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  4. GTS v1.0: A macrophysics scheme for climate models based on a probability density function
 
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GTS v1.0: A macrophysics scheme for climate models based on a probability density function

Journal
Geoscientific Model Development
Journal Volume
14
Journal Issue
1
Pages
177-204
Date Issued
2021
Author(s)
Shiu C.-J
Wang Y.-C
Hsu H.-H
WEI-TING CHEN  
Pan H.-L
Sun R
Chen Y.-H
Chen C.-A.
DOI
10.5194/gmd-14-177-2021
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85099302743&doi=10.5194%2fgmd-14-177-2021&partnerID=40&md5=9d1262ec0b5a338e1344e63ba3de48ca
https://scholars.lib.ntu.edu.tw/handle/123456789/571823
Abstract
Cloud macrophysics schemes are unique parameterizations for general circulation models. We propose an approach based on a probability density function (PDF) that utilizes cloud condensates and saturation ratios to replace the assumption of critical relative humidity (RH). We test this approach, called the Global Forecast System (GFS) - Taiwan Earth System Model (TaiESM) - Sundqvist (GTS) scheme, using the macrophysics scheme within the Community Atmosphere Model version 5.3 (CAM5.3) framework. Via single-column model results, the new approach simulates the cloud fraction (CF)-RH distributions closer to those of the observations when compared to those of the default CAM5.3 scheme. We also validate the impact of the GTS scheme on global climate simulations with satellite observations. The simulated CF is comparable to CloudSat/Cloud- Aerosol Lidar and Infrared Pathfinder Satellite Observation (CALIPSO) data. Comparisons of the vertical distributions of CF and cloud water content (CWC), as functions of large-scale dynamic and thermodynamic parameters, with the CloudSat/CALIPSO data suggest that the GTS scheme can closely simulate observations. This is particularly noticeable for thermodynamic parameters, such as RH, uppertropospheric temperature, and total precipitable water, implying that our scheme can simulate variation in CF associated with RH more reliably than the default scheme. Changes in CF and CWC would affect climatic fields and large-scale circulation via cloud-radiation interaction. Both climatological means and annual cycles of many of the GTS-simulated variables are improved compared with the default scheme, particularly with respect to water vapor and RH fields. Different PDF shapes in the GTS scheme also significantly affect global simulations. ? 2021 Copernicus GmbH. All rights reserved.
Subjects
CALIPSO; climate modeling; cloud water; CloudSat; global climate; numerical model; probability density function; relative humidity; satellite data; thermodynamics; Taiwan
SDGs

[SDGs]SDG13

Other Subjects
CALIPSO; climate modeling; cloud water; CloudSat; global climate; numerical model; probability density function; relative humidity; satellite data; thermodynamics; Taiwan
Type
journal article

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