Spatial variations in terrestrial net ecosystem productivity and its local indicators
Multiple lines of evidence have demonstrated the persistence of global land carbon (C) sink during the past several decades. However, both annual net ecosystem productivity (NEP) and its inter-annual variation (IAVNEP) keep varying over space. Thus, identifying local indicators for the spatially var...
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Veröffentlicht in: | Biogeosciences 2020-12, Vol.17 (23), p.6237-6246 |
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Zusammenfassung: | Multiple lines of evidence have demonstrated the persistence of global land
carbon (C) sink during the past several decades. However, both annual net
ecosystem productivity (NEP) and its inter-annual variation (IAVNEP)
keep varying over space. Thus, identifying local indicators for the
spatially varying NEP and IAVNEP is critical for locating the major and
sustainable C sinks on land. Here, based on daily NEP observations from
FLUXNET sites and large-scale estimates from an atmospheric-inversion
product, we found a robust logarithmic correlation between annual NEP and
seasonal carbon uptake–release ratio (i.e. U ∕ R). The cross-site variation in
mean annual NEP could be logarithmically indicated by U ∕ R, while the spatial
distribution of IAVNEP was associated with the slope (i.e. β)
of the logarithmic correlation between annual NEP and U ∕ R. Among biomes, for
example, forests and croplands had the largest U ∕ R ratio (1.06 ± 0.83)
and β (473 ± 112 g C m−2 yr−1), indicating the
highest NEP and IAVNEP in forests and croplands, respectively. We
further showed that these two simple indicators could directly infer the
spatial variations in NEP and IAVNEP in global gridded NEP products.
Overall, this study provides two simple local indicators for the intricate
spatial variations in the strength and stability of land C sinks. These
indicators could be helpful for locating the persistent terrestrial C sinks
and provide valuable constraints for improving the simulation of
land–atmospheric C exchanges. |
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ISSN: | 1726-4189 1726-4170 1726-4189 |
DOI: | 10.5194/bg-17-6237-2020 |