Published September 27, 2006 | Version Published
Journal Article Open

Impact of nonabsorbing anthropogenic aerosols on clear-sky atmospheric absorption

  • 1. ROR icon California Institute of Technology
  • 2. ROR icon Max Planck Institute for Meteorology
  • 3. ROR icon Met Office

Abstract

Absorption of solar radiation by atmospheric aerosol has become recognized as important in regional and global climate. Nonabsorbing, hydrophilic aerosols, such as sulfate, potentially affect atmospheric absorption in opposing ways: first, decreasing absorption through aging initially hydrophobic black carbon (BC) to a hydrophilic state, enhancing its removal by wet scavenging, and consequently decreasing BC lifetime and abundance, and second, increasing absorption through enhancement of the BC absorption efficiency by internal mixing as well as through increasing the amount of diffuse solar radiation in the atmosphere. On the basis of General Circulation Model studies with an embedded microphysical aerosol module we systematically demonstrate the significance of these mechanisms both on the global and regional scales. In remote transport regions, the first mechanism prevails, reducing atmospheric absorption, whereas in the vicinity of source regions, despite enhanced wet scavenging, absorption is enhanced owing to the prevalence of the second mechanisms. Our findings imply that the sulfur to BC emission ratio plays a key role in aerosol absorption.

Additional Information

This research was supported by the NASA Earth Observing System Interdisciplinary Science Program (NASA EOS-IDS) and by the German Ministry for Education and Research (BMBF) under the DEKLIM Project. Olivier Boucher was supported by the Climate Prediction Programme of the UK Department for Environment, Food, and Rural Affairs. The simulations were performed at the German High Performance Computing Centre for Climate- and Earth System Research. We would also like to thank Nicolas Bellouin (Met Office, Exeter, UK) for supporting radiative transfer calculations and Michael Schulz (LSCE, Gif-sur-Yvette, France) for helpful discussions.

Attached Files

Published - JHS543.pdf

Files

JHS543.pdf

Files (7.6 MB)

Name Size
md5:1840a5b569bcb05e91b02ecfbe720e6e
7.6 MB Preview Download

Additional details

Identifiers

Eprint ID
7957
Resolver ID
CaltechAUTHORS:STIgpr06.406

Funding

NASA
Bundesministerium für Bildung und Forschung (BMBF)
Department for Environment, Food, and Rural Affairs (UK)

Dates

Created
2023-02-14
Created from EPrint's datestamp field
Updated
2023-02-15
Created from EPrint's last_modified field