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A radiative transfer module for calculating photolysis rates and solar heating in climate models: Solar-J v7.5

DOI:10.5194/gmd-10-2525-2017 期刊:Geoscientific Model Development 出版年份:2017 更新时间:2025-09-23 15:22:29
摘要: Solar-J is a comprehensive radiative transfer model for the solar spectrum that addresses the needs of both solar heating and photochemistry in Earth system models. Solar-J is a spectral extension of Cloud-J, a standard in many chemical models that calculates photolysis rates in the 0.18–0.8 μm region. The Cloud-J core consists of an eight-stream scattering, plane-parallel radiative transfer solver with corrections for sphericity. Cloud-J uses cloud quadrature to accurately average over correlated cloud layers. It uses the scattering phase function of aerosols and clouds expanded to eighth order and thus avoids isotropic-equivalent approximations prevalent in most solar heating codes. The spectral extension from 0.8 to 12 μm enables calculation of both scattered and absorbed sunlight and thus aerosol direct radiative effects and heating rates throughout the Earth’s atmosphere. The Solar-J extension adopts the correlated-k gas absorption bins, primarily water vapor, from the shortwave Rapid Radiative Transfer Model for general circulation model (GCM) applications (RRTMG-SW). Solar-J successfully matches RRTMG-SW’s tropospheric heating profile in a clear-sky, aerosol-free, tropical atmosphere. We compare both codes in cloudy atmospheres with a liquid-water stratus cloud and an ice-crystal cirrus cloud. For the stratus cloud, both models use the same physical properties, and we find a systematic low bias of about 3 % in planetary albedo across all solar zenith angles caused by RRTMG-SW’s two-stream scattering. Discrepancies with the cirrus cloud using any of RRTMG-SW’s three different parameterizations are as large as about 20–40 % depending on the solar zenith angles and occur throughout the atmosphere. Effectively, Solar-J has combined the best components of RRTMG-SW and Cloud-J to build a high-fidelity module for the scattering and absorption of sunlight in the Earth’s atmosphere, for which the three major components – wavelength integration, scattering, and averaging over cloud fields – all have comparably small errors. More accurate solutions with Solar-J come with increased computational costs, about 5 times that of RRTMG-SW for a single atmosphere. There are options for reduced costs or computational acceleration that would bring costs down while maintaining improved fidelity and balanced errors.
作者: Juno Hsu,Michael J. Prather,Philip Cameron-Smith,Alex Veidenbaum,Alex Nicolau
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To develop and evaluate Solar-J, a radiative transfer model that combines the strengths of Cloud-J and RRTMG-SW for accurate calculation of photolysis rates and solar heating in Earth system models, addressing the need for improved treatment of aerosol and cloud scattering in climate simulations.

Solar-J successfully combines the best features of Cloud-J and RRTMG-SW, providing high-fidelity calculations of photolysis rates and solar heating with balanced errors. It identifies systematic biases in RRTMG-SW due to two-stream scattering approximations, particularly for cirrus clouds. Future work should focus on optimizing computational costs and improving ice-cloud representations.

Solar-J has increased computational costs (about 5 times that of RRTMG-SW), and simplifications in ice-cloud optical properties may introduce errors. The model assumes spherical particles for ice clouds, which may not be fully realistic. Further validation with diverse cloud types and atmospheric conditions is needed.

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