The European land and inland water CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balance between 2001 and 2005

Globally, terrestrial ecosystems have absorbed about 30% of anthropogenic greenhouse gas emissions over the period 2000–2007 and inter-hemispheric gradients indicate that a significant fraction of terrestrial carbon sequestration must be north of the Equator. We present a compilation of the CO<su...

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Main Authors: R. Thompson, E.-D. Schulze, S. Szopa, S. Saarnio, C. Rödenbeck, P. Raymond, P. Peylin, W. Peters, D. Papale, J. Otto, D. S. Njakou, N. Moosdorf, E. Mayorga, J. Lathière, A. Lohila, M. Jung, J. Hartmann, G. Grassi, A. Fortems-Cheiney, G. Etiope, R. Dechow, K.-H. Erb, M. Corazza, P. Ciais, F. Chevallier, P. Bousquet, P. Bergamaschi, V. Bellassen, D. Bastviken, R. Andres, G. Abril, S. Luyssaert, P. J. Verkerk, N. Vuichard, R. Wang, M. Wattenbach, S. Zaehle
Format: Article
Language:English
Published: Copernicus Publications 2012-08-01
Series:Biogeosciences
Online Access:http://www.biogeosciences.net/9/3357/2012/bg-9-3357-2012.pdf
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spelling doaj-89b279d16dad446db4e524dcf83593902020-11-24T22:43:26ZengCopernicus PublicationsBiogeosciences1726-41701726-41892012-08-01983357338010.5194/bg-9-3357-2012The European land and inland water CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balance between 2001 and 2005R. ThompsonE.-D. SchulzeS. SzopaS. SaarnioC. RödenbeckP. RaymondP. PeylinW. PetersD. PapaleJ. OttoD. S. NjakouN. MoosdorfE. MayorgaJ. LathièreA. LohilaM. JungJ. HartmannG. GrassiA. Fortems-CheineyG. EtiopeR. DechowK.-H. ErbM. CorazzaP. CiaisF. ChevallierP. BousquetP. BergamaschiV. BellassenD. BastvikenR. AndresG. AbrilS. LuyssaertP. J. VerkerkN. VuichardR. WangM. WattenbachS. ZaehleGlobally, terrestrial ecosystems have absorbed about 30% of anthropogenic greenhouse gas emissions over the period 2000–2007 and inter-hemispheric gradients indicate that a significant fraction of terrestrial carbon sequestration must be north of the Equator. We present a compilation of the CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balances of Europe following a dual constraint approach in which (1) a land-based balance derived mainly from ecosystem carbon inventories and (2) a land-based balance derived from flux measurements are compared to (3) the atmospheric data-based balance derived from inversions constrained by measurements of atmospheric GHG (greenhouse gas) concentrations. Good agreement between the GHG balances based on fluxes (1294 ± 545 Tg C in CO<sub>2</sub>-eq yr<sup>&minus;1</sup>), inventories (1299 ± 200 Tg C in CO<sub>2</sub>-eq yr<sup>&minus;1</sup>) and inversions (1210 ± 405 Tg C in CO<sub>2</sub>-eq yr<sup>&minus;1</sup>) increases our confidence that the processes underlying the European GHG budget are well understood and reasonably sampled. However, the uncertainty remains large and largely lacks formal estimates. Given that European net land to atmosphere exchanges are determined by a few dominant fluxes, the uncertainty of these key components needs to be formally estimated before efforts could be made to reduce the overall uncertainty. The net land-to-atmosphere flux is a net source for CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O, because the anthropogenic emissions by far exceed the biogenic sink strength. The dual-constraint approach confirmed that the European biogenic sink removes as much as 205 ± 72 Tg C yr<sup>−1</sup> from fossil fuel burning from the atmosphere. However, This C is being sequestered in both terrestrial and inland aquatic ecosystems. If the C-cost for ecosystem management is taken into account, the net uptake of ecosystems is estimated to decrease by 45% but still indicates substantial C-sequestration. However, when the balance is extended from CO<sub>2</sub> towards the main GHGs, C-uptake by terrestrial and aquatic ecosystems is offset by emissions of non-CO<sub>2</sub> GHGs. As such, the European ecosystems are unlikely to contribute to mitigating the effects of climate change.http://www.biogeosciences.net/9/3357/2012/bg-9-3357-2012.pdf
collection DOAJ
language English
format Article
sources DOAJ
author R. Thompson
E.-D. Schulze
S. Szopa
S. Saarnio
C. Rödenbeck
P. Raymond
P. Peylin
W. Peters
D. Papale
J. Otto
D. S. Njakou
N. Moosdorf
E. Mayorga
J. Lathière
A. Lohila
M. Jung
J. Hartmann
G. Grassi
A. Fortems-Cheiney
G. Etiope
R. Dechow
K.-H. Erb
