Solar radiative transfer in Antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites

We describe and validate a Monte Carlo model to track photons over the full range of solar wavelengths as they travel into optically thick Antarctic blue ice. The model considers both reflection and transmission of radiation at the surface of blue ice, scattering by air bubbles within it, and spectr...

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Published in:The Cryosphere
Main Authors: A. R. D. Smedley, G. W. Evatt, A. Mallinson, E. Harvey
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2020
Subjects:
geo
Online Access:https://doi.org/10.5194/tc-14-789-2020
https://www.the-cryosphere.net/14/789/2020/tc-14-789-2020.pdf
https://doaj.org/article/c2304a2f0dd2437c9a607747072522e0
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spelling fttriple:oai:gotriple.eu:oai:doaj.org/article:c2304a2f0dd2437c9a607747072522e0 2023-05-15T13:40:23+02:00 Solar radiative transfer in Antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites A. R. D. Smedley G. W. Evatt A. Mallinson E. Harvey 2020-03-01 https://doi.org/10.5194/tc-14-789-2020 https://www.the-cryosphere.net/14/789/2020/tc-14-789-2020.pdf https://doaj.org/article/c2304a2f0dd2437c9a607747072522e0 en eng Copernicus Publications doi:10.5194/tc-14-789-2020 1994-0416 1994-0424 https://www.the-cryosphere.net/14/789/2020/tc-14-789-2020.pdf https://doaj.org/article/c2304a2f0dd2437c9a607747072522e0 undefined The Cryosphere, Vol 14, Pp 789-809 (2020) geo envir Journal Article https://vocabularies.coar-repositories.org/resource_types/c_6501/ 2020 fttriple https://doi.org/10.5194/tc-14-789-2020 2023-01-22T18:59:38Z We describe and validate a Monte Carlo model to track photons over the full range of solar wavelengths as they travel into optically thick Antarctic blue ice. The model considers both reflection and transmission of radiation at the surface of blue ice, scattering by air bubbles within it, and spectral absorption due to the ice. The ice surface is treated as planar whilst bubbles are considered to be spherical scattering centres using the Henyey–Greenstein approximation. Using bubble radii and number concentrations that are representative of Antarctic blue ice, we calculate spectral albedos and spectrally integrated downwelling and upwelling radiative fluxes as functions of depth and find that, relative to the incident irradiance, there is a marked subsurface enhancement in the downwelling flux and accordingly also in the mean irradiance. This is due to the interaction between the refractive air–ice interface and the scattering interior and is particularly notable at blue and UV wavelengths which correspond to the minimum of the absorption spectrum of ice. In contrast the absorption path length at IR wavelengths is short and consequently the attenuation is more complex than can be described by a simple Lambert–Beer style exponential decay law – instead we present a triple-exponential fit to the net irradiance against depth. We find that there is a moderate dependence on the solar zenith angle and surface conditions such as altitude and cloud optical depth. Representative broadband albedos for blue ice are calculated in the range from 0.585 to 0.621. For macroscopic absorbing inclusions we observe both geometry- and size-dependent self-shadowing that reduces the fractional irradiance incident on an inclusion's surface. Despite this, the inclusions act as local photon sinks and are subject to fluxes that are several times the magnitude of the single-scattering contribution. Such enhancement may have consequences for the energy budget in regions of the cryosphere where particulates are present near the surface. ... Article in Journal/Newspaper Antarc* Antarctic The Cryosphere Unknown Antarctic The Cryosphere 14 3 789 809
institution Open Polar
collection Unknown
op_collection_id fttriple
language English
topic geo
envir
spellingShingle geo
envir
A. R. D. Smedley
G. W. Evatt
A. Mallinson
E. Harvey
Solar radiative transfer in Antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites
topic_facet geo
envir
description We describe and validate a Monte Carlo model to track photons over the full range of solar wavelengths as they travel into optically thick Antarctic blue ice. The model considers both reflection and transmission of radiation at the surface of blue ice, scattering by air bubbles within it, and spectral absorption due to the ice. The ice surface is treated as planar whilst bubbles are considered to be spherical scattering centres using the Henyey–Greenstein approximation. Using bubble radii and number concentrations that are representative of Antarctic blue ice, we calculate spectral albedos and spectrally integrated downwelling and upwelling radiative fluxes as functions of depth and find that, relative to the incident irradiance, there is a marked subsurface enhancement in the downwelling flux and accordingly also in the mean irradiance. This is due to the interaction between the refractive air–ice interface and the scattering interior and is particularly notable at blue and UV wavelengths which correspond to the minimum of the absorption spectrum of ice. In contrast the absorption path length at IR wavelengths is short and consequently the attenuation is more complex than can be described by a simple Lambert–Beer style exponential decay law – instead we present a triple-exponential fit to the net irradiance against depth. We find that there is a moderate dependence on the solar zenith angle and surface conditions such as altitude and cloud optical depth. Representative broadband albedos for blue ice are calculated in the range from 0.585 to 0.621. For macroscopic absorbing inclusions we observe both geometry- and size-dependent self-shadowing that reduces the fractional irradiance incident on an inclusion's surface. Despite this, the inclusions act as local photon sinks and are subject to fluxes that are several times the magnitude of the single-scattering contribution. Such enhancement may have consequences for the energy budget in regions of the cryosphere where particulates are present near the surface. ...
format Article in Journal/Newspaper
author A. R. D. Smedley
G. W. Evatt
A. Mallinson
E. Harvey
author_facet A. R. D. Smedley
G. W. Evatt
A. Mallinson
E. Harvey
author_sort A. R. D. Smedley
title Solar radiative transfer in Antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites
title_short Solar radiative transfer in Antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites
title_full Solar radiative transfer in Antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites
title_fullStr Solar radiative transfer in Antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites
title_full_unstemmed Solar radiative transfer in Antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites
title_sort solar radiative transfer in antarctic blue ice: spectral considerations, subsurface enhancement, inclusions, and meteorites
publisher Copernicus Publications
publishDate 2020
url https://doi.org/10.5194/tc-14-789-2020
https://www.the-cryosphere.net/14/789/2020/tc-14-789-2020.pdf
https://doaj.org/article/c2304a2f0dd2437c9a607747072522e0
geographic Antarctic
geographic_facet Antarctic
genre Antarc*
Antarctic
The Cryosphere
genre_facet Antarc*
Antarctic
The Cryosphere
op_source The Cryosphere, Vol 14, Pp 789-809 (2020)
op_relation doi:10.5194/tc-14-789-2020
1994-0416
1994-0424
https://www.the-cryosphere.net/14/789/2020/tc-14-789-2020.pdf
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container_title The Cryosphere
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container_issue 3
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