Access the full text.
Sign up today, get DeepDyve free for 14 days.
P. Hsu, Tim Li (2012)
Role of the Boundary Layer Moisture Asymmetry in Causing the Eastward Propagation of the Madden-Julian Oscillation*Journal of Climate, 25
(2018)
Fundamentals of tropical climate dynamics, Text Book. Springer, pp 1–229
Lu Wang, Tim Li, T. Nasuno (2018)
Impact of Rossby and Kelvin Wave Components on MJO Eastward PropagationJournal of Climate
J. Biello, A. Majda, M. Moncrieff (2007)
Meridional Momentum Flux and Superrotation in the Multiscale IPESD MJO ModelJournal of the Atmospheric Sciences, 64
A. Sobel, E. Maloney (2012)
An Idealized Semi-Empirical Framework for Modeling the Madden–Julian OscillationJournal of the Atmospheric Sciences, 69
Charles Jones, B. Weare (1996)
The role of low-level moisture convergence and ocean latent heat fluxes in the Madden and Julian oscillation : An observational analysis using ISCCP data and ECMWF analysesJournal of Climate, 9
Tianming Li, Bin Wang (1994)
The Influence of Sea Surface Temperature on the Tropical Intraseasonal Oscillation: A Numerical StudyMonthly Weather Review, 122
A. Majda, J. Biello (2004)
A multiscale model for tropical intraseasonal oscillations.Proceedings of the National Academy of Sciences of the United States of America, 101 14
Tim Li, P. Hsu (2017)
Fundamentals of Tropical Climate DynamicsFundamentals of Tropical Climate Dynamics
Fei Liu, Bin Wang (2016)
Effects of moisture feedback in a frictional coupled Kelvin–Rossby wave model and implication in the Madden–Julian oscillation dynamicsClimate Dynamics, 48
B. Moskowitz, C. Bretherton (2000)
An Analysis of Frictional Feedback on a Moist Equatorial Kelvin Mode.Journal of the Atmospheric Sciences, 57
M. Rienecker, Max Suarez, R. Gelaro, R. Todling, J. Bacmeister, E. Liu, M. Bosilovich, Siegfried Schubert, L. Takacs, Gi-Kong Kim, S. Bloom, Junye Chen, Douglas Collins, A. Conaty, A. Silva, Wei Gu, J. Joiner, R. Koster, R. Lucchesi, A. Molod, Tommy Owens, Steven Pawson, P. Pegion, C. Redder, R. Reichle, F. Robertson, Albert Ruddick, M. Sienkiewicz, J. Woollen (2011)
MERRA: NASA’s Modern-Era Retrospective Analysis for Research and ApplicationsJournal of Climate, 24
Xiouhua Fu, Bin Wang (2009)
Critical Roles of the Stratiform Rainfall in Sustaining the Madden–Julian Oscillation: GCM Experiments*Journal of Climate, 22
Bin Wang (1988)
Comments on “An Air–Sea Interaction Model of Intraseasonal Oscillation in the Tropics”Journal of the Atmospheric Sciences, 45
G. Kiladis, M. Wheeler, P. Haertel, K. Straub, P. Roundy (2009)
Convectively coupled equatorial wavesReviews of Geophysics, 47
Bin Wang, Jiukang Chen (1989)
On the zonal‐scale selection and vertical structure of equatorial intraseasonal wavesQuarterly Journal of the Royal Meteorological Society, 115
E. Maloney, D. Hartmann (1998)
Frictional Moisture Convergence in a Composite Life Cycle of the Madden–Julian OscillationJournal of Climate, 11
Á. Adames, Daehyun Kim (2016)
The MJO as a Dispersive, Convectively Coupled Moisture Wave: Theory and ObservationsJournal of the Atmospheric Sciences, 73
G. Zhang, Xiaoliang Song (2009)
Interaction of deep and shallow convection is key to Madden‐Julian Oscillation simulationGeophysical Research Letters, 36
H. Kuo (1974)
Further Studies of the Parameterization of the Influence of Cumulus Convection on Large-Scale FlowJournal of the Atmospheric Sciences, 31
Tim Li, C. Zhou (2009)
