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contributor authorEidhammer, Trude;Morrison, Hugh;Mitchell, David;Gettelman, Andrew;Erfani, Ehsan
date accessioned2018-01-03T11:00:09Z
date available2018-01-03T11:00:09Z
date copyright10/14/2016 12:00:00 AM
date issued2016
identifier otherjcli-d-16-0050.1.pdf
identifier urihttp://138.201.223.254:8080/yetl1/handle/yetl/4245893
description abstractAbstractThis paper describes a new approach for representing ice microphysics in climate models. In contrast with most previous schemes, this approach does not include separate categories for cloud and precipitating ice and instead uses a single two-moment category to represent all solid hydrometeors. Thus, there is no need for an ice ?autoconversion? size threshold parameter, which has a critical impact on simulated climate in the Community Atmosphere Model (CAM5) yet is poorly constrained by theory or observations. Further, in the new treatment, all ice microphysical processes and parameters, including ice effective radius and mean fall speed, are formulated self-consistently and flexibly based on empirical ice particle mass?size and projected area?size relationships. This means that the scheme can represent the physical coupling between bulk particle density, mean fall speed, and effective radius, which is not possible in current schemes. Two different methods for specifying these relationships based on observations are proposed. The new scheme is tested in global simulations using CAM5. Differences in simulations using the two methods for specifying the mass? and projected area?size relationships, particularly the cloud radiative forcing, are attributable mainly to the effects on mean ice particle fall speed, impacting sedimentation and ice water path. With some tuning of parameters involved in calculating homogeneous freezing it produces a similar climate compared to the simulations using the original CAM5 microphysics. Thus, it can produce a comparable climate while improving the physical basis and self-consistency of ice particle properties and parameters.
publisherAmerican Meteorological Society
titleImprovements in Global Climate Model Microphysics Using a Consistent Representation of Ice Particle Properties
typeJournal Paper
journal volume30
journal issue2
journal titleJournal of Climate
identifier doi10.1175/JCLI-D-16-0050.1
journal fristpage609
journal lastpage629
treeJournal of Climate:;2016:;volume( 030 ):;issue: 002
contenttypeFulltext


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