Bergen Earth system model (BCM-C): model description and regional climate-carbon cycle feedbacks assessment

We developed a complex Earth system model by coupling terrestrial and oceanic carbon cycle components into the Bergen Climate Model. For this study, we have generated two model simulations (one with climate change inclusions and the other without) to study the large scale climate and carbon cycle va...

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Main Authors: J. F. Tjiputra, K. Assmann, M. Bentsen, I. Bethke, O. H. Otterå, C. Sturm, C. Heinze
Format: Article
Language:English
Published: Copernicus Publications 2010-02-01
Series:Geoscientific Model Development
Online Access:http://www.geosci-model-dev.net/3/123/2010/gmd-3-123-2010.pdf
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author J. F. Tjiputra
K. Assmann
M. Bentsen
I. Bethke
O. H. Otterå
C. Sturm
C. Heinze
author_facet J. F. Tjiputra
K. Assmann
M. Bentsen
I. Bethke
O. H. Otterå
C. Sturm
C. Heinze
author_sort J. F. Tjiputra
collection DOAJ
description We developed a complex Earth system model by coupling terrestrial and oceanic carbon cycle components into the Bergen Climate Model. For this study, we have generated two model simulations (one with climate change inclusions and the other without) to study the large scale climate and carbon cycle variability as well as its feedback for the period 1850–2100. The simulations are performed based on historical and future IPCC CO<sub>2</sub> emission scenarios. Globally, a pronounced positive climate-carbon cycle feedback is simulated by the terrestrial carbon cycle model, but smaller signals are shown by the oceanic counterpart. Over land, the regional climate-carbon cycle feedback is highlighted by increased soil respiration, which exceeds the enhanced production due to the atmospheric CO<sub>2</sub> fertilization effect, in the equatorial and northern hemisphere mid-latitude regions. For the ocean, our analysis indicates that there are substantial temporal and spatial variations in climate impact on the air-sea CO<sub>2</sub> fluxes. This implies feedback mechanisms act inhomogeneously in different ocean regions. In the North Atlantic subpolar gyre, the simulated future cooling of SST improves the CO<sub>2</sub> gas solubility in seawater and, hence, reduces the strength of positive climate carbon cycle feedback in this region. In most ocean regions, the changes in the Revelle factor is dominated by changes in surface <i>p</i>CO<sub>2</sub>, and not by the warming of SST. Therefore, the solubility-associated positive feedback is more prominent than the buffer capacity feedback. In our climate change simulation, the retreat of Southern Ocean sea ice due to melting allows an additional ~20 Pg C uptake as compared to the simulation without climate change.
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spelling doaj.art-dcf014ef5da74f0e87aa4b3ca91116c42022-12-21T22:39:19ZengCopernicus PublicationsGeoscientific Model Development1991-959X1991-96032010-02-013112314110.5194/gmd-3-123-2010Bergen Earth system model (BCM-C): model description and regional climate-carbon cycle feedbacks assessmentJ. F. TjiputraK. AssmannM. BentsenI. BethkeO. H. OtteråC. SturmC. HeinzeWe developed a complex Earth system model by coupling terrestrial and oceanic carbon cycle components into the Bergen Climate Model. For this study, we have generated two model simulations (one with climate change inclusions and the other without) to study the large scale climate and carbon cycle variability as well as its feedback for the period 1850–2100. The simulations are performed based on historical and future IPCC CO<sub>2</sub> emission scenarios. Globally, a pronounced positive climate-carbon cycle feedback is simulated by the terrestrial carbon cycle model, but smaller signals are shown by the oceanic counterpart. Over land, the regional climate-carbon cycle feedback is highlighted by increased soil respiration, which exceeds the enhanced production due to the atmospheric CO<sub>2</sub> fertilization effect, in the equatorial and northern hemisphere mid-latitude regions. For the ocean, our analysis indicates that there are substantial temporal and spatial variations in climate impact on the air-sea CO<sub>2</sub> fluxes. This implies feedback mechanisms act inhomogeneously in different ocean regions. In the North Atlantic subpolar gyre, the simulated future cooling of SST improves the CO<sub>2</sub> gas solubility in seawater and, hence, reduces the strength of positive climate carbon cycle feedback in this region. In most ocean regions, the changes in the Revelle factor is dominated by changes in surface <i>p</i>CO<sub>2</sub>, and not by the warming of SST. Therefore, the solubility-associated positive feedback is more prominent than the buffer capacity feedback. In our climate change simulation, the retreat of Southern Ocean sea ice due to melting allows an additional ~20 Pg C uptake as compared to the simulation without climate change.http://www.geosci-model-dev.net/3/123/2010/gmd-3-123-2010.pdf
spellingShingle J. F. Tjiputra
K. Assmann
M. Bentsen
I. Bethke
O. H. Otterå
C. Sturm
C. Heinze
Bergen Earth system model (BCM-C): model description and regional climate-carbon cycle feedbacks assessment
Geoscientific Model Development
title Bergen Earth system model (BCM-C): model description and regional climate-carbon cycle feedbacks assessment
title_full Bergen Earth system model (BCM-C): model description and regional climate-carbon cycle feedbacks assessment
title_fullStr Bergen Earth system model (BCM-C): model description and regional climate-carbon cycle feedbacks assessment
title_full_unstemmed Bergen Earth system model (BCM-C): model description and regional climate-carbon cycle feedbacks assessment
title_short Bergen Earth system model (BCM-C): model description and regional climate-carbon cycle feedbacks assessment
title_sort bergen earth system model bcm c model description and regional climate carbon cycle feedbacks assessment
url http://www.geosci-model-dev.net/3/123/2010/gmd-3-123-2010.pdf
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