4.7 Article

Tropical African wildfire aerosols trigger teleconnections over mid-to-high latitudes of Northern Hemisphere in January

Journal

ENVIRONMENTAL RESEARCH LETTERS
Volume 16, Issue 3, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/1748-9326/abe433

Keywords

African wildfire aerosol; teleconnection; black carbon; Europe land surface warming

Funding

  1. National Natural Science Foundation of China [42005155]
  2. US Department of Energy (DOE)'s office of Science as part of the Regional and Global Climate Modeling Program (NSF-DOE-USDA EaSM2)
  3. DOE [DE-AC05-76RL01830]

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This study investigates the impacts of African wildfire aerosols on the Northern Hemispheric in January. It found that wildfire aerosols emitted from equatorial Africa caused atmospheric Rossby wave trains to propagate into Europe and Asia, primarily due to the solar absorption of black carbon. The study emphasizes the profound climate effects of wildfire aerosols, especially absorbing aerosols, on remote regions.
This study investigates the impacts of African wildfire aerosols (primary organic carbon, black carbon and sulfate) on the Northern Hemispheric in January. We found that wildfire aerosols emitted from equatorial Africa result in two mid-to-high latitudes atmospheric Rossby wave trains. One is from subtropical Atlantic propagating northeastward across Europe to Siberia, and the other one propagates eastward from Middle East across Asia to Pacific Northwest. The maximum positive geopotential height anomaly locates in Europe, concurrent with a greater-than-2 K land surface warming. These Rossby wave trains are excited by the atmospheric heating that caused by the wildfire aerosols in equatorial Africa and propagate into extratropics with the help of the westerly jet. Based on the diabatic heat budget analysis, the Rossby wave source is primarily from the solar absorption of black carbon of African wildfire. The present study emphasizes that wildfire aerosols, especial the absorbing aerosols, would have profound climate effects on remote regions and thus need more attentions.

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