Energetic Constraints on the Width of the Intertropical Convergence Zone

The intertropical convergence zone (ITCZ) has been the focus of considerable research in recent years, with much of this work concerned with how the latitude of maximum tropical precipitation responds to natural climate variability and to radiative forcing. The width of the ITCZ, however, has receiv...

Full description

Bibliographic Details
Main Authors: Byrne, M, Schneider, T
Format: Journal article
Published: American Meteorological Society 2016
_version_ 1797052201528459264
author Byrne, M
Schneider, T
author_facet Byrne, M
Schneider, T
author_sort Byrne, M
collection OXFORD
description The intertropical convergence zone (ITCZ) has been the focus of considerable research in recent years, with much of this work concerned with how the latitude of maximum tropical precipitation responds to natural climate variability and to radiative forcing. The width of the ITCZ, however, has received little attention despite its importance for regional climate and for understanding the general circulation of the atmosphere. This paper investigates the ITCZ width in simulations with an idealized general circulation model over a wide range of climates. The ITCZ, defined as the tropical region where there is time-mean ascent, displays rich behavior as the climate varies, widening with warming in cool climates, narrowing in temperate climates, and maintaining a relatively constant width in hot climates. The mass and energy budgets of the Hadley circulation are used to derive expressions for the area of the ITCZ relative to the area of the neighboring descent region, and for the sensitivity of the ITCZ area to changes in climate. The ITCZ width depends primarily on four quantities: the net energy input to the tropical atmosphere, the advection of moist static energy by the Hadley circulation, the transport of moist static energy by transient eddies, and the gross moist stability. Different processes are important for the ITCZ width in different climates, with changes in gross moist stability generally having a weak influence relative to the other processes. The results are likely to be useful for analyzing the ITCZ width in complex climate models and for understanding past and future climate change in the tropics
first_indexed 2024-03-06T18:29:08Z
format Journal article
id oxford-uuid:0907c34e-8bd0-4dd7-8922-9fbaaa986cfe
institution University of Oxford
last_indexed 2024-03-06T18:29:08Z
publishDate 2016
publisher American Meteorological Society
record_format dspace
spelling oxford-uuid:0907c34e-8bd0-4dd7-8922-9fbaaa986cfe2022-03-26T09:16:03ZEnergetic Constraints on the Width of the Intertropical Convergence ZoneJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:0907c34e-8bd0-4dd7-8922-9fbaaa986cfeSymplectic Elements at OxfordAmerican Meteorological Society2016Byrne, MSchneider, TThe intertropical convergence zone (ITCZ) has been the focus of considerable research in recent years, with much of this work concerned with how the latitude of maximum tropical precipitation responds to natural climate variability and to radiative forcing. The width of the ITCZ, however, has received little attention despite its importance for regional climate and for understanding the general circulation of the atmosphere. This paper investigates the ITCZ width in simulations with an idealized general circulation model over a wide range of climates. The ITCZ, defined as the tropical region where there is time-mean ascent, displays rich behavior as the climate varies, widening with warming in cool climates, narrowing in temperate climates, and maintaining a relatively constant width in hot climates. The mass and energy budgets of the Hadley circulation are used to derive expressions for the area of the ITCZ relative to the area of the neighboring descent region, and for the sensitivity of the ITCZ area to changes in climate. The ITCZ width depends primarily on four quantities: the net energy input to the tropical atmosphere, the advection of moist static energy by the Hadley circulation, the transport of moist static energy by transient eddies, and the gross moist stability. Different processes are important for the ITCZ width in different climates, with changes in gross moist stability generally having a weak influence relative to the other processes. The results are likely to be useful for analyzing the ITCZ width in complex climate models and for understanding past and future climate change in the tropics
spellingShingle Byrne, M
Schneider, T
Energetic Constraints on the Width of the Intertropical Convergence Zone
title Energetic Constraints on the Width of the Intertropical Convergence Zone
title_full Energetic Constraints on the Width of the Intertropical Convergence Zone
title_fullStr Energetic Constraints on the Width of the Intertropical Convergence Zone
title_full_unstemmed Energetic Constraints on the Width of the Intertropical Convergence Zone
title_short Energetic Constraints on the Width of the Intertropical Convergence Zone
title_sort energetic constraints on the width of the intertropical convergence zone
work_keys_str_mv AT byrnem energeticconstraintsonthewidthoftheintertropicalconvergencezone
AT schneidert energeticconstraintsonthewidthoftheintertropicalconvergencezone