New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models

Climate models still have deficits in reproducing the surface energy and momentum budgets in Arctic regions. One of the reasons is that currently used transfer coefficients occurring in parameterizations of the turbulent fluxes are based on stability functions derived from measurements over land and...

Full description

Bibliographic Details
Published in:Journal of the Atmospheric Sciences
Main Authors: Gryanik, Vladimir M., Lüpkes, Christof, Grachev, A. A., Sidorenko, Dmitry
Format: Article in Journal/Newspaper
Language:unknown
Published: AMER METEOROLOGICAL SOC 2020
Subjects:
Online Access:https://epic.awi.de/id/eprint/52708/
https://hdl.handle.net/10013/epic.79692c43-ffd9-4936-8fec-36baec3fe459
id ftawi:oai:epic.awi.de:52708
record_format openpolar
spelling ftawi:oai:epic.awi.de:52708 2024-09-15T17:54:02+00:00 New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models Gryanik, Vladimir M. Lüpkes, Christof Grachev, A. A. Sidorenko, Dmitry 2020-05-15 https://epic.awi.de/id/eprint/52708/ https://hdl.handle.net/10013/epic.79692c43-ffd9-4936-8fec-36baec3fe459 unknown AMER METEOROLOGICAL SOC Gryanik, V. M. , Lüpkes, C. orcid:0000-0001-6518-0717 , Grachev, A. A. and Sidorenko, D. orcid:0000-0001-8579-6068 (2020) New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models , Journal of the Atmospheric Sciences, 77 (8), pp. 2687-2716 . doi:10.1175/JAS-D-19-0255.1 <https://doi.org/10.1175/JAS-D-19-0255.1> , hdl:10013/epic.79692c43-ffd9-4936-8fec-36baec3fe459 EPIC3Journal of the Atmospheric Sciences, AMER METEOROLOGICAL SOC, 77(8), pp. 2687-2716, ISSN: 0022-4928 Article isiRev 2020 ftawi https://doi.org/10.1175/JAS-D-19-0255.1 2024-06-24T04:24:41Z Climate models still have deficits in reproducing the surface energy and momentum budgets in Arctic regions. One of the reasons is that currently used transfer coefficients occurring in parameterizations of the turbulent fluxes are based on stability functions derived from measurements over land and not over sea ice. An improved parameterization is developed using the Monin–Obukhov similarity theory (MOST) and corresponding stability functions that reproduce measurements over sea ice obtained during the Surface Heat Budget of the Arctic Ocean (SHEBA) campaign. The new stability functions for the stable surface layer represent a modification of earlier ones also based on SHEBA measurements. It is shown that the new functions are superior to the former ones with respect to the representation of the measured relationship between the MOST stability parameter and the bulk Richardson number. Nevertheless, the functions fulfill the same criteria of applicability as the earlier functions and contain, as an extension, a dependence on the neutral-limit turbulent Prandtl number. Applying the new functions we develop an efficient noniterative parameterization of the near-surface turbulent fluxes of momentum and heat with transfer coefficients as a function of the bulk Richardson number (Rib) and roughness parameters. A hierarchy of transfer coefficients is recommended for weather and climate models. They agree better with SHEBA data for strong stability (Rib > 0.1) than previous parameterizations and they agree well with those based on the Businger–Dyer functions in the range Rib < 0.1. Article in Journal/Newspaper Arctic Ocean Sea ice Surface Heat Budget of the Arctic Ocean Alfred Wegener Institute for Polar- and Marine Research (AWI): ePIC (electronic Publication Information Center) Journal of the Atmospheric Sciences 77 8 2687 2716
institution Open Polar
collection Alfred Wegener Institute for Polar- and Marine Research (AWI): ePIC (electronic Publication Information Center)
op_collection_id ftawi
language unknown
description Climate models still have deficits in reproducing the surface energy and momentum budgets in Arctic regions. One of the reasons is that currently used transfer coefficients occurring in parameterizations of the turbulent fluxes are based on stability functions derived from measurements over land and not over sea ice. An improved parameterization is developed using the Monin–Obukhov similarity theory (MOST) and corresponding stability functions that reproduce measurements over sea ice obtained during the Surface Heat Budget of the Arctic Ocean (SHEBA) campaign. The new stability functions for the stable surface layer represent a modification of earlier ones also based on SHEBA measurements. It is shown that the new functions are superior to the former ones with respect to the representation of the measured relationship between the MOST stability parameter and the bulk Richardson number. Nevertheless, the functions fulfill the same criteria of applicability as the earlier functions and contain, as an extension, a dependence on the neutral-limit turbulent Prandtl number. Applying the new functions we develop an efficient noniterative parameterization of the near-surface turbulent fluxes of momentum and heat with transfer coefficients as a function of the bulk Richardson number (Rib) and roughness parameters. A hierarchy of transfer coefficients is recommended for weather and climate models. They agree better with SHEBA data for strong stability (Rib > 0.1) than previous parameterizations and they agree well with those based on the Businger–Dyer functions in the range Rib < 0.1.
format Article in Journal/Newspaper
author Gryanik, Vladimir M.
Lüpkes, Christof
Grachev, A. A.
Sidorenko, Dmitry
spellingShingle Gryanik, Vladimir M.
Lüpkes, Christof
Grachev, A. A.
Sidorenko, Dmitry
New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models
author_facet Gryanik, Vladimir M.
Lüpkes, Christof
Grachev, A. A.
Sidorenko, Dmitry
author_sort Gryanik, Vladimir M.
title New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models
title_short New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models
title_full New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models
title_fullStr New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models
title_full_unstemmed New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models
title_sort new modified and extended stability functions for the stable boundary layer based on sheba and parametrizations of bulk transfer coefficients for climate models
publisher AMER METEOROLOGICAL SOC
publishDate 2020
url https://epic.awi.de/id/eprint/52708/
https://hdl.handle.net/10013/epic.79692c43-ffd9-4936-8fec-36baec3fe459
genre Arctic Ocean
Sea ice
Surface Heat Budget of the Arctic Ocean
genre_facet Arctic Ocean
Sea ice
Surface Heat Budget of the Arctic Ocean
op_source EPIC3Journal of the Atmospheric Sciences, AMER METEOROLOGICAL SOC, 77(8), pp. 2687-2716, ISSN: 0022-4928
op_relation Gryanik, V. M. , Lüpkes, C. orcid:0000-0001-6518-0717 , Grachev, A. A. and Sidorenko, D. orcid:0000-0001-8579-6068 (2020) New Modified and Extended Stability Functions for the Stable Boundary Layer based on SHEBA and Parametrizations of Bulk Transfer Coefficients for Climate Models , Journal of the Atmospheric Sciences, 77 (8), pp. 2687-2716 . doi:10.1175/JAS-D-19-0255.1 <https://doi.org/10.1175/JAS-D-19-0255.1> , hdl:10013/epic.79692c43-ffd9-4936-8fec-36baec3fe459
op_doi https://doi.org/10.1175/JAS-D-19-0255.1
container_title Journal of the Atmospheric Sciences
container_volume 77
container_issue 8
container_start_page 2687
op_container_end_page 2716
_version_ 1810430210066087936