M. Corazza
P. Ciais
F. Chevallier
P. Bousquet
P. Bergamaschi
V. Bellassen
D. Bastviken
R. Andres
G. Abril
S. Luyssaert
P. J. Verkerk
N. Vuichard
R. Wang
M. Wattenbach
S. Zaehle
spellingShingle R. Thompson
E.-D. Schulze
S. Szopa
S. Saarnio
C. Rödenbeck
P. Raymond
P. Peylin
W. Peters
D. Papale
J. Otto
D. S. Njakou
N. Moosdorf
E. Mayorga
J. Lathière
A. Lohila
M. Jung
J. Hartmann
G. Grassi
A. Fortems-Cheiney
G. Etiope
R. Dechow
K.-H. Erb
M. Corazza
P. Ciais
F. Chevallier
P. Bousquet
P. Bergamaschi
V. Bellassen
D. Bastviken
R. Andres
G. Abril
S. Luyssaert
P. J. Verkerk
N. Vuichard
R. Wang
M. Wattenbach
S. Zaehle
The European land and inland water CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balance between 2001 and 2005
Biogeosciences
author_facet R. Thompson
E.-D. Schulze
S. Szopa
S. Saarnio
C. Rödenbeck
P. Raymond
P. Peylin
W. Peters
D. Papale
J. Otto
D. S. Njakou
N. Moosdorf
E. Mayorga
J. Lathière
A. Lohila
M. Jung
J. Hartmann
G. Grassi
A. Fortems-Cheiney
G. Etiope
R. Dechow
K.-H. Erb
M. Corazza
P. Ciais
F. Chevallier
P. Bousquet
P. Bergamaschi
V. Bellassen
D. Bastviken
R. Andres
G. Abril
S. Luyssaert
P. J. Verkerk
N. Vuichard
R. Wang
M. Wattenbach
S. Zaehle
author_sort R. Thompson
title The European land and inland water CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balance between 2001 and 2005
title_short The European land and inland water CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balance between 2001 and 2005
title_full The European land and inland water CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balance between 2001 and 2005
title_fullStr The European land and inland water CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balance between 2001 and 2005
title_full_unstemmed The European land and inland water CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balance between 2001 and 2005
title_sort european land and inland water co<sub>2</sub>, co, ch<sub>4</sub> and n<sub>2</sub>o balance between 2001 and 2005
publisher Copernicus Publications
series Biogeosciences
issn 1726-4170
1726-4189
publishDate 2012-08-01
description Globally, terrestrial ecosystems have absorbed about 30% of anthropogenic greenhouse gas emissions over the period 2000–2007 and inter-hemispheric gradients indicate that a significant fraction of terrestrial carbon sequestration must be north of the Equator. We present a compilation of the CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O balances of Europe following a dual constraint approach in which (1) a land-based balance derived mainly from ecosystem carbon inventories and (2) a land-based balance derived from flux measurements are compared to (3) the atmospheric data-based balance derived from inversions constrained by measurements of atmospheric GHG (greenhouse gas) concentrations. Good agreement between the GHG balances based on fluxes (1294 ± 545 Tg C in CO<sub>2</sub>-eq yr<sup>&minus;1</sup>), inventories (1299 ± 200 Tg C in CO<sub>2</sub>-eq yr<sup>&minus;1</sup>) and inversions (1210 ± 405 Tg C in CO<sub>2</sub>-eq yr<sup>&minus;1</sup>) increases our confidence that the processes underlying the European GHG budget are well understood and reasonably sampled. However, the uncertainty remains large and largely lacks formal estimates. Given that European net land to atmosphere exchanges are determined by a few dominant fluxes, the uncertainty of these key components needs to be formally estimated before efforts could be made to reduce the overall uncertainty. The net land-to-atmosphere flux is a net source for CO<sub>2</sub>, CO, CH<sub>4</sub> and N<sub>2</sub>O, because the anthropogenic emissions by far exceed the biogenic sink strength. The dual-constraint approach confirmed that the European biogenic sink removes as much as 205 ± 72 Tg C yr<sup>−1</sup> from fossil fuel burning from the atmosphere. However, This C is being sequestered in both terrestrial and inland aquatic ecosystems. If the C-cost for ecosystem management is taken into account, the net uptake of ecosystems is estimated to decrease by 45% but still indicates substantial C-sequestration. However, when the balance is extended from CO<sub>2</sub> towards the main GHGs, C-uptake by terrestrial and aquatic ecosystems is offset by emissions of non-CO<sub>2</sub> GHGs. As such, the European ecosystems are unlikely to contribute to mitigating the effects of climate change.
url http://www.biogeosciences.net/9/3357/2012/bg-9-3357-2012.pdf
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