期刊
ENVIRONMENT INTERNATIONAL
卷 139, 期 -, 页码 -出版社
PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.envint.2020.105680
关键词
North American wildfires; Dry intrusion; Long-range transport; Optical properties; Cloud condensation nuclei activity; Marine low clouds
资金
- Atmospheric System Research (ASR) program [DE-SC0020259]
- Office of Biological and Environmental Research (OBER) of the United States Department of Energy
- Atmospheric Radiation Measurement (ARM) Climate Research Facility
- United States Department of Energy, Office of Science - Office of Biological and Environmental Research
- U.S. Department of Energy's Atmospheric System Research Program [DE-SC0012704]
- Israel Science Foundation [1347/18]
- NASA/HQ
Wildfire is a major source of biomass burning aerosols, which greatly impact Earth climate. Tree species in North America (NA) boreal forests can support high-intensity crown fires, resulting in elevated injection height and longer lifetime (on the order of months) of the wildfire aerosols. Given the long lifetime, the properties of aged NA wildfire aerosols are required to understand and quantify their effects on radiation and climate. Here we present comprehensive characterization of climatically relevant properties, including optical properties and cloud condensation nuclei (CCN) activities of aged NA wildfire aerosols, emitted from the record-breaking Canadian wildfires in August 2017. Despite the extreme injection height of similar to 12 km, some of the wildfire plumes descended into the marine boundary layer in the eastern North Atlantic over a period of similar to 2 weeks, owing to the dry intrusions behind mid-latitude cyclones. The aged wildfire aerosols have high single scattering albedos at 529 nm (omega(529); 0.92-0.95) while low absorption Angstrom exponents (angstrom(abs)) at 464 nm/648 nm (0.7-0.9). In comparison, angstrom(abs) of fresh/slightly aged ones are typically 1.4-3.5. This low angstrom(abs) indicates a nearly complete loss of brown carbon, likely due to bleaching and/or evaporation, during the long-range transport. The nearly complete loss suggests that on global average, direct radiative forcing of BrC may be minor. Combining Mie calculations and the measured aerosol hygroscopicity, volatility and size distributions, we show that the high omega(529) and low angstrom(abs) values are best explained by an external mixture of non-absorbing organic particles and absorbing particles of large BC cores (> similar to 110 nm diameter) with thick non-absorbing coatings. The accelerated descent of the wildfire plume also led to strong increase of CCN concentration at the supersaturation levels representative of marine low clouds. The hygroscopicity parameter, kappa(CCN), of the aged wildfire aerosols varies from 0.2 to 0.4, substantially lower than that of background marine boundary layer aerosols. However, the high fraction of particles with large diameter (i.e., within accumulation size ranges, similar to 100-250 nm) compensates for the low values of., and as a result, the aged NA wildfire aerosols contribute more efficiently to CCN population. These results provide direct evidence that the long-range transported NA wildfires can strongly influence CCN concentration in remote marine boundary layer, therefore the radiative properties of marine low clouds. Given the expected increases of NA wildfire intensity and frequency and regular occurrence of dry intrusion following mid-latitude cyclones, the influence of NA wildfire aerosols on CCN and clouds in remote marine environment need to be further examined.
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