Projections of future changes in land carbon (C) storage using biogeochemical models depend on accurately modeling the interactions between the C and nitrogen (N) cycles. Here, we present a framework for analyzing N limitation in global biogeochemical models to explore how C-N interactions of current models compare to field observations, identify the processes causing model divergence, and identify future observation and experiment needs. We used a set of N-fertilization simulations from two global biogeochemical models (CLM-CN and O-CN) that use different approaches to modeling C-N interactions. On the global scale, net primary productivity (NPP) in the CLM-CN model was substantially more responsive to N fertilization than in the O-CN mode...
The interaction between terrestrial carbon (C) and nitrogen (N) cycles has been incorporated into mo...
The carbon cycle strongly interacts with the nitrogen cycle. Several observations show that the effe...
International audienceNitrogen limitation of ecosystem productivity is ubiquitous, and it is thought...
Projections of future changes in land carbon (C) storage using biogeochemical models depend on accur...
Nitrogen (N) cycle dynamics and N deposition play an important role in determining the terrestrial b...
Nitrogen (N) is an essential nutrient for plant growth that constrains the fixation and storage of c...
The LPJ-GUESS dynamic vegetation model uniquely combines an individual- and patch-based representati...
Abstract. Terrestrial carbon (C) sequestration is limited by nitrogen (N), an empirically establishe...
In many forest ecosystems, nitrogen (N) deposition enhances plant uptake of carbon dioxide, thus red...
Understanding the degree to which nitrogen (N) availability limits land carbon (C) uptake under glob...
Interactions between the terrestrial carbon (C) and nitrogen (N) cycles shape the response of ecosys...
We use the terrestrial ecosystem model (TEM), a process-based model, to investigate how interactions...
The nature of future climate change will depend on anthropogenic emissions of CO2, as well as climat...
Including a terrestrial nitrogen (N) cycle in Earth system models has led to substantial attenuation...
The interaction between terrestrial carbon (C) and nitrogen (N) cycles has been incorporated into mo...
The carbon cycle strongly interacts with the nitrogen cycle. Several observations show that the effe...
International audienceNitrogen limitation of ecosystem productivity is ubiquitous, and it is thought...
Projections of future changes in land carbon (C) storage using biogeochemical models depend on accur...
Nitrogen (N) cycle dynamics and N deposition play an important role in determining the terrestrial b...
Nitrogen (N) is an essential nutrient for plant growth that constrains the fixation and storage of c...
The LPJ-GUESS dynamic vegetation model uniquely combines an individual- and patch-based representati...
Abstract. Terrestrial carbon (C) sequestration is limited by nitrogen (N), an empirically establishe...
In many forest ecosystems, nitrogen (N) deposition enhances plant uptake of carbon dioxide, thus red...
Understanding the degree to which nitrogen (N) availability limits land carbon (C) uptake under glob...
Interactions between the terrestrial carbon (C) and nitrogen (N) cycles shape the response of ecosys...
We use the terrestrial ecosystem model (TEM), a process-based model, to investigate how interactions...
The nature of future climate change will depend on anthropogenic emissions of CO2, as well as climat...
Including a terrestrial nitrogen (N) cycle in Earth system models has led to substantial attenuation...
The interaction between terrestrial carbon (C) and nitrogen (N) cycles has been incorporated into mo...
The carbon cycle strongly interacts with the nitrogen cycle. Several observations show that the effe...
International audienceNitrogen limitation of ecosystem productivity is ubiquitous, and it is thought...