Parkinson C L, Cavalieri D J. Antarctic sea ice variability and trends, 1979—2010. The Cryosphere, 2012, 6(4): 871-880, doi: 10. 5194/tc-6-871-2012.
[2]
Bracegirdle T J, Connolley W M, Turner J. Antarctic climate change over the twenty first century. J. Geophys. Res., 2008, 113: D03103, doi: 10.1029/2007JD008933.
[3]
Weiss A I, King J C, Lachlan-Cope T A, et al. Albedo of the ice-covered Weddell and Bellingshausen Sea. The Cryosphere Discuss., 2011, 5(6): 3259-3289.
[4]
World Meteorological Organization. WMO sea-ice nomenclature. Terminology, codes and illustrated glossary, Geneva Secretariat of the World. Meteorological Organization, Technical Report, 1970, 259, 147 pp.
[5]
Grenfell T C, Warren S, Mullen P C. Reflection of solar radiation by the Antarctic snow surface at ultraviolet, visible, and near-infrared wavelengths. J. Geophys. Res., 1994, 99(D9): 18669-18684.
[6]
Curry J A, Schramm J L, Perovich D K, et al. Applications of SHEBA/FIRE data to evaluation of snow/ice albedo parameterizations. J. Geophys. Res., 2001, 106(D14): 15345-15355.
[7]
Perovich D K, Grenfell T C, Light B, et al. Seasonal evolution of the albedo of multiyear Arctic sea ice. J. Geophys. Res., 2002, 107(C10): 8044, doi: 10.1029/2000JC000438.
[8]
Pirazzini R, Vihma T, Granskog M A, et al. Surface albedo measurements over sea ice in the Baltic Sea during the spring snowmelt period. Ann. Glaciol., 2006, 44(1): 7-14.
[9]
Barry R G. The parameterization of surface albedo for sea ice and its snow cover. Prog. Phys. Geogr., 1996, 20(1): 63-79.
[10]
Liu J P, Zhang Z H, Inoued J, et al. Evaluation of snow/ice albedo parameterizations and their impacts on sea ice simulations. Int. J. Climatol., 2007, 27(1): 81-91.
[11]
Kwok R, Rothrock D A. Decline in Arctic sea ice thickness from submarine and ICESat records: 1958—2008. Geophys. Res. Lett., 2009, 36: L15501, doi: 10.1029/2009GL039035.
[12]
Cavalieri D J, Parkinson C L. Arctic sea ice variability and trends, 1979—2010. The Cryosphere, 2012, 6(4): 881-889, doi: 10. 5194/tc-6-881-2012.
[13]
Vihma T, Johansson M M, Launiainen J. Radiative and turbulent surface heat fluxes over sea ice in the Western Weddell Sea in early summer. J. Geophys. Res., 2009, 114: C04019, doi: 10.1029/2008JC004995.
[14]
Wendler G, Moore B, Dissing D, et al. On the radiation characteristics of Antarctic Sea Ice. Atmos.-Ocean, 2000, 38(2): 349-366.
[15]
Massom R A, Hill K L, Lytle V I, et al. Effects of regional fast-ice and iceberg distributions on the behaviour of the Mertz Glacier polynya, East Antarctica. Ann. Glaciol., 2001, 33(1): 391-398.
[16]
Fedotov V I, Cherepanov N V, Tyshko K P. Some feature of the growth, structure and metamorphism of East Antarctic landfast sea ice. Antarctic sea ice physical processes, interactions and variability, Antarct. Res. Ser., AGU, 1998: 141-160. doi: 10.5194/tcd-5-2437-2011.
[17]
Heil P, Gerland S, Granskog M A. An Antarctic monitoring initiative for fast ice and comparison with the Arctic. The Cryosphere Discuss., 2011, 5(5): 2437-2463.
[18]
Lei R B, Li Z J, Cheng B, et al. Annual cycle of landfast sea ice in Prydz Bay, East Antarctica. J. Geophys. Res., 2010, 115: C002006, doi: 10.1029/2008JC005223.
[19]
Grenfell T C, Perovich D K. Spectral albedos of sea ice and incident solar irradiance in the Southern Beaufort Sea. J. Geophys. Res., 1984, 89(C3): 3573-3580.
[20]
Pirazzini R. Surface albedo measurements over Antarctic sites in summer. J. Geophys. Res., 2004, 109: D20118.
[21]
Warren S G. Optical properties of snow. Rev. Geophys., 1982, 20(1): 67-89.
[22]
Bradt R E, Warren S G, Worby A P, et al. Surface Albedo of the Antarctic Sea Ice Zone. J. Climate, 2005, 18(17): 3606-3621.