Impact of Improved Mellor–Yamada Turbulence Model on Tropical Cyclone-Induced Vertical Mixing in the Oceanic Boundary Layer

It has been identified that there are several limitations in the Mellor–Yamada (MY) turbulence model applied to the atmospheric mixed layer, and Nakanishi and Niino proposed an improved MY model using a database for large-eddy simulations. The improved MY model (Mellor–Yamada–Nakanishi–Niino model;...

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Main Authors: Taekyun Kim, Jae-Hong Moon
Format: Article
Language:English
Published: MDPI AG 2020-07-01
Series:Journal of Marine Science and Engineering
Subjects:
Online Access:https://www.mdpi.com/2077-1312/8/7/497
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spelling doaj-d6c8a7b270b4426480c34a44542b66542021-04-02T09:50:33ZengMDPI AGJournal of Marine Science and Engineering2077-13122020-07-01849749710.3390/jmse8070497Impact of Improved Mellor–Yamada Turbulence Model on Tropical Cyclone-Induced Vertical Mixing in the Oceanic Boundary LayerTaekyun Kim0Jae-Hong Moon1Department of Earth and Marine Science, College of Ocean Sciences, Jeju National University, 63243 Jeju, KoreaDepartment of Earth and Marine Science, College of Ocean Sciences, Jeju National University, 63243 Jeju, KoreaIt has been identified that there are several limitations in the Mellor–Yamada (MY) turbulence model applied to the atmospheric mixed layer, and Nakanishi and Niino proposed an improved MY model using a database for large-eddy simulations. The improved MY model (Mellor–Yamada–Nakanishi–Niino model; MYNN model) is popular in atmospheric applications; however, it is rarely used in oceanic applications. In this study, the MY model and the MYNN model are compared to identify the efficiency of the MYNN model incorporated into an ocean general circulation model. To investigate the impact of the improved MY model on the vertical mixing in the oceanic boundary layer, the response of the East/Japan Sea to Typhoon Maemi in 2003 was simulated. After the typhoon event, the sea surface temperature obtained from the MYNN model showed better agreement with the satellite measurements than those obtained from the MY model. The MY model produced an extremely shallow mixed layer, and consequently, the surface temperatures were excessively warm. Furthermore, the near-inertial component of the velocity simulated using the MY model was larger than that simulated using the MYNN model at the surface layer. However, in the MYNN model, the near-inertial waves became larger than those simulated by the MY model at all depths except the surface layer. Comparatively, the MYNN model showed enhanced vertical propagation of the near-inertial activity from the mixed layer into the deep ocean, which results in a temperature decrease at the sea surface and a deepening of the mixed layer.https://www.mdpi.com/2077-1312/8/7/497turbulent mixingimproved Mellor–Yamada turbulence modelocean boundary layertyphoon
collection DOAJ
language English
format Article
sources DOAJ
author Taekyun Kim
Jae-Hong Moon
spellingShingle Taekyun Kim
Jae-Hong Moon
Impact of Improved Mellor–Yamada Turbulence Model on Tropical Cyclone-Induced Vertical Mixing in the Oceanic Boundary Layer
Journal of Marine Science and Engineering
turbulent mixing
improved Mellor–Yamada turbulence model
ocean boundary layer
typhoon
author_facet Taekyun Kim
Jae-Hong Moon
author_sort Taekyun Kim
title Impact of Improved Mellor–Yamada Turbulence Model on Tropical Cyclone-Induced Vertical Mixing in the Oceanic Boundary Layer
title_short Impact of Improved Mellor–Yamada Turbulence Model on Tropical Cyclone-Induced Vertical Mixing in the Oceanic Boundary Layer
title_full Impact of Improved Mellor–Yamada Turbulence Model on Tropical Cyclone-Induced Vertical Mixing in the Oceanic Boundary Layer
title_fullStr Impact of Improved Mellor–Yamada Turbulence Model on Tropical Cyclone-Induced Vertical Mixing in the Oceanic Boundary Layer
title_full_unstemmed Impact of Improved Mellor–Yamada Turbulence Model on Tropical Cyclone-Induced Vertical Mixing in the Oceanic Boundary Layer
title_sort impact of improved mellor–yamada turbulence model on tropical cyclone-induced vertical mixing in the oceanic boundary layer
publisher MDPI AG
series Journal of Marine Science and Engineering
issn 2077-1312
publishDate 2020-07-01
description It has been identified that there are several limitations in the Mellor–Yamada (MY) turbulence model applied to the atmospheric mixed layer, and Nakanishi and Niino proposed an improved MY model using a database for large-eddy simulations. The improved MY model (Mellor–Yamada–Nakanishi–Niino model; MYNN model) is popular in atmospheric applications; however, it is rarely used in oceanic applications. In this study, the MY model and the MYNN model are compared to identify the efficiency of the MYNN model incorporated into an ocean general circulation model. To investigate the impact of the improved MY model on the vertical mixing in the oceanic boundary layer, the response of the East/Japan Sea to Typhoon Maemi in 2003 was simulated. After the typhoon event, the sea surface temperature obtained from the MYNN model showed better agreement with the satellite measurements than those obtained from the MY model. The MY model produced an extremely shallow mixed layer, and consequently, the surface temperatures were excessively warm. Furthermore, the near-inertial component of the velocity simulated using the MY model was larger than that simulated using the MYNN model at the surface layer. However, in the MYNN model, the near-inertial waves became larger than those simulated by the MY model at all depths except the surface layer. Comparatively, the MYNN model showed enhanced vertical propagation of the near-inertial activity from the mixed layer into the deep ocean, which results in a temperature decrease at the sea surface and a deepening of the mixed layer.
topic turbulent mixing
improved Mellor–Yamada turbulence model
ocean boundary layer
typhoon
url https://www.mdpi.com/2077-1312/8/7/497
work_keys_str_mv AT taekyunkim impactofimprovedmelloryamadaturbulencemodelontropicalcycloneinducedverticalmixingintheoceanicboundarylayer
AT jaehongmoon impactofimprovedmelloryamadaturbulencemodelontropicalcycloneinducedverticalmixingintheoceanicboundarylayer
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