Accurate 3-D radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 August 2017
<p>We calculate the variation of spectral solar irradiance in the umbral shadow of the total solar eclipse of 21 August 2017 and compare it to observations. Starting from the Sun's and Moon's positions, we derive a realistic profile of the lunar shadow at the top of the atmosphere, i...
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doaj-c1eb76d8c5b441f69e0ded329aa4824b2020-11-25T01:36:20ZengCopernicus PublicationsAtmospheric Chemistry and Physics1680-73161680-73242020-02-01201961197610.5194/acp-20-1961-2020Accurate 3-D radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 August 2017P. Ockenfuß0C. Emde1B. Mayer2G. Bernhard3Meteorological Institute, Ludwig Maximilian University, Theresienstr. 37, 80333 Munich, GermanyMeteorological Institute, Ludwig Maximilian University, Theresienstr. 37, 80333 Munich, GermanyMeteorological Institute, Ludwig Maximilian University, Theresienstr. 37, 80333 Munich, GermanyBiospherical Instruments Inc., San Diego, CA 92110, USA<p>We calculate the variation of spectral solar irradiance in the umbral shadow of the total solar eclipse of 21 August 2017 and compare it to observations. Starting from the Sun's and Moon's positions, we derive a realistic profile of the lunar shadow at the top of the atmosphere, including the effect of solar limb darkening. Subsequently, the Monte Carlo model MYSTIC (Monte Carlo code for the phYSically correct Tracing of photons In Cloudy atmospheres) is used to simulate the transfer of solar radiation through the Earth's atmosphere. Among the effects taken into account are the atmospheric state (pressure, temperature), concentrations of major gas constituents and the curvature of the Earth, as well as the reflectance and elevation of the surrounding area. We apply the model to the total solar eclipse on 21 August 2017 at a position located in Oregon, USA, where irradiance observations were performed for wavelengths between <span class="inline-formula">306</span> and <span class="inline-formula">1020</span> <span class="inline-formula">nm</span>. The influence of the surface reflectance, the ozone profile, the mountains surrounding the observer and aerosol is investigated. An increased sensitivity during totality is found for the reflectance, aerosol and topography, compared to non-eclipse conditions. During the eclipse, the irradiance at the surface not only depends on the total ozone column (TOC) but also on the vertical ozone distribution, which in general complicates derivations of the TOC from spectral surface irradiance. The findings are related to an analysis of the prevailing photon path and its difference compared to non-eclipse conditions. Using the most realistic estimate for each parameter, the model is compared to the irradiance observations. During totality, the relative difference between model and observations is less than <span class="inline-formula">10 <i>%</i></span> in the spectral range from <span class="inline-formula">400</span> to <span class="inline-formula">1020</span> <span class="inline-formula">nm</span>. Slightly larger deviations occur in the ultraviolet range below <span class="inline-formula">400</span> and at <span class="inline-formula">665</span> <span class="inline-formula">nm</span>.</p>https://www.atmos-chem-phys.net/20/1961/2020/acp-20-1961-2020.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
P. Ockenfuß C. Emde B. Mayer G. Bernhard |
spellingShingle |
P. Ockenfuß C. Emde B. Mayer G. Bernhard Accurate 3-D radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 August 2017 Atmospheric Chemistry and Physics |
author_facet |
P. Ockenfuß C. Emde B. Mayer G. Bernhard |
author_sort |
P. Ockenfuß |
title |
Accurate 3-D radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 August 2017 |
title_short |
Accurate 3-D radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 August 2017 |
title_full |
Accurate 3-D radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 August 2017 |
title_fullStr |
Accurate 3-D radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 August 2017 |
title_full_unstemmed |
Accurate 3-D radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 August 2017 |
title_sort |
accurate 3-d radiative transfer simulation of spectral solar irradiance during the total solar eclipse of 21 august 2017 |
publisher |
Copernicus Publications |
series |
Atmospheric Chemistry and Physics |
issn |
1680-7316 1680-7324 |
publishDate |
2020-02-01 |
description |
<p>We calculate the variation of spectral solar irradiance in the umbral shadow of the total solar eclipse of 21 August 2017 and compare it to observations. Starting from the Sun's and Moon's positions, we derive a realistic profile of the lunar shadow at the top of the atmosphere, including the effect of solar limb darkening. Subsequently, the Monte Carlo model MYSTIC (Monte Carlo code for the phYSically correct Tracing of photons In Cloudy atmospheres) is used to simulate the transfer of solar radiation through the Earth's atmosphere. Among the effects taken into account are the atmospheric state (pressure, temperature), concentrations of major gas constituents and the curvature of the Earth, as well as the reflectance and elevation of the surrounding area. We apply the model to the total solar eclipse on 21 August 2017 at a position located in Oregon, USA, where irradiance observations were performed for wavelengths between <span class="inline-formula">306</span> and <span class="inline-formula">1020</span> <span class="inline-formula">nm</span>. The influence of the surface reflectance, the ozone profile, the mountains surrounding the observer and aerosol is investigated. An increased sensitivity during totality is found for the reflectance, aerosol and topography, compared to non-eclipse conditions. During the eclipse, the irradiance at the surface not only depends on the total ozone column (TOC) but also on the vertical ozone distribution, which in general complicates derivations of the TOC from spectral surface irradiance. The findings are related to an analysis of the prevailing photon path and its difference compared to non-eclipse conditions. Using the most realistic estimate for each parameter, the model is compared to the irradiance observations.
During totality, the relative difference between model and observations is less than <span class="inline-formula">10 <i>%</i></span> in the spectral range from <span class="inline-formula">400</span> to <span class="inline-formula">1020</span> <span class="inline-formula">nm</span>. Slightly larger deviations occur in the ultraviolet range below <span class="inline-formula">400</span> and at <span class="inline-formula">665</span> <span class="inline-formula">nm</span>.</p> |
url |
https://www.atmos-chem-phys.net/20/1961/2020/acp-20-1961-2020.pdf |
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