Planetary Scale Selection of the Madden–Julian Oscillation*Journal of the Atmospheric Sciences, 66
Tim Li (2014)
Recent advance in understanding the dynamics of the Madden-Julian oscillationJournal of Meteorological Research, 28
Daehyun Kim, J. Kug, A. Sobel (2014)
Propagating versus Nonpropagating Madden–Julian Oscillation EventsJournal of Climate, 27
H. Hendon, M. Salby (1994)
The Life Cycle of the Madden–Julian OscillationJournal of the Atmospheric Sciences, 51
Chidong Zhang (2005)
Madden‐Julian OscillationReviews of Geophysics, 43
B. Khouider, A. Majda (2006)
A Simple Multicloud Parameterization for Convectively Coupled Tropical Waves. Part I: Linear AnalysisJournal of the Atmospheric Sciences, 63
A. Sobel, E. Maloney (2013)
Moisture Modes and the Eastward Propagation of the MJOJournal of the Atmospheric Sciences, 70
Bin Wang, Tianming Li (1994)
Convective interaction with boundary-layer dynamics in the development of a tropical intraseasonal systemJournal of the Atmospheric Sciences, 51
R. Madden, P. Julian (1971)
Detection of a 40–50 Day Oscillation in the Zonal Wind in the Tropical PacificJournal of the Atmospheric Sciences, 28
B. Khouider, A. Majda (2007)
A Simple Multicloud Parameterization for Convectively Coupled Tropical Waves. Part II: Nonlinear SimulationsJournal of the Atmospheric Sciences, 64
K. Sperber (2003)
Propagation and the Vertical Structure of the Madden Julian OscillationMonthly Weather Review, 131
S. Thual, A. Majda, S. Stechmann (2015)
Asymmetric intraseasonal events in the stochastic skeleton MJO model with seasonal cycleClimate Dynamics, 45
Bin Wang, Tianming Li (1993)
A Simple Tropical Atmosphere Model of Relevance to Short-Term Climate VariationsJournal of the Atmospheric Sciences, 50
B. Mapes (2000)
Convective Inhibition, Subgrid-Scale Triggering Energy, and Stratiform Instability in a Toy Tropical Wave ModelJournal of the Atmospheric Sciences, 57
J. Neelin, I. Held (1987)
Modeling Tropical Convergence Based on the Moist Static Energy BudgetMonthly Weather Review, 115
Xianan Jiang, D. Waliser, P. Xavier, J. Petch, N. Klingaman, S. Woolnough, B. Guan, G. Bellon, T. Crueger, C. DeMott, C. Hannay, Hai Lin, Wenting Hu, Daehyun Kim, C. Lappen, Mong-Ming Lu, Hsi‐Yen Ma, T. Miyakawa, J. Ridout, S. Schubert, J. Scinocca, K. Seo, Eiki Shindo, Xiaoliang Song, C. Stan, W. Tseng, Wanqiu Wang, Tongwen Wu, Xiaoqing Wu, K. Wyser, G. Zhang, Hongyan Zhu (2015)
Vertical structure and physical processes of the Madden‐Julian oscillation: Exploring key model physics in climate simulationsJournal of Geophysical Research: Atmospheres, 120
A. Majda, S. Stechmann (2009)
The skeleton of tropical intraseasonal oscillationsProceedings of the National Academy of Sciences, 106
Tingting Han, Shengping He, Hao Xin, Huijun Wang (2018)
Recent interdecadal shift in the relationship between Northeast China’s winter precipitation and the North Atlantic and Indian OceansClimate Dynamics, 50
Bin Wang (1988)
Dynamics of Tropical Low-Frequency Waves: An Analysis of the Moist Kelvin WaveJournal of the Atmospheric Sciences, 45
Nan Wei, Liming Zhou, Yongjiu Dai (2017)
Evaluation of simulated climatological diurnal temperature range in CMIP5 models from the perspective of planetary boundary layer turbulent mixingClimate Dynamics, 49
Lu Wang, Tim Li, E. Maloney, Bin Wang (2017)
Fundamental Causes of Propagating and Nonpropagating MJOs in MJOTF/GASS ModelsJournal of Climate, 30
W. Chao, Baode Chen (2001)
The Role of Surface Friction in Tropical Intraseasonal OscillationMonthly Weather Review, 129
