期刊文献+

Light-absorbing Particles in Snow and Ice: Measurement and Modeling of Climatic and Hydrological impact 被引量:19

Light-absorbing Particles in Snow and Ice: Measurement and Modeling of Climatic and Hydrological impact
下载PDF
导出
摘要 Light absorbing particles(LAP, e.g., black carbon, brown carbon, and dust) influence water and energy budgets of the atmosphere and snowpack in multiple ways. In addition to their effects associated with atmospheric heating by absorption of solar radiation and interactions with clouds, LAP in snow on land and ice can reduce the surface reflectance(a.k.a., surface darkening), which is likely to accelerate the snow aging process and further reduces snow albedo and increases the speed of snowpack melt. LAP in snow and ice(LAPSI) has been identified as one of major forcings affecting climate change, e.g.in the fourth and fifth assessment reports of IPCC. However, the uncertainty level in quantifying this effect remains very high. In this review paper, we document various technical methods of measuring LAPSI and review the progress made in measuring the LAPSI in Arctic, Tibetan Plateau and other mid-latitude regions. We also report the progress in modeling the mass concentrations, albedo reduction, radiative forcing, and climatic and hydrological impact of LAPSI at global and regional scales. Finally we identify some research needs for reducing the uncertainties in the impact of LAPSI on global and regional climate and the hydrological cycle. Light absorbing particles(LAP, e.g., black carbon, brown carbon, and dust) influence water and energy budgets of the atmosphere and snowpack in multiple ways. In addition to their effects associated with atmospheric heating by absorption of solar radiation and interactions with clouds, LAP in snow on land and ice can reduce the surface reflectance(a.k.a., surface darkening), which is likely to accelerate the snow aging process and further reduces snow albedo and increases the speed of snowpack melt. LAP in snow and ice(LAPSI) has been identified as one of major forcings affecting climate change, e.g.in the fourth and fifth assessment reports of IPCC. However, the uncertainty level in quantifying this effect remains very high. In this review paper, we document various technical methods of measuring LAPSI and review the progress made in measuring the LAPSI in Arctic, Tibetan Plateau and other mid-latitude regions. We also report the progress in modeling the mass concentrations, albedo reduction, radiative forcing, and climatic and hydrological impact of LAPSI at global and regional scales. Finally we identify some research needs for reducing the uncertainties in the impact of LAPSI on global and regional climate and the hydrological cycle.
出处 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2015年第1期64-91,共28页 大气科学进展(英文版)
基金 supported by the U.S.Department of Energy, Office of Science, Biological and Environmental Research, as part of the Earth System Modeling Program The NASA Modeling, Analysis, and Prediction (MAP) Program by the Science Mission Directorate at NASA Headquarters supported the work contributed by Teppei J.YASUNARI and William K.M.LAU The NASA GEOS-5 simulation was implemented in the system for NASA Center for Climate Simulation (NCCS).M.G.Flanner was partially supported by NSF 1253154 support from the China Scholarship Fund The Pacific Northwest National Laboratory is operated for DOE by Battelle Memorial Institute under contract DE-AC06-76RLO1830
关键词 light-absorbing aerosol snow ice albedo measurement climate modeling hydrological cycle light-absorbing,aerosol,snow,ice,albedo,measurement,climate,modeling,hydrological cycle
  • 相关文献

参考文献228

  • 1Aamaas, B., C. Boggild, F. Stordal, T. Berntsen, K. Holmen, and J. Strom, 2011: Elemental carbon deposition to Svalbard snow from Norwegian settlements and long-range transport. Tellus B, 63(3), 340-351, doi: 10.1111/j.1600-0889.2011.00531.x.
  • 2Adachi, K., and R R. Buseck, 2011: Atmospheric tar balls from biomass burning in Mexico. J. Geophys. Res., 116, D05204, doi: 10.1029/2010JD015102.
  • 3Adachi, K., S. H. Chung, and R R. Buseck, 2010: Shapes of soot aerosol particles and implications for their effects on climate. J. Geophys. Res., 115, D 15206, doi: 10.1029/2009JD012868.
  • 4Albrecht, B. A., 1989: Aerosols, cloud microphysics, and frac- tional cloudiness. Science, 245(4923), 1227-1230.
  • 5Aoki, T., and T. Y. Tanaka, 2008: Effect of the atmospheric aerosol depositions on snow albedo. Tenki, 55(7), 538-547. (in Japanese).
  • 6Aoki, T., and T. Y. Tanaka, 2011: Light absorbing aerosols in snow and ice. Meteorological Research Note (Kisho-Kenkyu Note), No. 222, Yamazaki, K., and Y. Fujiyoshi, Eds., Meteorologi- cal Society of Japan, Tokyo, Japan, 95-106. (in Japanese).
  • 7Aoki, T., T. Aoki, M. Fukabori, and A. Uchiyama, 1999: Numer- ical simulation of the atmospheric effects on snow albedo with a multiple scattering radiative transfer model for the atmosphere-snow system. J. Meteor. Soc. Japan, 77(2), 595 614.
  • 8Aoki, T., T. Aoki, M. Fukabori, A. Hachikubo, Y. Tachibana, and F. Nishio, 2000: Effects of snow physical parameters on spectral albedo and bidirectional reflectance of snow surface. J. Geo- phys. Res., 105(D8), 10 219-10 236, doi: 10.1029/1999JD 901122.
  • 9Aoki, T., A. Hachikubo, and M. Hori, 2003: Effects of snow phys- ical parameters on shortwave broadband albedos. J. Geophys. Res., 108, 4616, doi: 10.1029/2003JD003506.
  • 10Aoki, T., H. Motoyoshi, Y. Kodama, T. J. Yasunari, K. Sugiura, and H. Kobayashi, 2006: Atmospheric aerosol deposition on snow surfaces and its effect on albedo. SOLA, 2, 13-16, doi: 10.2151/sola.2006-004.

同被引文献140

引证文献19

二级引证文献109

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部