Representing biological nitrogen fixation (BNF) is an important challenge for coupled carbon (C) and nitrogen (N) land models. Initial representations of BNF in land models applied simplified phenomenological relationships. More recent representations of BNF are mechanistic and include the dynamic response of symbiotic BNF to N limitation of plant growth. However, they generally do not include the competitive dynamics between N-fixing and non-fixing plants, which is a key ecological mechanism that determines ecosystem-scale symbiotic BNF. Furthermore, asymbiotic BNF is generally not included in land models. Here, we present LM4.1-BNF, a novel representation of BNF (asymbiotic and symbiotic) and an updated representation of N cycling in the ...
Nitrogen (N) availability plays a key role in terrestrial biosphere dynamics. To understand and quan...
Recently a considerable amount of effort has been put into quantifying how interactions of the carbo...
Human activities have clearly caused dramatic alterations of the terrestrial nitrogen cycle, and ana...
Abstract. Terrestrial carbon (C) sequestration is limited by nitrogen (N), an empirically establishe...
Including a terrestrial nitrogen (N) cycle in Earth system models has led to substantial attenuation...
Including a terrestrial nitrogen (N) cycle in Earth system models has led to substantial attenuation...
In many ecosystems, nitrogen is the most limiting nutrient for plant growth and productivity. Howeve...
The efforts to explain the 'missing sink' for anthropogenic carbon dioxide (CO2) have included in re...
Understanding the degree to which nitrogen (N) availability limits land carbon (C) uptake under glob...
The dynamic model N14C simulates changes in the plant-soil dynamics of nitrogen and carbon, brought ...
International audienceBiological nitrogen fixation is a key contributor to sustaining the terrestria...
Human activities have clearly caused dramatic alterations of the terrestrial nitrogen cycle, and ana...
Nitrogen (N) generally limits plant growth and controls biosphere responses to climate change. We in...
Nitrogen (N) availability plays a key role in terrestrial biosphere dynamics. To understand and quan...
Recently a considerable amount of effort has been put into quantifying how interactions of the carbo...
Human activities have clearly caused dramatic alterations of the terrestrial nitrogen cycle, and ana...
Abstract. Terrestrial carbon (C) sequestration is limited by nitrogen (N), an empirically establishe...
Including a terrestrial nitrogen (N) cycle in Earth system models has led to substantial attenuation...
Including a terrestrial nitrogen (N) cycle in Earth system models has led to substantial attenuation...
In many ecosystems, nitrogen is the most limiting nutrient for plant growth and productivity. Howeve...
The efforts to explain the 'missing sink' for anthropogenic carbon dioxide (CO2) have included in re...
Understanding the degree to which nitrogen (N) availability limits land carbon (C) uptake under glob...
The dynamic model N14C simulates changes in the plant-soil dynamics of nitrogen and carbon, brought ...
International audienceBiological nitrogen fixation is a key contributor to sustaining the terrestria...
Human activities have clearly caused dramatic alterations of the terrestrial nitrogen cycle, and ana...
Nitrogen (N) generally limits plant growth and controls biosphere responses to climate change. We in...
Nitrogen (N) availability plays a key role in terrestrial biosphere dynamics. To understand and quan...
Recently a considerable amount of effort has been put into quantifying how interactions of the carbo...
Human activities have clearly caused dramatic alterations of the terrestrial nitrogen cycle, and ana...