Representation of leaf-to-canopy radiative transfer processes improves simulation of far-red Solar-Induced Chlorophyll fluorescence in the community land model version 5

Recent advances in satellite observations of solar-induced chlorophyll fluorescence (SIF) provide a new opportunity to constrain the simulation of terrestrial gross primary productivity (GPP). Accurate representation of the processes driving SIF emission and its radiative transfer to remote sensing sensors is an essential prerequisite for data assimilation. Recently, SIF simulations have been incorporated into several land surface models, but the scaling of SIF from leaf-level to canopy-level is usually not well-represented. Here, we incorporate the simulation of far-red SIF observed at nadir into the Community Land Model version 5 (CLM5). Leaf-level fluorescence yield was simulated by a parametric simplification of the Soil Canopy-Observation of Photosynthesis and Energy fluxes model (SCOPE). And an efficient and accurate method based on escape probability is developed to scale SIF from leaf-level to top-of-canopy while taking clumping and the radiative transfer processes into account. SIF simulated by CLM5 and SCOPE agreed well at sites except one in needleleaf forest (R-2 > 0.91, root-mean-square error 0.68). At the global scale, simulated SIF generally captured the spatial and seasonal patterns of satellite-observed SIF. Factors including the fluorescence emission model, clumping, bidirectional effect, and leaf optical properties had considerable impacts on SIF simulation, and the discrepancies between simulate d and observed SIF varied with plant functional type. By improving the representation of radiative transfer for SIF simulation, our model allows better comparisons between simulated and observed SIF toward constraining GPP simulations.

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Related Links

Related Dataset #1 : Sun-induced chlorophyll fluorescence of two Nebraska maize sites in 2017

Related Dataset #2 : AmeriFlux AmeriFlux US-NR1 Niwot Ridge Forest (LTER NWT1)

Related Dataset #3 : Canopy and needle scale fluorescence data from Niwot Ridge, Colorado 2017-2018

Related Dataset #4 : MCD15A2H MODIS/Terra+Aqua Leaf Area Index/FPAR 8-day L4 Global 500m SIN Grid V006

Related Dataset #5 : Continuous Measurement of Canopy Fluorescence at Harvard Forest since 2013

Related Service #1 : Cheyenne: SGI ICE XA Cluster

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Author Li, R.
Lombardozzi, Danica
Shi, M.
Frankenberg, C.
Parazoo, N. C.
Köhler, P.
Yi, K.
Guan, K.
Yang, X.
Publisher UCAR/NCAR - Library
Publication Date 2022-03-01T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2025-07-11T16:06:07.951009
Metadata Record Identifier edu.ucar.opensky::articles:25286
Metadata Language eng; USA
Suggested Citation Li, R., Lombardozzi, Danica, Shi, M., Frankenberg, C., Parazoo, N. C., Köhler, P., Yi, K., Guan, K., Yang, X.. (2022). Representation of leaf-to-canopy radiative transfer processes improves simulation of far-red Solar-Induced Chlorophyll fluorescence in the community land model version 5. UCAR/NCAR - Library. https://n2t.org/ark:/85065/d7d50rk9. Accessed 31 July 2025.

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