Effect of Spatial Variation of Convective Adjustment Time on the Madden–Julian Oscillation: A Theoretical Model Analysis

The observed convective adjustment time (CAT) associated with Madden–Julian Oscillation (MJO) precipitation is found to vary significantly in space. Here, we investigate the effect of different spatial distributions of CAT on MJO precipitation based on the frictional coupled dynamics moisture (FCDM)...

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Main Authors: Hui Wang, Yuntao Wei, Fei Liu
Format: Article
Language:English
Published: MDPI AG 2017-10-01
Series:Atmosphere
Subjects:
Online Access:https://www.mdpi.com/2073-4433/8/10/204
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spelling doaj-8e1b8e45e3124b4fac73de08162e5e052020-11-25T00:51:50ZengMDPI AGAtmosphere2073-44332017-10-0181020410.3390/atmos8100204atmos8100204Effect of Spatial Variation of Convective Adjustment Time on the Madden–Julian Oscillation: A Theoretical Model AnalysisHui Wang0Yuntao Wei1Fei Liu2Earth System Modeling Center and climate dynamics research center, Nanjing University of Information Science and Technology, Nanjing 210044, ChinaKey Laboratory of Ocean Circulation and Waves, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, ChinaEarth System Modeling Center and climate dynamics research center, Nanjing University of Information Science and Technology, Nanjing 210044, ChinaThe observed convective adjustment time (CAT) associated with Madden–Julian Oscillation (MJO) precipitation is found to vary significantly in space. Here, we investigate the effect of different spatial distributions of CAT on MJO precipitation based on the frictional coupled dynamics moisture (FCDM) model. The results show that a large value of CAT tends to decrease the frequency and growth rate of eastward-propagating MJO-like mode in the FCDM model, delaying the occurrence of MJO deep convection and slowing down its eastward propagation. A large phase lag between circulation and convection decreases convective available potential energy (CAPE). In the observations, a small background vertical moisture gradient (BVMG) tends to increase the frequency associated with cold sea surface temperature (SST), while a large value of CAT tends to decrease the frequency. Due to their competing effect, the simulated frequency and phase speed remain the same when the convection moves from a warm to a cold SST region. The convection is heavily suppressed over the cold SST region due to the decreasing growth rate of unstable wavenumber-one mode with smaller BVMG and longer CAT. This theoretical finding should improve our understanding of MJO dynamics and simulation.https://www.mdpi.com/2073-4433/8/10/204Madden–Julian Oscillationconvective adjustment timeconvective relaxation frequencyspatial variationfrictionally coupled dynamics moisture model
collection DOAJ
language English
format Article
sources DOAJ
author Hui Wang
Yuntao Wei
Fei Liu
spellingShingle Hui Wang
Yuntao Wei
Fei Liu
Effect of Spatial Variation of Convective Adjustment Time on the Madden–Julian Oscillation: A Theoretical Model Analysis
Atmosphere
Madden–Julian Oscillation
convective adjustment time
convective relaxation frequency
spatial variation
frictionally coupled dynamics moisture model
author_facet Hui Wang
Yuntao Wei
Fei Liu
author_sort Hui Wang
title Effect of Spatial Variation of Convective Adjustment Time on the Madden–Julian Oscillation: A Theoretical Model Analysis
title_short Effect of Spatial Variation of Convective Adjustment Time on the Madden–Julian Oscillation: A Theoretical Model Analysis
title_full Effect of Spatial Variation of Convective Adjustment Time on the Madden–Julian Oscillation: A Theoretical Model Analysis
title_fullStr Effect of Spatial Variation of Convective Adjustment Time on the Madden–Julian Oscillation: A Theoretical Model Analysis
title_full_unstemmed Effect of Spatial Variation of Convective Adjustment Time on the Madden–Julian Oscillation: A Theoretical Model Analysis
title_sort effect of spatial variation of convective adjustment time on the madden–julian oscillation: a theoretical model analysis
publisher MDPI AG
series Atmosphere
issn 2073-4433
publishDate 2017-10-01
description The observed convective adjustment time (CAT) associated with Madden–Julian Oscillation (MJO) precipitation is found to vary significantly in space. Here, we investigate the effect of different spatial distributions of CAT on MJO precipitation based on the frictional coupled dynamics moisture (FCDM) model. The results show that a large value of CAT tends to decrease the frequency and growth rate of eastward-propagating MJO-like mode in the FCDM model, delaying the occurrence of MJO deep convection and slowing down its eastward propagation. A large phase lag between circulation and convection decreases convective available potential energy (CAPE). In the observations, a small background vertical moisture gradient (BVMG) tends to increase the frequency associated with cold sea surface temperature (SST), while a large value of CAT tends to decrease the frequency. Due to their competing effect, the simulated frequency and phase speed remain the same when the convection moves from a warm to a cold SST region. The convection is heavily suppressed over the cold SST region due to the decreasing growth rate of unstable wavenumber-one mode with smaller BVMG and longer CAT. This theoretical finding should improve our understanding of MJO dynamics and simulation.
topic Madden–Julian Oscillation
convective adjustment time
convective relaxation frequency
spatial variation
frictionally coupled dynamics moisture model
url https://www.mdpi.com/2073-4433/8/10/204
work_keys_str_mv AT huiwang effectofspatialvariationofconvectiveadjustmenttimeonthemaddenjulianoscillationatheoreticalmodelanalysis
AT yuntaowei effectofspatialvariationofconvectiveadjustmenttimeonthemaddenjulianoscillationatheoreticalmodelanalysis
AT feiliu effectofspatialvariationofconvectiveadjustmenttimeonthemaddenjulianoscillationatheoreticalmodelanalysis
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