Role of updraft velocity in temporal variability of global cloud hydrometeor number

Author:

Sullivan Sylvia C.,Lee Dongmin,Oreopoulos LazarosORCID,Nenes Athanasios

Abstract

Understanding how dynamical and aerosol inputs affect the temporal variability of hydrometeor formation in climate models will help to explain sources of model diversity in cloud forcing, to provide robust comparisons with data, and, ultimately, to reduce the uncertainty in estimates of the aerosol indirect effect. This variability attribution can be done at various spatial and temporal resolutions with metrics derived from online adjoint sensitivities of droplet and crystal number to relevant inputs. Such metrics are defined and calculated from simulations using the NASA Goddard Earth Observing System Model, Version 5 (GEOS-5) and the National Center for Atmospheric Research Community Atmosphere Model Version 5.1 (CAM5.1). Input updraft velocity fluctuations can explain as much as 48% of temporal variability in output ice crystal number and 61% in droplet number in GEOS-5 and up to 89% of temporal variability in output ice crystal number in CAM5.1. In both models, this vertical velocity attribution depends strongly on altitude. Despite its importance for hydrometeor formation, simulated vertical velocity distributions are rarely evaluated against observations due to the sparsity of relevant data. Coordinated effort by the atmospheric community to develop more consistent, observationally based updraft treatments will help to close this knowledge gap.

Funder

National Aeronautics and Space Administration

DOE | Office of Under Secretary for Science

Georgia Power Faculty Scholar Chair

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

Reference36 articles.

1. Boucher O (2013) Clouds and aerosols. Climate Change 2013: The physical science basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel On Climate Change, eds Stocker TF, et al. (Cambridge Univ Press, Cambridge, UK), pp 571–658.

2. Radiative Effects of Cloud-Type Variations

3. Intercomparison of the cloud water phase among global climate models;Kormurcu;J Geophys Res,2014

4. Space observations of cold-cloud phase change

5. Influence of cloud phase composition on climate feedbacks;Choi;J Geophys Res,2013

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