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Evaluation of the ECHAM family radiation codes performance in the representation of the solar signal. / Sukhodolov, T.; Rozanov, E.; Anet, J.; Cagnazzo, C.; Peter, T.; Schmutz, W.

в: Geoscientific Model Development, Том 7, № 6, 2014, стр. 2859-2866.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Sukhodolov, T, Rozanov, E, Anet, J, Cagnazzo, C, Peter, T & Schmutz, W 2014, 'Evaluation of the ECHAM family radiation codes performance in the representation of the solar signal', Geoscientific Model Development, Том. 7, № 6, стр. 2859-2866. https://doi.org/10.5194/gmd-7-2859-2014

APA

Sukhodolov, T., Rozanov, E., Anet, J., Cagnazzo, C., Peter, T., & Schmutz, W. (2014). Evaluation of the ECHAM family radiation codes performance in the representation of the solar signal. Geoscientific Model Development, 7(6), 2859-2866. https://doi.org/10.5194/gmd-7-2859-2014

Vancouver

Author

Sukhodolov, T. ; Rozanov, E. ; Anet, J. ; Cagnazzo, C. ; Peter, T. ; Schmutz, W. / Evaluation of the ECHAM family radiation codes performance in the representation of the solar signal. в: Geoscientific Model Development. 2014 ; Том 7, № 6. стр. 2859-2866.

BibTeX

@article{5275fa57f60b43c9944d304c37ea3c68,
title = "Evaluation of the ECHAM family radiation codes performance in the representation of the solar signal",
abstract = "Solar radiation is the main source of energy for the Earth's atmosphere and in many respects defines its composition, photochemistry, temperature profile and dynamics. The magnitude of the solar irradiance variability strongly depends on the wavelength, making difficult its representation in climate models. Due to some deficiencies in the applied radiation codes, several models fail to show a clear response in middle stratospheric heating rates to solar spectral irradiance variability; therefore, it is important to evaluate model performance in this respect before doing multiple runs. In this work we evaluate the performance of three generations of ECHAM (4, 5 and 6) solar radiation schemes by a comparison with the reference high-resolution libRadtran code. We found that all original ECHAM radiation codes miss almost all solar signals in the heating rates in the mesosphere. In the stratosphere the two-band ECHAM4 code (E4) has an almost negligible radiative response to solar irradiance changes and the six-band ECHAM5 code (E5c) reproduces only about half of the reference signal, while representation in the ECHAM6 code (E6) is better - it misses a maximum of about 15% in the upper stratosphere. On the basis of the comparison results we suggest necessary improvements to the ECHAM family codes by the inclusion of available parameterizations of the heating rate due to absorption by oxygen (O-2) and ozone (O-3) Improvement is presented for E5c and E6, and both codes, with the introduced parameterizations, represent the heating rate response to the spectral solar irradiance variability simulated with libRadtran much better without a substantial increase in computer time. The suggested parameterizations are recommended to be applied in the middle-atmosphere version of the ECHAM-5 and 6 models for the study of the solar irradiance influence on climate.",
keywords = "MIDDLE ATMOSPHERE, IRRADIANCE, VARIABILITY, IMPACT, PARAMETERIZATION, CYCLE, MODEL",
author = "T. Sukhodolov and E. Rozanov and J. Anet and C. Cagnazzo and T. Peter and W. Schmutz",
year = "2014",
doi = "10.5194/gmd-7-2859-2014",
language = "Английский",
volume = "7",
pages = "2859--2866",
journal = "Geoscientific Model Development",
issn = "1991-959X",
publisher = "Copernicus GmbH ",
number = "6",

}

RIS

TY - JOUR

T1 - Evaluation of the ECHAM family radiation codes performance in the representation of the solar signal

AU - Sukhodolov, T.

AU - Rozanov, E.

AU - Anet, J.

AU - Cagnazzo, C.

AU - Peter, T.

AU - Schmutz, W.

PY - 2014

Y1 - 2014

N2 - Solar radiation is the main source of energy for the Earth's atmosphere and in many respects defines its composition, photochemistry, temperature profile and dynamics. The magnitude of the solar irradiance variability strongly depends on the wavelength, making difficult its representation in climate models. Due to some deficiencies in the applied radiation codes, several models fail to show a clear response in middle stratospheric heating rates to solar spectral irradiance variability; therefore, it is important to evaluate model performance in this respect before doing multiple runs. In this work we evaluate the performance of three generations of ECHAM (4, 5 and 6) solar radiation schemes by a comparison with the reference high-resolution libRadtran code. We found that all original ECHAM radiation codes miss almost all solar signals in the heating rates in the mesosphere. In the stratosphere the two-band ECHAM4 code (E4) has an almost negligible radiative response to solar irradiance changes and the six-band ECHAM5 code (E5c) reproduces only about half of the reference signal, while representation in the ECHAM6 code (E6) is better - it misses a maximum of about 15% in the upper stratosphere. On the basis of the comparison results we suggest necessary improvements to the ECHAM family codes by the inclusion of available parameterizations of the heating rate due to absorption by oxygen (O-2) and ozone (O-3) Improvement is presented for E5c and E6, and both codes, with the introduced parameterizations, represent the heating rate response to the spectral solar irradiance variability simulated with libRadtran much better without a substantial increase in computer time. The suggested parameterizations are recommended to be applied in the middle-atmosphere version of the ECHAM-5 and 6 models for the study of the solar irradiance influence on climate.

AB - Solar radiation is the main source of energy for the Earth's atmosphere and in many respects defines its composition, photochemistry, temperature profile and dynamics. The magnitude of the solar irradiance variability strongly depends on the wavelength, making difficult its representation in climate models. Due to some deficiencies in the applied radiation codes, several models fail to show a clear response in middle stratospheric heating rates to solar spectral irradiance variability; therefore, it is important to evaluate model performance in this respect before doing multiple runs. In this work we evaluate the performance of three generations of ECHAM (4, 5 and 6) solar radiation schemes by a comparison with the reference high-resolution libRadtran code. We found that all original ECHAM radiation codes miss almost all solar signals in the heating rates in the mesosphere. In the stratosphere the two-band ECHAM4 code (E4) has an almost negligible radiative response to solar irradiance changes and the six-band ECHAM5 code (E5c) reproduces only about half of the reference signal, while representation in the ECHAM6 code (E6) is better - it misses a maximum of about 15% in the upper stratosphere. On the basis of the comparison results we suggest necessary improvements to the ECHAM family codes by the inclusion of available parameterizations of the heating rate due to absorption by oxygen (O-2) and ozone (O-3) Improvement is presented for E5c and E6, and both codes, with the introduced parameterizations, represent the heating rate response to the spectral solar irradiance variability simulated with libRadtran much better without a substantial increase in computer time. The suggested parameterizations are recommended to be applied in the middle-atmosphere version of the ECHAM-5 and 6 models for the study of the solar irradiance influence on climate.

KW - MIDDLE ATMOSPHERE

KW - IRRADIANCE

KW - VARIABILITY

KW - IMPACT

KW - PARAMETERIZATION

KW - CYCLE

KW - MODEL

U2 - 10.5194/gmd-7-2859-2014

DO - 10.5194/gmd-7-2859-2014

M3 - статья

VL - 7

SP - 2859

EP - 2866

JO - Geoscientific Model Development

JF - Geoscientific Model Development

SN - 1991-959X

IS - 6

ER -

ID: 105537583