Javascript must be enabled to continue!
IPSL-Perm-LandN: improving the IPSL Earth System Model to represent permafrost carbon-nitrogen interactions
View through CrossRef
Abstract. Permafrost soils have the potential to release large amounts of soil carbon to the atmosphere under climate change. However, in the Sixth Coupled Model Intercomparison Project (CMIP6), only two Earth System Models (ESM) represented permafrost carbon, both sharing the same land surface model. This makes future permafrost carbon dynamics highly uncertain and underscores the urgent need to include permafrost carbon in ESMs to enable more reliable future projections of climate change and remaining carbon budget estimates. Here, we present IPSL-Perm-LandN, an improved version of the Institut Pierre-Simon Laplace (IPSL) ESM (used for CMIP6) aiming at better representing high-latitude land ecosystems. The main developments are the inclusion of an explicit nitrogen cycle and of key permafrost physical and biogeochemical processes. The latent heat associated with soil water freeze/thaw is taken into account in the energy budget, as well as soil thermal insulation by soil organic matter and a surface organic layer (e.g. litter or moss). Soil organic carbon and nitrogen are vertically resolved with a depth-dependent decomposition dynamics, a key feature for representing the effect of gradual permafrost thaw on soil biogeochemistry. Cryoturbation is represented as a diffusion process that buries organic matter in the deeper soil layers. Compared to the previous version of the model used for CMIP6, we show that the extent of the permafrost region has improved significantly and that the simulated active layer thickness in the Arctic is in better agreement with observations. Permafrost soil carbon stocks have increased 20-fold to reach 1006 PgC in the top 3 meters of soil, which is consistent with observation-based estimates. We simulate that the permafrost region has been a net carbon sink over the past 150 years (+0.32±0.04 PgC.yr-1 on average between 2005 and 2014), primarily due to carbon uptake from boreal forests. This is comparable with recent pan-Arctic carbon balance estimates, when accounting for unrepresented processes in our model (fire and riverine carbon losses). Overall, the inclusion of permafrost processes has improved the response of the model to anthropogenic perturbations in high latitudes over the past century, marking a step forward in the representation of Arctic ecosystems.
Title: IPSL-Perm-LandN: improving the IPSL Earth System Model to represent permafrost carbon-nitrogen interactions
Description:
Abstract.
Permafrost soils have the potential to release large amounts of soil carbon to the atmosphere under climate change.
However, in the Sixth Coupled Model Intercomparison Project (CMIP6), only two Earth System Models (ESM) represented permafrost carbon, both sharing the same land surface model.
This makes future permafrost carbon dynamics highly uncertain and underscores the urgent need to include permafrost carbon in ESMs to enable more reliable future projections of climate change and remaining carbon budget estimates.
Here, we present IPSL-Perm-LandN, an improved version of the Institut Pierre-Simon Laplace (IPSL) ESM (used for CMIP6) aiming at better representing high-latitude land ecosystems.
The main developments are the inclusion of an explicit nitrogen cycle and of key permafrost physical and biogeochemical processes.
The latent heat associated with soil water freeze/thaw is taken into account in the energy budget, as well as soil thermal insulation by soil organic matter and a surface organic layer (e.
g.
litter or moss).
Soil organic carbon and nitrogen are vertically resolved with a depth-dependent decomposition dynamics, a key feature for representing the effect of gradual permafrost thaw on soil biogeochemistry.
Cryoturbation is represented as a diffusion process that buries organic matter in the deeper soil layers.
Compared to the previous version of the model used for CMIP6, we show that the extent of the permafrost region has improved significantly and that the simulated active layer thickness in the Arctic is in better agreement with observations.
Permafrost soil carbon stocks have increased 20-fold to reach 1006 PgC in the top 3 meters of soil, which is consistent with observation-based estimates.
We simulate that the permafrost region has been a net carbon sink over the past 150 years (+0.
32±0.
04 PgC.
yr-1 on average between 2005 and 2014), primarily due to carbon uptake from boreal forests.
This is comparable with recent pan-Arctic carbon balance estimates, when accounting for unrepresented processes in our model (fire and riverine carbon losses).
Overall, the inclusion of permafrost processes has improved the response of the model to anthropogenic perturbations in high latitudes over the past century, marking a step forward in the representation of Arctic ecosystems.
Related Results
Implications of permafrost carbon cycle feedbacks for TCRE: evidence from Earth system modeling
Implications of permafrost carbon cycle feedbacks for TCRE: evidence from Earth system modeling
TCRE – the linearity between global warming and cumulative anthropogenic CO2 emissions – underpins the concept of remaining carbon budgets and is critical for d...
Air convection in coarse blocky permafrost : a numerical modelling approach to improve the understanding of the ground thermal regime
Air convection in coarse blocky permafrost : a numerical modelling approach to improve the understanding of the ground thermal regime
Permafrost is a thermal phenomenon, defined as subsurface material with a temperature remaining below 0°C for at least two consecutive years. Permafrost occurs at high latitudes an...
Nitrogen Release From Permafrost Thaw May Partially Offset Future Soil Carbon Losses
Nitrogen Release From Permafrost Thaw May Partially Offset Future Soil Carbon Losses
ABSTRACT
Permafrost ecosystems contain significant soil carbon stocks which could be partially decomposed and released into the atmosphere if...
Status, Changes and Impacts of Permafrost on Qinghai-Tibet Plateau
Status, Changes and Impacts of Permafrost on Qinghai-Tibet Plateau
<p>Due to the climate warming, permafrost on the Qinghai-Tibet Plateau (QTP) was degradating in the past decades. Since its impacts on East Asian monsoon, and even on...
Review article: A systematic review of terrestrial dissolved organic carbon in northern permafrost
Review article: A systematic review of terrestrial dissolved organic carbon in northern permafrost
Abstract. As the permafrost region warms and permafrost soils thaw, vast pools of soil organic carbon (C) become vulnerable to enhanced microbial decomposition and lateral transpor...
Integrating subsea permafrost into an Earth System Model (MPI-ESM)
Integrating subsea permafrost into an Earth System Model (MPI-ESM)
<p>Subsea permafrost on the Arctic Shelf originates as terrestrial permafrost which was submerged by ocean water following sea level rise during deglaciation. The thi...
Present and LGM permafrost from climate simulations: contribution of statistical downscaling
Present and LGM permafrost from climate simulations: contribution of statistical downscaling
Abstract. We quantify the agreement between permafrost distributions from PMIP2 (Paleoclimate Modeling Intercomparison Project) climate models and permafrost data. We evaluate the ...
Theia can arrive late and be oxidized, but not if it is large compared to proto-Earth
Theia can arrive late and be oxidized, but not if it is large compared to proto-Earth
The Moon-forming impact was the most significant event during the accretion of Earth substantially establishing the physical and chemical states of the Earth-Moon system. In the ca...

