0.8–0.9) and spatially uniform. By the end of July the average albedo along the line was 0.4, and there was significant spatial variability, with values ranging from 0.1 for deep, dark ponds to 0.65 for bare, white ice. There was good agreement between surface‐based albedos and measurements made from the University of Washington's Convair‐580 research aircraft. A comparison between net solar irradiance computed using observed albedos and a simplified model of seasonal evolution shows good agreement as long as the timing of the transitions is accurately determined.

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