Bin Wang, Guosen Chen (2017)
A general theoretical framework for understanding essential dynamics of Madden–Julian oscillationClimate Dynamics, 49
D. Dee, S. Uppala, A. Simmons, P. Berrisford, P. Poli, S. Kobayashi, U. Andrae, M. Balmaseda, G. Balsamo, P. Bauer, P. Bechtold, A. Beljaars, L. Berg, J. Bidlot, N. Bormann, C. Delsol, R. Dragani, M. Fuentes, A. Geer, L. Haimberger, S. Healy, H. Hersbach, E. Holm, L. Isaksen, P. Kållberg, M. Köhler, M. Matricardi, A. Mcnally, B. Monge-Sanz, J. Morcrette, B. Park, C. Peubey, P. Rosnay, Christina Tavolato, J. Thepaut, F. Vitart (2011)
The ERA‐Interim reanalysis: configuration and performance of the data assimilation systemQuarterly Journal of the Royal Meteorological Society, 137
E. Maloney (2009)
The Moist Static Energy Budget of a Composite Tropical Intraseasonal Oscillation in a Climate ModelJournal of Climate, 22
A. Gill (1980)
Some simple solutions for heat‐induced tropical circulationQuarterly Journal of the Royal Meteorological Society, 106
Yuntao Wei, Fei Liu, M. Mu, H. Ren (2018)
Planetary scale selection of the Madden–Julian Oscillation in an air-sea coupled dynamic moisture modelClimate Dynamics, 50
N. Lau, K. Lau (1986)
The Structure and Propagation of Intraseasonal Oscillations Appearing in a GFDL General Circulation ModelJournal of the Atmospheric Sciences, 43
T. Knutson, K. Weickmann, J. Kutzbach (1986)
Global-Scale Intraseasonal Oscillations of Outgoing Longwave Radiation and 250 mb Zonal Wind during Northern Hemisphere SummerMonthly Weather Review, 114
M. Wheeler, G. Kiladis (1999)
Convectively Coupled Equatorial Waves: Analysis of Clouds and Temperature in the Wavenumber–Frequency DomainJournal of the Atmospheric Sciences, 56
K. Emanuel (1987)
An Air-Sea Interaction Model of Intraseasonal Oscillations in the TropicsJournal of the Atmospheric Sciences, 44
K. Lau, P. Chan (1985)
Aspects of the 40 50 Day Oscillation during the Northern Summer as Inferred from Outgoing Longwave RadiationMonthly Weather Review, 114
R. Madden, P. Julian (1972)
Description of Global-Scale Circulation Cells in the Tropics with a 40–50 Day PeriodJournal of the Atmospheric Sciences, 29
Chih-Pei Chang, Hock Lim (1988)
Kelvin Wave-CISK: A Possible Mechanism for the 30–50 Day OscillationsJournal of the Atmospheric Sciences, 45
A theoretical model with a single prognostic variable, column-integrated moist static energy (MSE), was constructed to understand the dynamics of MJO eastward propagation and planetary scale selection. A key process in the model is the interaction of MSE-dependent convection with free-atmospheric first, second baroclinic modes and planetary boundary layer. Under a realistic parameter regime, the model reproduces the most unstable mode at zonal wavenumber 1 with a slow eastward phase speed of about 5 ms−1. The slow eastward phase speed in the model arises from the competition of eastward moving MSE tendencies caused by horizontal MSE advection, vertical MSE advection and boundary layer moistening with westward moving tendencies contributed by surface latent heat flux and atmospheric longwave radiative heating. The planetary scale selection is primarily attributed to the phase lag of longwave radiative heating associated with upper-level stratiform clouds that occur in the rear of MJO deep convection.
Climate Dynamics – Springer Journals
Published: Jul 16, 2019
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.