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contributor authorIl-Ju Moon
contributor authorThomas R. Knutson
contributor authorHye-Ji Kim
contributor authorAlexander V. Babanin
contributor authorJin-Yong Jeong
date accessioned2023-04-12T18:50:43Z
date available2023-04-12T18:50:43Z
date copyright2022/11/17
date issued2022
identifier otherBAMS-D-21-0131.1.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4290341
description abstractTropical cyclones operate as heat engines, deriving energy from the thermodynamic disequilibrium between ocean surfaces and atmosphere. Available energy for the cyclones comes primarily from upper-ocean heat content. Here, we show that eastern North Pacific hurricanes reach a given intensity 15% faster on average than western North Pacific typhoons despite having half the available ocean heat content. Eastern North Pacific hurricanes also intensify on average 16% more with a given ocean energy (i.e., air–sea enthalpy flux) than western North Pacific typhoons. As efficient intensifiers, eastern Pacific hurricanes remain small during their intensification period, tend to stay at lower latitudes, and are affected by relatively lower vertical wind shear, a colder troposphere, and a drier boundary layer. Despite a shallower warm upper-ocean layer in the eastern North Pacific, average hurricane-induced sea surface cooling there is only slightly larger than in the western North Pacific due to the opposing influences of stronger density stratification, smaller size, and related wave-interaction effects. In contrast, western North Pacific typhoons encounter a more favorable oceanic environment for development, but several factors cause typhoons to greatly increase their size during intensification, resulting in a slow and inefficient intensification process. These findings on tropical cyclones’ basin-dependent characteristics contribute toward a better understanding of TC intensification.
publisherAmerican Meteorological Society
titleWhy Do Eastern North Pacific Hurricanes Intensify More and Faster than Their Western-Counterpart Typhoons with Less Ocean Energy?
typeJournal Paper
journal volume103
journal issue11
journal titleBulletin of the American Meteorological Society
identifier doi10.1175/BAMS-D-21-0131.1
journal fristpageE2604
journal lastpageE2627
pageE2604–E2627
treeBulletin of the American Meteorological Society:;2022:;volume( 103 ):;issue: 011
contenttypeFulltext


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