Observing the timescales of aerosol-cloud interactions in snapshot satellite images
File(s)Observing the timescales of aerosol–cloud.pdf (9.36 MB)
Published version
Author(s)
Gryspeerdt, Edward
Goren, Tom
Smith, Tristan
Type
Journal Article
Abstract
The response of cloud processes to an aerosol perturbation is one of the largest uncertainties in the anthropogenic forcing of the climate. It occurs at a variety of timescales, from the near-instantaneous Twomey effect to the longer timescales required for cloud adjustments. Understanding the temporal evolution of cloud properties following an aerosol perturbation is necessary to interpret the results of so-called “natural experiments” from a known aerosol source such as a ship or industrial site. This work uses reanalysis wind fields and ship emission information matched to observations of ship tracks to measure the timescales of cloud responses to aerosol in instantaneous (or“snapshot”) images taken by polar-orbiting satellites.
As in previous studies, the local meteorological environment is shown to have a strong impact on the occurrence and properties of ship tracks, but there is a strong time dependence in their properties. The largest droplet number concentration (Nd) responses are found within 3 h of emission, while cloud adjustments continue to evolve over periods of 10 h or more. Cloud fraction is increased within the early life of ship tracks, with the formation of ship tracks in otherwise clear skies indicating that around 5 %–10 % of clear-sky cases in this region may be aerosol-limited.
The liquid water path (LWP) enhancement and the Nd–LWP sensitivity are also time dependent and strong functions of the background cloud and meteorological state. The near-instant response of the LWP within ship tracks may be evidence of a bias in estimates of the LWP response to aerosol derived from natural experiments. These results highlight the importance of temporal development and the background cloud field for quantifying the aerosol impact on clouds, even in situations where the aerosol perturbation is clear.
As in previous studies, the local meteorological environment is shown to have a strong impact on the occurrence and properties of ship tracks, but there is a strong time dependence in their properties. The largest droplet number concentration (Nd) responses are found within 3 h of emission, while cloud adjustments continue to evolve over periods of 10 h or more. Cloud fraction is increased within the early life of ship tracks, with the formation of ship tracks in otherwise clear skies indicating that around 5 %–10 % of clear-sky cases in this region may be aerosol-limited.
The liquid water path (LWP) enhancement and the Nd–LWP sensitivity are also time dependent and strong functions of the background cloud and meteorological state. The near-instant response of the LWP within ship tracks may be evidence of a bias in estimates of the LWP response to aerosol derived from natural experiments. These results highlight the importance of temporal development and the background cloud field for quantifying the aerosol impact on clouds, even in situations where the aerosol perturbation is clear.
Date Issued
2021-04-26
Date Acceptance
2021-02-23
Citation
Atmospheric Chemistry and Physics, 2021, 21 (8), pp.6093-6109
ISSN
1680-7316
Publisher
Copernicus Publications
Start Page
6093
End Page
6109
Journal / Book Title
Atmospheric Chemistry and Physics
Volume
21
Issue
8
Copyright Statement
© Author(s) 2021. This work is distributed under the Creative Commons Attribution 4.0 License.
License URL
Sponsor
Royal Society
Identifier
https://acp.copernicus.org/articles/21/6093/2021/
Grant Number
URF\R1\191602
Subjects
Science & Technology
Life Sciences & Biomedicine
Physical Sciences
Environmental Sciences
Meteorology & Atmospheric Sciences
Environmental Sciences & Ecology
Meteorology & Atmospheric Sciences
0201 Astronomical and Space Sciences
0401 Atmospheric Sciences
Publication Status
Published
Coverage Spatial
Online
Date Publish Online
2021-04-26