| Literature DB >> 29371462 |
Jiwen Fan1, Daniel Rosenfeld2, Yuwei Zhang3,4, Scott E Giangrande5, Zhanqing Li4,6, Luiz A T Machado7, Scot T Martin8, Yan Yang3,9, Jian Wang5, Paulo Artaxo10, Henrique M J Barbosa10,11, Ramon C Braga7, Jennifer M Comstock3, Zhe Feng3, Wenhua Gao3,12, Helber B Gomes13, Fan Mei3, Christopher Pöhlker14, Mira L Pöhlker14, Ulrich Pöschl14,15, Rodrigo A F de Souza16.
Abstract
Aerosol-cloud interactions remain the largest uncertainty in climate projections. Ultrafine aerosol particles smaller than 50 nanometers (UAP<50) can be abundant in the troposphere but are conventionally considered too small to affect cloud formation. Observational evidence and numerical simulations of deep convective clouds (DCCs) over the Amazon show that DCCs forming in a low-aerosol environment can develop very large vapor supersaturation because fast droplet coalescence reduces integrated droplet surface area and subsequent condensation. UAP<50 from pollution plumes that are ingested into such clouds can be activated to form additional cloud droplets on which excess supersaturation condenses and forms additional cloud water and latent heating, thus intensifying convective strength. This mechanism suggests a strong anthropogenic invigoration of DCCs in previously pristine regions of the world.Entities:
Year: 2018 PMID: 29371462 DOI: 10.1126/science.aan8461
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728